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| 36 |
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| 37 | \title{Neuantrag auf Gew\"{a}hrung einer Sachbeihilfe\\Proposal for a new research project}
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| 38 | \author{Prof.\ Dr.\ Karl\ Mannheim\\Prof.\ Dr.\ Dr.\ Wolfgang Rhode}
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| 39 |
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| 40 | \begin{document}
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| 41 |
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| 42 | \maketitle
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| 43 | \thispagestyle{empty}
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| 44 | %\begin{figure}[ht]
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| 45 | \vspace{2.7cm}
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| 46 | \begin{center}
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| 47 | \includegraphics*[width=0.496\textwidth,angle=0,clip]{DWARF.eps}
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| 48 | \end{center}
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| 49 | %\end{figure}
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| 50 | \newpage
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| 51 | \mbox{}
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| 52 | \thispagestyle{empty}
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| 53 | \cleardoublepage
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| 54 | \newpage
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| 55 |
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| 56 | \section[1]{General Information (Allgemeine Angaben)}
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| 57 |
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| 58 | \subsection[1.1]{Applicants (Antragsteller)}
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| 59 | \germanTeX
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| 60 | \begin{tabular}{|p{0.44\textwidth}|p{0.22\textwidth}|p{0.22\textwidth}|}\hline
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| 61 | {\bf Name}&\multicolumn{2}{l|}{\bf Akademischer Grad}\\
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| 62 | {\sc Rhode, Wolfgang, Prof.~Dr.~Dr.}&\multicolumn{2}{l|}{Universit"atsprofessor (C3)}\\\hline\hline
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| 63 | {\ }&{\bf Birthday}&{\bf Nationality}\\
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| 64 | {\ }&Oct 17 1961&German\\\hline
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| 65 | \multicolumn{3}{|l|}{\bf Institut, Lehrstuhl}\\
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| 66 | \multicolumn{3}{|l|}{Institut f"ur Physik}\\
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| 67 | \multicolumn{3}{|l|}{Experimentelle Physik V (Astroteilchenphysik)}\\\hline
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| 68 | {\bf Address at work }&\multicolumn{2}{l|}{\bf Home address}\\[0.5ex]
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| 69 | {Universit"at Dortmund }&\multicolumn{2}{l|}{ }\\
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| 70 | { }&\multicolumn{2}{l|}{Am Schilken 28 }\\
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| 71 | {44221 Dortmund }&\multicolumn{2}{l|}{58285 Gevelsberg}\\
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| 72 | {Germany }&\multicolumn{2}{l|}{Germany }\\[0.5ex]
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| 73 | {\parbox[t]{1.5cm}{Phone:}+49\,(231)\,755-3550}&\multicolumn{2}{l|}{\parbox[t]{1.5cm}{Phone:}+49\,(173)\,284\,79\,10}\\
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| 74 | {\parbox[t]{1.5cm}{Fax:}+49\,(231)\,755-4547}&\multicolumn{2}{l|}{~}\\\hline\hline
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| 75 | \multicolumn{3}{|c|}{{\bf email}: wolfgang.rhode@udo.edu}\\\hline
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| 76 |
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| 77 | \multicolumn{3}{c}{~}\\[1ex]\hline
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| 78 |
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| 79 | {\bf Name}&\multicolumn{2}{l|}{\bf Akademischer Grad}\\
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| 80 | {\sc Mannheim, Karl, Prof.~Dr.}&\multicolumn{2}{l|}{Universit"atsprofessor (C4)}\\\hline\hline
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| 81 | {\ }&{\bf Birthday}&{\bf Nationality}\\
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| 82 | {\ }&Jan 4 1963&German\\\hline
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| 83 | \multicolumn{3}{|l|}{\bf Institut, Lehrstuhl}\\
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| 84 | \multicolumn{3}{|l|}{Institut f"ur Theoretische Physik und Astrophysik}\\
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| 85 | \multicolumn{3}{|l|}{Lehrstuhl f"ur Astronomie}\\\hline
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| 86 | {\bf Address at work }&\multicolumn{2}{l|}{\bf Home address}\\[0.5ex]
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| 87 | {Julius-Maximilians-Universit"at}&\multicolumn{2}{l|}{ }\\
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| 88 | { }&\multicolumn{2}{l|}{Oswald-Kunzemann-Str. 12}\\
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| 89 | {97074 W"urzburg }&\multicolumn{2}{l|}{97299 Zell am Main }\\
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| 90 | {Germany }&\multicolumn{2}{l|}{Germany }\\[0.5ex]
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| 91 | {\parbox[t]{1.5cm}{Phone:}+49\,(931)\,888-5031}&\multicolumn{2}{l|}{\parbox[t]{1.5cm}{Phone: +49\,(931)\,404\,81\,90} }\\
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| 92 | {\parbox[t]{1.5cm}{Fax:}+49\,(931)\,888-4603}&\multicolumn{2}{l|}{~}\\\hline\hline
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| 93 | \multicolumn{3}{|c|}{{\bf email}: mannheim@astro.uni-wuerzbueg.de}\\\hline
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| 94 | \end{tabular}
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| 95 | \originalTeX
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| 96 | \newpage
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| 97 |
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| 98 | \paragraph{1.2 Topic}~\\
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| 99 | %\subsection[1.2]{Topic}
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| 100 | Long-term VHE $\gamma$-ray monitoring of bright blazars with a dedicated Cherenkov telescope
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| 101 |
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| 102 | \paragraph{1.2 Thema}~\\
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| 103 | %\subsection[1.2]{Thema}
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| 104 | Langzeitbeobachtung von hellen VHE $\gamma$-Blazaren mit einem dedizierten Cherenkov Teleskop
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| 105 |
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| 106 | \paragraph{1.3 Discipline and field of work (Fachgebiet und Arbeitsrichtung)}~\\
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| 107 | %\subsection[1.3]{Discipline and field of work (Fachgebiet und Arbeitsrichtung)}
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| 108 | Astronomy and Astrophysics, Particle Astrophysics
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| 109 |
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| 110 | \paragraph{\bf 1.4 Scheduled duration in total (Voraussichtliche Gesamtdauer)}~\\
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| 111 | %\subsection[1.4]{Scheduled duration in total (Voraussichtliche Gesamtdauer)}
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| 112 | After successful completion of the three-year work plan developed in
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| 113 | this proposal, we will ask for an extension of the project for another
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| 114 | two years to carry out an observation program centered on the signatures
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| 115 | of supermassive binary black holes.
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| 116 |
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| 117 | \paragraph{\bf 1.5 Application period (Antragszeitraum)}~\\
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| 118 | %\subsection[1.5]{Application period (Antragszeitraum)}
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| 119 | 3\,years. The work on the project will begin immediately after the
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| 120 | funding.
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| 121 |
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| 122 | \newpage
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| 123 | \paragraph{\bf 1.6 Summary}~\\
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| 124 | %\subsection[1.6]{Summary}
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| 125 | We propose to set up a robotic imaging air-Cherenkov telescope with low
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| 126 | cost, but a high performance design for remote operation. The goal is
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| 127 | the long-term monitoring observations of nearby, bright blazars at very
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| 128 | high energies. We will (i) search for orbital modulation of the blazar
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| 129 | emission due to supermassive black hole binaries, (ii) study the
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| 130 | statistics of flares and their physical origin, and (iii) correlate the
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| 131 | data with corresponding data from the neutrino observatory IceCube to
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| 132 | search for evidence of hadronic emission processes. The observations
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| 133 | will furthermore trigger follow-up observations of flares with higher
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| 134 | sensitivity telescopes such as MAGIC, \mbox{VERITAS} and H.E.S.S. Joint
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| 135 | observations with the Whipple monitoring telescope will start a future
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| 136 | \mbox{24\,h-monitoring} of selected sources with a distributed network of
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| 137 | robotic telescopes. The telescope design is based on a complete
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| 138 | technological upgrade of one of the former telescopes of the HEGRA
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| 139 | collaboration (CT3) still located at the Observatorio del Roque de los
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| 140 | Muchachos on the Canary Island La Palma (Spain). After this upgrade,
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| 141 | the telescope will be operated robotically, a much lower energy
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| 142 | threshold below 350\,GeV will be achieved, and the observation time
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| 143 | required for gaining the same signal as with CT3 will be reduced by a
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| 144 | factor of six.
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| 145 |
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| 146 | \germanTeX
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| 147 | \paragraph{\bf 1.6 Zusammenfassung}~\\
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| 148 | %\subsection[1.6]{Zusammenfassung}
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| 149 | Das Ziel unseres Vorhabens ist es, ein abbildendes
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| 150 | Luft-Cherenkov-Teleskop mit geringen Kosten, aber hoher Leistung f"ur
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| 151 | den ferngesteuerten Betrieb aufzubauen. Die Motivation ist die
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| 152 | kontinuierliche Langzeitbeobachtung von hellen, nahen Blazaren bei sehr
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| 153 | hohen Energien. Mit diesen Beobachtungen werden wir nach
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| 154 | bahndynamischen Modulationen suchen, welche von Bin"arsystemen
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| 155 | supermassiver schwarzer L"ocher in der emittierten Strahlung
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| 156 | hervorgerufen werden. Au"serdem werden die gewonnenen Daten mit den
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| 157 | entsprechenden Daten des Neutrinoteleskops IceCube korreliert, um nach
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| 158 | Hinweisen f"ur hadroninduzierte Emissionsprozesse zu suchen. Die
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| 159 | kontinuierliche "Uberwachung ausgew"ahlter Quellen wird zudem besser
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| 160 | aufgel"oste Beobachtungen und Nachbeobachtungen von
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| 161 | Strahlungsausbr"uchen durch Teleskope h"oherer Sensitivit"at, wie z.B.\
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| 162 | MAGIC, VERITAS und H.E.S.S., erlauben. Die zeitversetzten, gemeinsamen
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| 163 | Beobachtungen zusammen mit dem Whipple-Teleskop stellen den Beginn
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| 164 | ununterbrochener Beobachtungen mit einem weltweiten Netzwerk
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| 165 | robotischer Teleskope dar. Unser Teleskopdesign basiert auf einer
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| 166 | technischen Runderneuerung eines Teleskops der fr"uheren
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| 167 | HEGRA-Kollaboration (CT3), welches noch immer am Observatorio del Roque de
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| 168 | los Muchachos auf der Kanarischen Insel La Palma (Spanien) steht. Nach
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| 169 | dieser Aufr"ustung wird das Teleskop vollst"andig ferngesteuert
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| 170 | betrieben werden, eine viel niedrigere Energieschwelle von unter
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| 171 | 350\,GeV erreichen und die Beobachtungszeit, um ein gleichstarkes
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| 172 | Signal wie mit CT3 zu erhalten, wird um einen Faktor sechs k"urzer
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| 173 | sein.
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| 174 | \originalTeX
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| 175 | \newpage
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| 176 |
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| 177 | \section[2]{Science case, preliminary work by proposer\\(Stand der Forschung, eigene Vorarbeiten)}
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| 178 |
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| 179 | \subsection[2.1]{Science case (Stand der Forschung)}
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| 180 |
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| 181 | Since the termination of the HEGRA observations, the succeeding
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| 182 | experiments MAGIC and H.E.S.S.\ have impressively extended the physical
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| 183 | scope of gamma-ray astronomy detecting tens of formerly unknown gamma-ray
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| 184 | sources and analyzing their energy spectra, morphology and
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| 185 | temporal behavior. This became possible by lowering the energy
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| 186 | threshold from 700\,GeV to less than 100\,GeV and increasing at the same
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| 187 | time the sensitivity by a factor of five. A diversity of astrophysical
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| 188 | source types such as pulsar wind nebulae, supernova remnants,
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| 189 | micro-quasars, pulsars, radio galaxies, clusters of galaxies, Gamma-Ray
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| 190 | Bursts and blazars have been studied with these telescopes.
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| 191 |
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| 192 | The main class of extragalactic, very high energy gamma-rays sources
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| 193 | detected with imaging air-Cherenkov telescopes are blazars, i.e.\
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| 194 | accreting supermassive black holes exhibiting a relativistic jet that
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| 195 | is closely aligned with the line of sight. The non-thermal blazar
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| 196 | spectrum covers up to 20 orders of magnitude in energy, from
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| 197 | long-wavelength radio waves to multi-TeV gamma-rays. In addition,
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| 198 | blazars are characterized by rapid variability, high degrees of
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| 199 | polarization, and superluminal motion of knots in their
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| 200 | high-resolution radio images. The observed behavior can readily be
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| 201 | explained assuming relativistic bulk motion and in situ particle
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| 202 | acceleration, e.g.\ at shock waves, leading to synchrotron
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| 203 | (radio-to-x-ray) and self-Compton (gamma-ray) emission \citep{Blandford}.
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| 204 | Additionally, inverse Compton scattering of external photons may play a
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| 205 | role in producing the observed gamma-rays \citep{Dermer,Begelman}.
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| 206 | Variability may hold the key to understanding the details of the
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| 207 | emission processes and the source geometry. The development of
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| 208 | time-dependent models is currently under investigation
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| 209 | worldwide.
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| 210 |
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| 211 | Although particle acceleration inevitably affects electrons and protons
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| 212 | (ions), the electrons are commonly believed to be responsible for
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| 213 | producing the observed emission owing to their lower mass and thus much
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| 214 | stronger energy losses (at the same energy). The relativistic protons,
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| 215 | which could either originate from the accretion flow or from entrained
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| 216 | ambient matter, will quickly dominate the momentum flow of the jet.
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| 217 | This {\em baryon pollution} has been suggested to solve the energy
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| 218 | transport problem in Gamma-Ray Bursts and is probably present in
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| 219 | blazar jets as well, even if they originate as pair jets in a black
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| 220 | hole ergosphere \citep{Meszaros}. Protons and ions accelerated in the
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| 221 | jets of blazars can reach extremely high energies, before energy losses
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| 222 | become important \citep{Mannheim:1993}. Escaping particles contribute
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| 223 | to the observed flux of ultrahigh energy cosmic rays in a major way.
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| 224 | Blazars and their unbeamed hosts, the radio galaxies, are thus the
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| 225 | prime candidates for origin of ultrahigh energy cosmic rays
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| 226 | \citep{Rachen}. This can be investigated with the IceCube and AUGER
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| 227 | experiments. Recent results of the AUGER experiment show a significant
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| 228 | anisotropy of the highest energy cosmic rays and point at either nearby
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| 229 | AGN or sources with a similar spacial distribution as their origin
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| 230 | \citep{AUGER-AGN}.
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| 231 |
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| 232 | In some flares, a large ratio of the gamma-ray to optical luminosity is
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| 233 | observed. This is difficult to reconcile with the primary leptonic
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| 234 | origin of the emission, since the accelerated electron pressure would
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| 235 | largely exceed the magnetic field pressure. For shock acceleration to
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| 236 | work efficiently, particles must be confined by the magnetic field for
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| 237 | a time longer than the cooling time. The problem vanishes in the
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| 238 | following model: Photo-hadronic interactions of accelerated protons and
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| 239 | synchrotron photons induce electromagnetic cascades, which in turn
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| 240 | produce secondary electrons causing high energy synchrotron
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| 241 | gamma-radiation. This demands much stronger magnetic fields in line
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| 242 | with magnetic confinement \citep{Mannheim:1995}. Short variability time
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| 243 | scales can result from dynamical changes of the emission zone, running
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| 244 | e.g.\ through an inhomogeneous environment.
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| 245 |
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| 246 | The contemporaneous spectral energy distributions for hadronic and
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| 247 | leptonic models bear many similarities, but also marked differences,
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| 248 | such as multiple bumps which are possible even in a one-zone hadronic
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| 249 | model \citep{Mannheim:1999}. These properties allow conclusions
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| 250 | about the accelerated particles. Noteworthy, even for nearby blazars
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| 251 | the spectrum must be corrected for attenuation of the gamma-rays due to
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| 252 | pair production in collisions with low-energy photons from the
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| 253 | extragalactic background radiation field \citep{Kneiske}.
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| 254 | Ultimately, the hadronic origin of the emission must be probed with
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| 255 | correlated gamma-ray and neutrino observations, since the pion decay
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| 256 | initiating the cascades involves a fixed ratio of electron-positron
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| 257 | pairs, gamma-rays, and neutrinos. A dedicated monitoring campaign
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| 258 | jointly with IceCube has the best chance for success. Pilot studies
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| 259 | done with MAGIC and IceCube indicate that the investigation of neutrino
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| 260 | event triggered gamma-ray observations are statistically
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| 261 | inconclusive \citep{Leier:2006}.
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| 262 |
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| 263 | The variability time scale of blazars ranges from minutes to months,
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| 264 | generally showing the largest amplitudes and the shortest time scales
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| 265 | at the highest energies. Recently, a doubling time scale of two minutes
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| 266 | has been observed in a flare of Mrk\,501 with the MAGIC telescope
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| 267 | \citep{Albert:501}. A giant flare of PKS\,2155-304 discovered by
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| 268 | H.E.S.S.\ \citep{Aharonian:2007pks} has shown similarly short doubling
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| 269 | time scales and a flux of up to 16 times the flux of the Crab Nebula.
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| 270 | Indications for TeV flares without evidence for an accompanying x-ray
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| 271 | flare, coined orphan flares, have been observed, questioning the
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| 272 | synchrotron-self-Compton mechanism being responsible for the
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| 273 | gamma-rays. Model ramifications involving several emission components,
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| 274 | external seed photons, or hadronically induced emission may solve the
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| 275 | problem \citep{Blazejowski}. Certainly, the database for
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| 276 | contemporaneous multi-wavelength observations is still far from proving
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| 277 | the synchrotron-self-Compton model.
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| 278 |
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| 279 | Generally, observations of flares are prompted by optical or x-ray
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| 280 | alerts, leading to a strong selection bias. The variability presumably
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| 281 | reflects the non-steady feeding of the jets and the changing interplay
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| 282 | between particle acceleration and cooling. In this situation,
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| 283 | perturbations of the electron density or the bulk plasma velocity are
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| 284 | traveling down the jet. The variability could also reflect the changing
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| 285 | conditions of the external medium to which the jet flow adapts during
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| 286 | its passage through it. In fact, a clumpy, highly inhomogeneous
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| 287 | external medium is typical for active galactic nuclei, as indicated by
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| 288 | their clumpy emission line regions, if visible against the
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| 289 | Doppler-enhanced blazar emission. Often the jets bend with a large
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| 290 | angle indicating shocks resulting from reflections off intervening
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| 291 | high-density clouds. Changes in the direction of the jet flow lead to
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| 292 | large flux variations due to differential Doppler boosting.
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| 293 |
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| 294 | Helical trajectories, as seen in high-resolution radio maps resulting
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| 295 | from the orbital modulation of the jet base in supermassive black hole
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| 296 | binaries, would lead to periodic variability on time scales of months
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| 297 | to years \citep{Rieger:2007}. Binaries are expected to be the most
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| 298 | common outcome of the repeated mergers of galaxies which have
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| 299 | originally built up the blazar host galaxy. Each progenitor galaxy
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| 300 | brings its own supermassive black hole as expected from the
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| 301 | Magorrian-Kormendy relations. It is subject to stellar dynamical
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| 302 | evolution in the core of the merger galaxy, of which only one pair of
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| 303 | black holes is expected to survive near the center of gravity.
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| 304 | Supermassive black hole binaries close to coalescence are thus expected
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| 305 | to be generic in blazars. Angular momentum transport by collective
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| 306 | stellar dynamical processes is efficient to bring them to distances
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| 307 | close to where the emission of gravitational waves begins to dominate
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| 308 | their further evolution until coalescence. Their expected gravitational
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| 309 | wave luminosity is spectacularly high, even long before final
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| 310 | coalescence and the frequencies are favorable for the detectors under
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| 311 | consideration (LISA). The detection of gravitational waves relies on exact
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| 312 | templates to filter out the signals and the templates can be computed
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| 313 | from astrophysical constraints on the orbits and masses of the black
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| 314 | holes. TeV gamma-rays, showing the shortest variability time scales,
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| 315 | probe deepest into the jet and are thus the most sensitive probe of the
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| 316 | orbital modulation at the jet base. Relativistic aberration is helpful
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| 317 | in bringing down the observed periods to below the time scale of years.
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| 318 | A tentative hint for a 23-day periodicity of the TeV emission from
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| 319 | Mrk\,501 during a phase of high activity in 1997 was reported by
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| 320 | HEGRA \citep{Kranich}, and was later confirmed including x-ray and
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| 321 | Telescope Array data \citep{Osone}. The observations can be explained in
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| 322 | a supermassive black hole binary scenario \citep{Rieger:2000}.
|
|---|
| 323 | Indications for helical trajectories and periodic modulation of optical
|
|---|
| 324 | and radio lightcurves on time scales of tens of years have also been
|
|---|
| 325 | described in the literature (e.g. \cite{Hong,Merrit}).
|
|---|
| 326 |
|
|---|
| 327 | To overcome the limitations of biased sampling, a complete monitoring
|
|---|
| 328 | database for a few representative bright sources needs to be obtained.
|
|---|
| 329 | Space missions with all-sky observations at lower photon energies, such
|
|---|
| 330 | as GLAST, GRIPS, or eROSITA, will provide significant multi-wavelength
|
|---|
| 331 | exposure simultaneous to the VHE observations, and this is a new
|
|---|
| 332 | qualitative step for blazar research. For the same reasons, the VERITAS
|
|---|
| 333 | collaboration keeps the Whipple telescope alive. It is obvious that the
|
|---|
| 334 | large Cherenkov telescopes such as MAGIC, H.E.S.S.\ or VERITAS are mainly
|
|---|
| 335 | used to discover new sources at the sensitivity limit. Thus they will
|
|---|
| 336 | not perform monitoring observations of bright sources with complete
|
|---|
| 337 | sampling during their visibility. However, these telescopes will be
|
|---|
| 338 | triggered by monitoring telescopes and thus improve the described
|
|---|
| 339 | investigations. In turn, operating a smaller but robotic telescope is
|
|---|
| 340 | an essential and cost-effective contribution to the plans for
|
|---|
| 341 | next-generation instruments in ground-based gamma-ray astronomy.
|
|---|
| 342 | Know-how for the operation of future networks of robotic Cherenkov
|
|---|
| 343 | telescopes, e.g. a monitoring array around the globe or a single-place
|
|---|
| 344 | array like CTA, is certainly needed given the high operating shift
|
|---|
| 345 | demands of the current installations.
|
|---|
| 346 |
|
|---|
| 347 | In summary, there are strong reasons to make an effort for the
|
|---|
| 348 | continuous monitoring of the few exceptionally bright blazars. This can
|
|---|
| 349 | be achieved by operating a dedicated monitoring telescope of the
|
|---|
| 350 | HEGRA-type, referred to in the following as DWARF (Dedicated
|
|---|
| 351 | multiWavelength Agn Research Facility). Its robotic design will keep
|
|---|
| 352 | the demands on personal and infrastructure on the low side, rendering
|
|---|
| 353 | it compatible with the resources of University groups. The approach is
|
|---|
| 354 | also optimal to educate students in the strongly expanding field of
|
|---|
| 355 | astroparticle physics.
|
|---|
| 356 |
|
|---|
| 357 | Assuming conservatively the performance of a single HEGRA-type
|
|---|
| 358 | telescope, long-term monitor\-ing of at least the following known
|
|---|
| 359 | blazars is possible: Mrk\,421, Mrk\,501, 1ES\,2344+514, 1ES\,1959+650,
|
|---|
| 360 | H\,1426+428, PKS\,2155-304. We emphasize, that DWARF will run as a
|
|---|
| 361 | facility dedicated to these targets only, providing a maximum
|
|---|
| 362 | observation time for the program. Utilizing recent developments, such
|
|---|
| 363 | as improvements of the light collection efficiency due to an improved
|
|---|
| 364 | mirror reflectivity and a better PM quantum efficiency, a 30\%
|
|---|
| 365 | improvement in sensitivity and a lower energy-threshold is reasonable.
|
|---|
| 366 | Current studies show that with a good timing resolution (2\,GHz) a
|
|---|
| 367 | further 40\% increase in sensitivity (compared to a 300\,MHz system) is
|
|---|
| 368 | feasible. Together with an extended mirror area and a large camera, a
|
|---|
| 369 | sensitivity improvement compared to a single HEGRA telescope of a
|
|---|
| 370 | factor of 2.5 and an energy threshold below 350\,GeV is possible.
|
|---|
| 371 |
|
|---|
| 372 | \subsection[2.2]{Preliminary work by proposers (Eigene Vorarbeiten)}
|
|---|
| 373 |
|
|---|
| 374 | From the experience with the construction, operation and data analysis
|
|---|
| 375 | of Amanda, IceCube, HEGRA and MAGIC the proposing groups contribute the
|
|---|
| 376 | necessary knowledge and experience to build and operate a small imaging
|
|---|
| 377 | air-Cherenkov telescope.
|
|---|
| 378 |
|
|---|
| 379 | \paragraph{Hardware}
|
|---|
| 380 |
|
|---|
| 381 | The Dortmund group is working on experimental and phenomenological
|
|---|
| 382 | astroparticle physics. In the past, the following hardware components
|
|---|
| 383 | were successfully developed: a Flash-ADC based DAQ (TWR, transient
|
|---|
| 384 | waveform recorder), currently in operation for data acquisition in the
|
|---|
| 385 | AMANDA subdetector within the IceCube telescope \citep{Wagner:PhD}, an
|
|---|
| 386 | online software Trigger for the TWR-DAQ system \citep{Messarius:PhD},
|
|---|
| 387 | online data compression mechanisms (TWR DAQ) \citep{Refflinghaus:Dipl},
|
|---|
| 388 | monitoring software for the TWR-DAQ-data \citep{Dreyer:Dipl} and
|
|---|
| 389 | in-ice-HV-power-supply for IceCube. This development was done with the
|
|---|
| 390 | companies CAEN, Pisa, Italy and Iseg, Rossendorf, Germany. The HV
|
|---|
| 391 | modules were long time tested under different temperature conditions
|
|---|
| 392 | connected to operating photomultipliers \citep{Bartelt:Dipl}. Prototypes
|
|---|
| 393 | for the scintillator counters of the planned Air Shower Array {\em
|
|---|
| 394 | SkyView} were developed and operated for two years \citep{Deeg:Dipl}.
|
|---|
| 395 | Members of the group (engineers) were involved in the fast trigger
|
|---|
| 396 | development for H1 and are involved in the FPGA-programming for the
|
|---|
| 397 | LHCb data read out. The group may further use the well equipped
|
|---|
| 398 | mechanical and electronic workshops in Dortmund and the electronic
|
|---|
| 399 | development departure of the faculty.
|
|---|
| 400 |
|
|---|
| 401 | The ultra fast drive system of the MAGIC telescopes, suitable for fast
|
|---|
| 402 | repositioning in case of Gamma-Ray Bursts, has been developed,
|
|---|
| 403 | commissioned and programmed by the W\"{u}rzburg group
|
|---|
| 404 | \citep{Bretz:2003drive,Bretz:2005drive}. To correct for axis
|
|---|
| 405 | misalignments and possible deformations of the structure (e.g.\ bending
|
|---|
| 406 | of camera holding masts), a pointing correction algorithm was developed
|
|---|
| 407 | \citep{Dorner:Diploma}. Its calibration is done by measurement of the
|
|---|
| 408 | reflection of bright guide stars on the camera surface and ensures a
|
|---|
| 409 | pointing accuracy well below the pixel diameter. Hardware and software
|
|---|
| 410 | (CCD readout, image processing and pointing correction algorithms) have
|
|---|
| 411 | also been developed and are in operation successfully since more than
|
|---|
| 412 | three years \citep{Riegel:2005icrc2}.
|
|---|
| 413 |
|
|---|
| 414 | Mirror structures made of plastic material have been developed as
|
|---|
| 415 | Winston cones for balloon flight experiments previously by the group of
|
|---|
| 416 | Wolfgang Dr\"{o}ge. W\"{u}rzburg has also participated in the development of
|
|---|
| 417 | a HPD test bench, which has been setup in Munich and W\"{u}rzburg. With
|
|---|
| 418 | this setup, HPDs for future improvement of the sensitivity of the MAGIC
|
|---|
| 419 | camera are investigated.
|
|---|
| 420 |
|
|---|
| 421 | \paragraph{Software}
|
|---|
| 422 |
|
|---|
| 423 | The W\"{u}rzburg group has developed a full MAGIC analysis package,
|
|---|
| 424 | flexible and modular enough to easily process DWARF data
|
|---|
| 425 | \citep{Bretz:2005paris,Riegel:2005icrc,Bretz:2005mars}. A method for
|
|---|
| 426 | absolute light calibration of the PMs based on Muon images, especially
|
|---|
| 427 | important for long-term monitoring, has been
|
|---|
| 428 | adapted and further improved for the MAGIC telescope
|
|---|
| 429 | \citep{Meyer:Diploma,Goebel:2005}. Both, data analysis and Monte Carlo
|
|---|
| 430 | production, have been fully automatized, such that both can run with
|
|---|
| 431 | sparse user interaction \citep{Dorner:2005icrc}. The analysis was
|
|---|
| 432 | developed to be powerful and as robust as possible to be best suited
|
|---|
| 433 | for automatic processing \citep{Dorner:2005paris}. Experience with
|
|---|
| 434 | large amount of data (up to 8\,TB/month) has been gained since 2004.
|
|---|
| 435 | The datacenter is equipped with a professional multi-stage
|
|---|
| 436 | (hierarchical) storage system. Two operators are paid by the physics
|
|---|
| 437 | faculty. Currently efforts in W\"{u}rzburg and Dortmund are ongoing to
|
|---|
| 438 | turn the old, inflexible Monte Carlo programs, used by the MAGIC
|
|---|
| 439 | collaboration, into modular packages allowing for easy simulation of
|
|---|
| 440 | other setups. Experience with Monte Carlo simulations, especially
|
|---|
| 441 | CORSIKA, is contributed by the Dortmund group, which has actively
|
|---|
| 442 | implemented changes into the CORSIKA program, such as an extension to
|
|---|
| 443 | large zenith angles, prompt meson production and a new atmospheric
|
|---|
| 444 | model \citep{Haffke:Dipl,Schroeder:PhD} for the local atmosphere of La
|
|---|
| 445 | Palma. Furthermore the group has developed high precision Monte Carlos
|
|---|
| 446 | for Lepton propagation in different media \citep{Chirkin:2004}.
|
|---|
| 447 | An energy unfolding method and program has been adapted for IceCube and
|
|---|
| 448 | MAGIC data analysis \citep{Curtef:CM,Muenich:ICRC}.
|
|---|
| 449 |
|
|---|
| 450 | \paragraph{Phenomenology}
|
|---|
| 451 |
|
|---|
| 452 | Both groups have experience with source models and theoretical
|
|---|
| 453 | computations of gamma-ray and neutrino spectra expected from blazars.
|
|---|
| 454 | The relation between the two messengers is a prime focus of interest.
|
|---|
| 455 | Experience with corresponding multi-messenger data analyses involving
|
|---|
| 456 | MAGIC and IceCube data is available in the Dortmund group. Research
|
|---|
| 457 | activities are also related with relativistic particle acceleration
|
|---|
| 458 | \citep{Meli} and gamma-ray attenuation \citep{Kneiske}. The W\"{u}rzburg
|
|---|
| 459 | group has organized and carried out multi-wavelength observations of
|
|---|
| 460 | bright blazars involving MAGIC, Suzaku, the IRAM telescopes and the
|
|---|
| 461 | KVA optical telescope \citep{Ruegamer}. Signatures of supermassive
|
|---|
| 462 | black hole binaries, which are most relevant also for gravitational
|
|---|
| 463 | wave detectors, are investigated jointly with the German LISA
|
|---|
| 464 | consortium (Burkart, Elbracht ongoing research, funded by DLR).
|
|---|
| 465 | \mbox{Secondary} gamma-rays due to dark matter annihilation events are
|
|---|
| 466 | investigated both from their particle physics and astrophysics aspects.
|
|---|
| 467 | Another main focus of research is on models of radiation and particle
|
|---|
| 468 | acceleration processes in blazar jets (hadronic and leptonic models),
|
|---|
| 469 | leading to predictions of correlated neutrino emission \citep{Rueger}.
|
|---|
| 470 | This includes simulations of particle acceleration due to the Weibel
|
|---|
| 471 | instability \citep{Burkart}. Much of this research at W\"{u}rzburg is
|
|---|
| 472 | carried out in the context of the research training school GRK\,1147
|
|---|
| 473 | {\em Theoretical Astrophysics and Particle Physics}.
|
|---|
| 474 |
|
|---|
| 475 | \section[3]{Goals and Work Schedule (Ziele und Arbeitsprogramm)}
|
|---|
| 476 |
|
|---|
| 477 | \subsection[3.1]{Goals (Ziele)}
|
|---|
| 478 |
|
|---|
| 479 | The aim of the project is to put the former CT3 of the HEGRA
|
|---|
| 480 | collaboration on the Roque de los Muchachos back into operation. It
|
|---|
| 481 | will be setup, under the name DWARF, with an enlarged mirror surface
|
|---|
| 482 | (fig.~\ref{DWARF}), a new camera with higher quantum efficiency and new
|
|---|
| 483 | fast data acquisition system. The energy threshold will be lowered, and
|
|---|
| 484 | the sensitivity of DWARF will be greatly improved compared to HEGRA CT3
|
|---|
| 485 | (see fig.~\ref{sensitivity}). Commissioning and the first year of data
|
|---|
| 486 | taking should be carried out within the three years of the requested
|
|---|
| 487 | funding period.
|
|---|
| 488 |
|
|---|
| 489 | \begin{figure}[ht]
|
|---|
| 490 | \begin{center}
|
|---|
| 491 | \includegraphics*[width=0.496\textwidth,angle=0,clip]{CT3.eps}
|
|---|
| 492 | \includegraphics*[width=0.496\textwidth,angle=0,clip]{DWARF.eps}
|
|---|
| 493 | \caption{The old CT3 telescope as operated within the
|
|---|
| 494 | HEGRA System (left) and a photomontage of the revised CT3 telescope
|
|---|
| 495 | with more and hexagonal mirrors (right).}
|
|---|
| 496 | \label{CT3}
|
|---|
| 497 | \label{DWARF}
|
|---|
| 498 | \end{center}
|
|---|
| 499 | \end{figure}
|
|---|
| 500 |
|
|---|
| 501 | The telescope will be operated robotically to reduce costs and man
|
|---|
| 502 | power demands. Furthermore, we seek to obtain know-how for the
|
|---|
| 503 | operation of future networks of robotic Cherenkov telescopes (e.g. a
|
|---|
| 504 | monitoring array around the globe or CTA) or telescopes at sited
|
|---|
| 505 | difficult to access. From the experience with the construction and
|
|---|
| 506 | operation of MAGIC or HEGRA, the proposing groups consider the planned
|
|---|
| 507 | focused approach (small number of experienced scientists) as optimal
|
|---|
| 508 | for achieving the project goals. The available automatic analysis
|
|---|
| 509 | package developed by the W\"{u}rzburg group for MAGIC is modular and
|
|---|
| 510 | flexible, and can thus be used with minor changes for the DWARF
|
|---|
| 511 | project.
|
|---|
| 512 |
|
|---|
| 513 | \begin{figure}[htb]
|
|---|
| 514 | \begin{center}
|
|---|
| 515 | \includegraphics*[width=0.7\textwidth,angle=0,clip]{visibility.eps}
|
|---|
| 516 | \caption{Source visibility in hours per night versus month of the year
|
|---|
| 517 | considering a maximum observation zenith angle of 65$^\circ$
|
|---|
| 518 | for all sources which we want to monitor including the Crab Nebula,
|
|---|
| 519 | necessary for calibration and quality assurance.}
|
|---|
| 520 | \label{visibility}
|
|---|
| 521 | \end{center}
|
|---|
| 522 | \end{figure}
|
|---|
| 523 |
|
|---|
| 524 | The scientific focus of the project will be on the long-term monitoring
|
|---|
| 525 | of bright, nearby VHE emitting blazars. At least one of the proposed
|
|---|
| 526 | targets will be visible any time of the year (see
|
|---|
| 527 | fig.~\ref{visibility}). For calibration purposes, some time will be
|
|---|
| 528 | scheduled for observations of the Crab \mbox{Nebula}.\\
|
|---|
| 529 |
|
|---|
| 530 | The blazar observations will allow
|
|---|
| 531 | \begin{itemize}
|
|---|
| 532 | \item to determine the baseline emission, the duty cycle and the power
|
|---|
| 533 | spectrum of flux variations.
|
|---|
| 534 | \item to cooperate with the Whipple monitoring telescope for an
|
|---|
| 535 | extended time coverage.
|
|---|
| 536 | \item to prompt Target-of-Opportunity (ToO) observations with MAGIC in
|
|---|
| 537 | the case of flares increasing time resolution. Corresponding
|
|---|
| 538 | ToO proposals to H.E.S.S.\ and VERITAS are in preparation.
|
|---|
| 539 | \item to observe simultaneously with MAGIC which will provide an
|
|---|
| 540 | extended bandwidth from below 100\,GeV to multi-TeV energies.
|
|---|
| 541 | \item to obtain multi-frequency observations together with the
|
|---|
| 542 | Mets\"{a}hovi Radio Observatory and the optical telescopes of the
|
|---|
| 543 | Tuorla Observatory. The measurements will be correlated with INTEGRAL
|
|---|
| 544 | and GLAST results, when available. X-ray monitoring using the SWIFT and
|
|---|
| 545 | Suzaku facilities will be proposed.
|
|---|
| 546 |
|
|---|
| 547 | \end{itemize}
|
|---|
| 548 |
|
|---|
| 549 | Interpretation of the data will yield crucial information about
|
|---|
| 550 | \begin{itemize}
|
|---|
| 551 | \item the nature of the emission processes going on in relativistic
|
|---|
| 552 | jets. We plan to interpret the data with models currently developed in
|
|---|
| 553 | the context of the Research Training Group {\em Theoretical
|
|---|
| 554 | Astrophysics} in W\"{u}rzburg (Graduiertenkolleg, GK\,1147), including
|
|---|
| 555 | particle-in-cell and hybrid MHD models.
|
|---|
| 556 | \item the black hole mass and accretion rate fitting the data with
|
|---|
| 557 | emission models. Results will be compared with estimates of the black
|
|---|
| 558 | hole mass from the Magorrian relation.
|
|---|
| 559 | \item the flux of relativistic protons (ions) by correlating the rate
|
|---|
| 560 | of neutrinos detected with the neutrino telescope IceCube and the rate
|
|---|
| 561 | of gamma-ray photons detected with DWARF, and thus the rate of escaping
|
|---|
| 562 | cosmic rays.
|
|---|
| 563 | \item the orbital modulation owing to a supermassive binary black hole.
|
|---|
| 564 | Constraints on the binary system will allow to compute most accurate
|
|---|
| 565 | templates of gravitational waves, which is a connected project at
|
|---|
| 566 | W\"{u}rzburg in the German LISA consortium funded by DLR.
|
|---|
| 567 | \end{itemize}
|
|---|
| 568 |
|
|---|
| 569 | \subsection[3.2]{Work schedule (Arbeitsprogramm)}
|
|---|
| 570 |
|
|---|
| 571 | To complete the mount to a functional Cherenkov telescope within a
|
|---|
| 572 | period of one year, the following steps are necessary:
|
|---|
| 573 |
|
|---|
| 574 | The work schedule assumes, that the work will begin in January 2008,
|
|---|
| 575 | immediately after funding. Later funding would accordingly shift the
|
|---|
| 576 | schedule. Each year is divided into quarters (see fig.~\ref{schedule}).
|
|---|
| 577 |
|
|---|
| 578 | \begin{figure}[htb]
|
|---|
| 579 | \begin{center}
|
|---|
| 580 | \includegraphics*[width=\textwidth,angle=0,clip]{schedule.eps}
|
|---|
| 581 | \caption{Work schedule for the expected funding period of three years.
|
|---|
| 582 | More details about the work distribution is given in the text.}
|
|---|
| 583 | \label{schedule}
|
|---|
| 584 | %\label{DWARF}
|
|---|
| 585 | \end{center}
|
|---|
| 586 | \end{figure}
|
|---|
| 587 |
|
|---|
| 588 | \paragraph{Software}
|
|---|
| 589 | \begin{itemize}
|
|---|
| 590 | \item MC adaption (Do/W\"{u}): Due to the large similarities with the
|
|---|
| 591 | MAGIC telescope, within half a year new Monte Carlo code can be
|
|---|
| 592 | programmed using parts of the existing MAGIC Monte Carlo code. For
|
|---|
| 593 | tests and cross-checks another period of six months is necessary.
|
|---|
| 594 | \item Analysis adaption (W\"{u}): The modular concept of the Magic
|
|---|
| 595 | Analysis and Reconstruction Software (MARS) allows a very fast adaption
|
|---|
| 596 | of the telescope setup, camera and data acquisition properties within
|
|---|
| 597 | half a year.
|
|---|
| 598 | \item Adaption Drive software (W\"{u}): Since the new drive electronics
|
|---|
| 599 | will be based on the design of the MAGIC~II drive system the control
|
|---|
| 600 | software can be reused unchanged. The integration into the new slow
|
|---|
| 601 | control system will take about half a year. It has to be finished at
|
|---|
| 602 | the time of arrival of the drive system components in 2009/1.
|
|---|
| 603 | \item Slow control/DAQ (Do): A new data acquisition and slow control
|
|---|
| 604 | system for camera and auxiliary systems has to be developed. Based on
|
|---|
| 605 | experiences with the AMANDA DAQ, the Domino DAQ developed for MAGIC~II
|
|---|
| 606 | will be adapted and the slow control integrated within three quarters
|
|---|
| 607 | of a year. Commissioning will take place with the full system in
|
|---|
| 608 | 2009/3.
|
|---|
| 609 | \end{itemize}
|
|---|
| 610 |
|
|---|
| 611 | \paragraph{Mirrors (W\"{u})} First prototypes for the mirrors are
|
|---|
| 612 | already available. After testing (six months), the production will
|
|---|
| 613 | start in summer 2008, and the shipment will be finished before the full
|
|---|
| 614 | system assembly 2009/2.
|
|---|
| 615 | \paragraph{Drive (W\"{u})} After a planning phase of half a year to
|
|---|
| 616 | simplify the MAGIC~II drive system for a smaller telescope (together
|
|---|
| 617 | with the delivering company), ordering, production and shipment should
|
|---|
| 618 | be finished in 2009/1. The MAGIC~I and~II drive systems have been
|
|---|
| 619 | planned and implemented successfully by the W\"{u}rzburg group.
|
|---|
| 620 | \paragraph{Auxiliary (W\"{u})} Before the final setup in 2009/1, all
|
|---|
| 621 | auxiliary systems (weather station, computers, etc.) will have been
|
|---|
| 622 | specified, ordered and shipped.
|
|---|
| 623 | \paragraph{Camera (Do)} The camera has to be ready six month after the
|
|---|
| 624 | shipment of the other mechanical parts of the telescope. For this
|
|---|
| 625 | purpose camera tests have to take place in 2009/2, which requires the
|
|---|
| 626 | assembly of the camera within six months before. By now, a PM test
|
|---|
| 627 | bench is set up in Dortmund, which allows to finish planning and
|
|---|
| 628 | ordering of parts of the camera, including the PMs, until summer 2008,
|
|---|
| 629 | before the construction begins.
|
|---|
| 630 | In addition to the manpower permanently provided by Dortmund
|
|---|
| 631 | for production and commissioning, two engineers will participate in the
|
|---|
| 632 | construction phase.
|
|---|
| 633 | \paragraph{Full System (Do/W\"{u})} The full system will be assembled
|
|---|
| 634 | after the delivery of all parts in the beginning of spring 2009. Start of
|
|---|
| 635 | the commissioning is planned four months later. First light is expected
|
|---|
| 636 | in autumn 2009. This would allow an immediate full system test with a
|
|---|
| 637 | well measured, strong and steady source (Crab Nebula). After the
|
|---|
| 638 | commissioning phase will have been finished in spring 2010, complete
|
|---|
| 639 | robotic operation will be provided.
|
|---|
| 640 |
|
|---|
| 641 | Based on the experience with setting up the MAGIC telescope we estimate
|
|---|
| 642 | this workschedule as conservative.
|
|---|
| 643 |
|
|---|
| 644 | \subsection[3.3]{Experiments with humans (Untersuchungen am Menschen)}
|
|---|
| 645 | none
|
|---|
| 646 | \subsection[3.4]{Experiments with animals (Tierversuche)}
|
|---|
| 647 | none
|
|---|
| 648 | \subsection[3.5]{Experiments with recombinant DNA (Gentechnologische Experimente)}
|
|---|
| 649 | none
|
|---|
| 650 |
|
|---|
| 651 | \clearpage
|
|---|
| 652 |
|
|---|
| 653 | \section[4]{Funds requested (Beantragte Mittel)}
|
|---|
| 654 |
|
|---|
| 655 | Summarizing, the expenses for the telescope are dominated by the camera
|
|---|
| 656 | and data acquisition. We request funding for a total of three years.
|
|---|
| 657 | %The financial volume for the complete hardware inclusive
|
|---|
| 658 | %transport amounts to {\bf 372.985,-\,\euro}.
|
|---|
| 659 |
|
|---|
| 660 | \subsection[4.1]{Required Staff (Personalkosten)}
|
|---|
| 661 |
|
|---|
| 662 | For this period, we request funding for two postdocs and two PhD
|
|---|
| 663 | students, one in Dortmund and one in W\"{u}rzburg each (3\,x\,TV-L13).The
|
|---|
| 664 | staff members shall fulfill the tasks given in the work schedule above.
|
|---|
| 665 | To cover these tasks completely, one additional PhD and a various
|
|---|
| 666 | number of Diploma students will complete the working group.
|
|---|
| 667 |
|
|---|
| 668 | Suitable candidates interested in these positions are Dr.\ Thomas
|
|---|
| 669 | Bretz, Dr.\ dest.\ Daniela Dorner, Dr.\ dest.\ Kirsten M\"{u}nich,
|
|---|
| 670 | cand.\ phys.\ Michael Backes, cand.\ phys.\ Daniela Hadasch and cand.\
|
|---|
| 671 | phys.\ Dominik Neise.
|
|---|
| 672 |
|
|---|
| 673 | \subsection[4.2]{Scientific equipment (Wissenschaftliche Ger\"{a}te)}
|
|---|
| 674 |
|
|---|
| 675 | At the Observatorio del Roque de los Muchachos (ORM), at the MAGIC site,
|
|---|
| 676 | the mount of the former HEGRA telescope CT3 now owned by the MAGIC
|
|---|
| 677 | collaboration is still serviceable. One hut for electronics close to
|
|---|
| 678 | the telescope is available. Additional space is available in the MAGIC
|
|---|
| 679 | counting house. The MAGIC Memorandum of Understanding allows for
|
|---|
| 680 | operating DWARF as an auxiliary instrument (see appendix). Also
|
|---|
| 681 | emergency support from the shift crew is guaranteed, although
|
|---|
| 682 | autonomous robotic operation is the primary goal.
|
|---|
| 683 | \begin{figure}[hb]
|
|---|
| 684 | \centering{
|
|---|
| 685 | %\includegraphics[width=0.605\textwidth]{sensitivity.eps}
|
|---|
| 686 | \includegraphics[width=0.70\textwidth]{sensitivity.eps}
|
|---|
| 687 | \caption{Integral flux sensitivity of several telescopes
|
|---|
| 688 | \citep{Juan:2000,MAGICsensi,Vassiliev:1999}
|
|---|
| 689 | and the expectation for DWARF, with both a PMT- and a
|
|---|
| 690 | GAPD-camera, scaled from the sensitivity of
|
|---|
| 691 | HEGRA~CT1 by the improvements mentioned in the text.
|
|---|
| 692 | } \label{sensitivity} }
|
|---|
| 693 | \end{figure}
|
|---|
| 694 |
|
|---|
| 695 | To achieve the planned sensitivity and threshold
|
|---|
| 696 | (fig.~\ref{sensitivity}), the following components have to be bought.
|
|---|
| 697 | To obtain reliable results as fast as possible well known components
|
|---|
| 698 | have been chosen.\\
|
|---|
| 699 |
|
|---|
| 700 | {\bf Camera}\dotfill 206.450,-\,\euro\\[-3ex]
|
|---|
| 701 | \begin{quote}
|
|---|
| 702 | To setup a camera with 313 pixels the following components are needed:\\
|
|---|
| 703 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 704 | Photomultiplier Tube EMI\,9083B\hfill 220,-\,\euro\\
|
|---|
| 705 | Active voltage divider (EMI)\hfill 80,-\,\euro\\
|
|---|
| 706 | High voltage support and control\hfill 300,-\,\euro\\
|
|---|
| 707 | Preamplifier\hfill 50,-\,\euro\\
|
|---|
| 708 | Spare parts (overall)\hfill 3000,-\,\euro\\
|
|---|
| 709 | \end{minipage}\\[-0.5ex]
|
|---|
| 710 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 711 | For long-term observations, the stability of the camera is a major
|
|---|
| 712 | criterion. To keep the systematic errors small, a good background
|
|---|
| 713 | estimation is mandatory. The only possibility for a synchronous
|
|---|
| 714 | determination of the background is the measurement from the night-sky
|
|---|
| 715 | observed in the same field-of-view with the same instrument. To achieve
|
|---|
| 716 | this, the observed position is moved out of the camera center which
|
|---|
| 717 | allows the estimation of the background from positions symmetric with
|
|---|
| 718 | respect to the camera center (so called Wobble mode). This observation
|
|---|
| 719 | mode increases the sensitivity by a factor of $\sqrt{2}$, because
|
|---|
| 720 | spending observation time for dedicated background observations becomes
|
|---|
| 721 | obsolete, i.e.\ observation time for the source is doubled. This
|
|---|
| 722 | ensures in addition a better time coverage of the observed sources.\\
|
|---|
| 723 | A further increase in sensitivity can be achieved by better background
|
|---|
| 724 | statistics from not only one but several independent positions for the
|
|---|
| 725 | background estimation in the camera \citep{Lessard:2001}. To allow for
|
|---|
| 726 | this the source position in Wobble mode should be shifted
|
|---|
| 727 | $0.6^\circ-0.7^\circ$ out of the camera center.
|
|---|
| 728 |
|
|---|
| 729 | A camera completely containing the shower images of events in the energy
|
|---|
| 730 | region of 1\,TeV-10\,TeV should have a diameter in the order of
|
|---|
| 731 | 5$^\circ$. To decrease the dependence of the measurements on the camera
|
|---|
| 732 | geometry, a camera layout as symmetric as possible will be chosen.
|
|---|
| 733 | Consequently a camera allowing to fulfill these requirements should be
|
|---|
| 734 | round and have a diameter of $4.5^\circ-5.0^\circ$.
|
|---|
| 735 | \begin{figure}[th]
|
|---|
| 736 | \begin{center}
|
|---|
| 737 | \includegraphics*[width=0.495\textwidth,angle=0,clip]{cam271.eps}
|
|---|
| 738 | \includegraphics*[width=0.495\textwidth,angle=0,clip]{cam313.eps}
|
|---|
| 739 | \caption{Left: Schematic picture of the 271 pixel CT3 camera with a field of view of 4.6$^\circ$.
|
|---|
| 740 | Right: Schematic picture of the 313 pixel camera for DWARF with a field of view of 5$^\circ$.}
|
|---|
| 741 | \label{camCT3}
|
|---|
| 742 | \label{camDWARF}
|
|---|
| 743 | \end{center}
|
|---|
| 744 | \end{figure}
|
|---|
| 745 |
|
|---|
| 746 | Therefore a camera with 313 pixel camera (see fig.~\ref{camDWARF}) is
|
|---|
| 747 | chosen. The camera will be built based on the experience with HEGRA and
|
|---|
| 748 | MAGIC. 19\,mm diameter Photomultiplier Tubes (PM, EMI\,9083B/KFLA-UD)
|
|---|
| 749 | will be bought, similar to the HEGRA type (EMI\,9083\,KFLA). They have
|
|---|
| 750 | a quantum efficiency improved by 25\% (see fig.~\ref{qe}) and ensure a
|
|---|
| 751 | granularity which is enough to guarantee good results even below the
|
|---|
| 752 | energy threshold (flux peak energy). Each individual pixel has to be
|
|---|
| 753 | equipped with a preamplifier, an active high-voltage supply and
|
|---|
| 754 | control. The total expense for a single pixel will be in the order of
|
|---|
| 755 | 650,-\,\euro.
|
|---|
| 756 |
|
|---|
| 757 | All possibilities of borrowing one of the old HEGRA cameras for a
|
|---|
| 758 | transition time have been probed and refused by the owners of the
|
|---|
| 759 | cameras.
|
|---|
| 760 |
|
|---|
| 761 | At ETH~Z\"{u}rich currently test measurements are ongoing to prove the
|
|---|
| 762 | ability, i.e.\ stability, aging, quantum efficiency, etc., of using
|
|---|
| 763 | Geiger-mode APDs (GAPD) as photon detectors in the camera of a
|
|---|
| 764 | Cherenkov telescope. The advantages are an extremely high quantum
|
|---|
| 765 | efficiency ($>$50\%), easier gain stabilization and simplified
|
|---|
| 766 | application compared to classical PMs. If these test measurements are
|
|---|
| 767 | successfully finished until 8/2008, we consider to use GAPDs in favor
|
|---|
| 768 | of classical PMs. The design of such a camera would take place at
|
|---|
| 769 | University Dortmund in close collaboration with the experts from ETH.
|
|---|
| 770 | The construction would also take place at the electronics workshop of
|
|---|
| 771 | Dortmund.
|
|---|
| 772 |
|
|---|
| 773 | \end{quote}\vspace{3ex}
|
|---|
| 774 |
|
|---|
| 775 | {\bf Camera support}\dotfill 7.500,-\,\euro\\[-3ex]
|
|---|
| 776 | \begin{quote}
|
|---|
| 777 | For this setup the camera holding has to be redesigned. (1500,-\,\euro)
|
|---|
| 778 | The camera chassis must be water tight and will be equipped with an
|
|---|
| 779 | automatic lid, protecting the PMs at daytime. For further protection, a
|
|---|
| 780 | plexi-glass window will be installed in front of the camera. By coating
|
|---|
| 781 | this window with an anti-reflex layer of magnesium-fluoride, a gain in
|
|---|
| 782 | transmission of 5\% is expected. Each PM will be equipped with a
|
|---|
| 783 | light-guide (Winston cone) as developed by UC Davis and successfully in
|
|---|
| 784 | operation in the MAGIC camera. (3000,-\,\euro\ for all Winston cones). The
|
|---|
| 785 | current design will be improved by using a high reflectivity aluminized
|
|---|
| 786 | Mylar mirror-foil, coated with a dialectical layer ($Si\,O_2$
|
|---|
| 787 | alternated with Niobium Oxide), to reach a reflectivity in the order of
|
|---|
| 788 | 98\%. An electric and optical shielding of the individual PMs is
|
|---|
| 789 | planned.
|
|---|
| 790 |
|
|---|
| 791 | In total a gain of $\sim$15\% in light-collection
|
|---|
| 792 | efficiency compared to the old CT3 system can be achieved.
|
|---|
| 793 | \end{quote}\vspace{3ex}
|
|---|
| 794 |
|
|---|
| 795 | \newpage
|
|---|
| 796 | {\bf Data acquisition}\dotfill 61.035,-\,\euro\\[-3ex]
|
|---|
| 797 | \begin{quote}
|
|---|
| 798 | 313 pixels a\\
|
|---|
| 799 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 800 | Readout\hfill 95,-\,\euro\\
|
|---|
| 801 | Trigger\hfill 100,-\,\euro\\
|
|---|
| 802 | \end{minipage}\\[-0.5ex]
|
|---|
| 803 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 804 | For the data acquisition system a hardware readout based on an analog
|
|---|
| 805 | ring buffer (Domino\ II/IV), currently developed for the MAGIC~II
|
|---|
| 806 | readout, will be used \citep{Barcelo}. This technology allows to sample
|
|---|
| 807 | the pulses with high frequencies and readout several channels with a
|
|---|
| 808 | single Flash-ADC resulting in low costs. The low power consumption will
|
|---|
| 809 | allow to include the digitization near the signal source making
|
|---|
| 810 | the transfer of the analog signal obsolete. This results in less
|
|---|
| 811 | pick-up noise and reduces the signal dispersion. By high sampling rates
|
|---|
| 812 | (1.2\,GHz), additional information about the pulse shape can be
|
|---|
| 813 | obtained. This increases the over-all sensitivity further, because the
|
|---|
| 814 | short integration time allows for almost perfect suppression of noise
|
|---|
| 815 | due to night-sky background photons. The estimated trigger-, i.e.\
|
|---|
| 816 | readout-rate of the telescope is below 100\,Hz (HEGRA: $<$10\,Hz) which
|
|---|
| 817 | allows to use a low-cost industrial solution for readout of the system,
|
|---|
| 818 | like USB\,2.0.
|
|---|
| 819 |
|
|---|
| 820 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 821 | Current results obtained with the new 2\,GHz FADC system in the MAGIC
|
|---|
| 822 | data acquisition show, that for a single telescope a sensitivity
|
|---|
| 823 | improvement of 40\% with a fast FADC system is achievable \citep{Tescaro:2007}.
|
|---|
| 824 |
|
|---|
| 825 | Like for the HEGRA telescopes a simple multiplicity trigger is
|
|---|
| 826 | sufficient, but also a simple neighbor-logic could be programmed (both
|
|---|
| 827 | cases $\sim$100,-\,\euro/channel).
|
|---|
| 828 |
|
|---|
| 829 | Additional data reduction and preprocessing within the readout chain is
|
|---|
| 830 | provided. Assuming conservatively a readout rate of 30\,Hz, the storage
|
|---|
| 831 | space needed will be less than 250\,GB/month or 3\,TB/year. This amount
|
|---|
| 832 | of data can easily be stored and processed by the W\"{u}rzburg
|
|---|
| 833 | Datacenter (current capacity $>$80\,TB, $>$40\,CPUs).
|
|---|
| 834 | \end{quote}\vspace{3ex}
|
|---|
| 835 |
|
|---|
| 836 | {\bf Mirrors}\dotfill 15.000,-\,\euro\\[-3ex]
|
|---|
| 837 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 838 | \begin{quote}
|
|---|
| 839 | The existing mirrors will be replaced by new plastic mirrors currently
|
|---|
| 840 | developed by Wolfgang Dr\"{o}ge's group. The cheap and light-weight
|
|---|
| 841 | material has been formerly used for Winston cones in balloon
|
|---|
| 842 | experiments. The mirrors are copied from a master and coated with a
|
|---|
| 843 | reflecting and a protective material. Tests have given promising
|
|---|
| 844 | results. By a change of the mirror geometry, the mirror area can be
|
|---|
| 845 | increased from 8.5\,m$^2$ to 13\,m$^2$ (see picture~\ref{CT3} and
|
|---|
| 846 | montage~\ref{DWARF}). This includes an increase of $\sim$10$\%$ per
|
|---|
| 847 | mirror by using a hexagonal layout instead of a round one. A further
|
|---|
| 848 | increase of the mirror area would require a reconstruction of parts of
|
|---|
| 849 | the mount and will therefore be considered only in a later phase of the
|
|---|
| 850 | experiment.
|
|---|
| 851 |
|
|---|
| 852 | If the current development of the plastic mirrors cannot be finished in
|
|---|
| 853 | time, a re-machining of the old glass mirrors (8.5\,m$^2$) is possible
|
|---|
| 854 | with high purity aluminum and quartz coating.
|
|---|
| 855 |
|
|---|
| 856 | In both cases the mirrors can be coated with the same high reflectivity
|
|---|
| 857 | aluminized Mylar mirror-foil and a dialectical layer of $SiO_2$ as for
|
|---|
| 858 | the Winston cones. By this, a gain in reflectivity of $\sim10\%$ is
|
|---|
| 859 | achieved, see fig.~\ref{reflectivity} \citep{Fraunhofer}. Both
|
|---|
| 860 | solutions would require the same expenses.
|
|---|
| 861 |
|
|---|
| 862 | To keep track of the alignment, reflectivity and optical quality of the
|
|---|
| 863 | individual mirrors and the point-spread function of the total mirror
|
|---|
| 864 | during long-term observations, the application of an automatic mirror
|
|---|
| 865 | adjustment system, as developed by ETH~Z\"{u}rich and successfully
|
|---|
| 866 | operated on the MAGIC telescope, is intended.
|
|---|
| 867 |
|
|---|
| 868 | %<grey>The system
|
|---|
| 869 | %will be provided by ETH Z"urich.</grey>
|
|---|
| 870 |
|
|---|
| 871 | %{\bf For a diameter mirror of less than 2.4\,m, the delay between an
|
|---|
| 872 | %parabolic (isochronous) and a spherical mirror shape at the edge is well
|
|---|
| 873 | %below 1ns (see figure). Thus for a sampling rate of 1.2\,GHz parabolic
|
|---|
| 874 | %individual mirrors are not needed. Due to their small size the
|
|---|
| 875 | %individual mirrors can have a spherical shape.}
|
|---|
| 876 | %}\\[2ex]
|
|---|
| 877 | \end{quote}\vspace{3ex}
|
|---|
| 878 |
|
|---|
| 879 | {\bf Calibration System}\dotfill 9.650,-\,\euro\\[-3ex]
|
|---|
| 880 | \begin{quote}
|
|---|
| 881 | Components\\
|
|---|
| 882 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 883 | Absolute light calibration\hfill 2.000,-\,\euro\\
|
|---|
| 884 | Individual pixel rate control\hfill 3.000,-\,\euro\\
|
|---|
| 885 | Weather station\hfill 500,-\,\euro\\
|
|---|
| 886 | GPS clock\hfill 1.500,-\,\euro\\
|
|---|
| 887 | CCD cameras with readout\hfill 2.650,-\,\euro\\
|
|---|
| 888 | \end{minipage}\\[-0.5ex]
|
|---|
| 889 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 890 | For the absolute light calibration (gain-calibration) of the PMs a
|
|---|
| 891 | calibration box, as successfully used in the MAGIC telescope, will be
|
|---|
| 892 | produced.
|
|---|
| 893 |
|
|---|
| 894 | To ensure a homogeneous acceptance of the camera, essential for
|
|---|
| 895 | Wobble mode observations, the trigger rate of the individual pixels
|
|---|
| 896 | will be measured and controlled.
|
|---|
| 897 |
|
|---|
| 898 | For a correction of axis misalignments and possible deformations of the
|
|---|
| 899 | structure (e.g.\ bending of camera holding masts) a pointing correction
|
|---|
| 900 | algorithm will be applied, as used in the MAGIC tracking system. It is
|
|---|
| 901 | calibrated by measurements of the reflection of bright guide stars on
|
|---|
| 902 | the camera surface and ensures a pointing accuracy well below the pixel
|
|---|
| 903 | diameter. Therefore a high sensitive low-cost video camera, as for
|
|---|
| 904 | MAGIC\ I and~II, (300,-\,\euro\ camera, 600,-\,\euro\ optics,
|
|---|
| 905 | 300,-\,\euro\ housing, 250,-\,\euro\ frame grabber) will be installed.
|
|---|
| 906 |
|
|---|
| 907 | A second identical CCD camera for online monitoring (starguider) will
|
|---|
| 908 | be bought.
|
|---|
| 909 |
|
|---|
| 910 | For an accurate tracking a GPS clock is necessary. The weather station
|
|---|
| 911 | helps judging the data quality.
|
|---|
| 912 | %}\\[2ex]
|
|---|
| 913 | \end{quote}\vspace{3ex}
|
|---|
| 914 |
|
|---|
| 915 | {\bf Computing}\dotfill 12.000,-\,\euro\\[-3ex]
|
|---|
| 916 | \begin{quote}
|
|---|
| 917 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 918 | Three PCs\hfill 8.000,-\,\euro\\
|
|---|
| 919 | SATA RAID 3TB\hfill 4.000,-\,\euro\\
|
|---|
| 920 | \end{minipage}\\[-0.5ex]
|
|---|
| 921 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 922 | For on-site computing three standard PCs are needed ($\sim$8.000,-\,\euro).
|
|---|
| 923 | This includes readout and storage, preprocessing and telescope control.
|
|---|
| 924 | For safety reasons, a firewall is mandatory. For local cache-storage
|
|---|
| 925 | and backup, two RAID\,5 SATA disk arrays with one Terabyte capacity
|
|---|
| 926 | each will fulfill the requirement ($\sim$4.000,-\,\euro). The data will be
|
|---|
| 927 | transmitted as soon as possible after data taking via Internet to the
|
|---|
| 928 | W\"{u}rzburg Datacenter. Enough storage capacity and computing power
|
|---|
| 929 | is available there and already reserved for this purpose.
|
|---|
| 930 |
|
|---|
| 931 | Monte Carlo production and storage will take place at University
|
|---|
| 932 | Dortmund.%}\\[2ex]
|
|---|
| 933 | \end{quote}\vspace{3ex}
|
|---|
| 934 |
|
|---|
| 935 | %%%%%%%%%%%%%% PLOTS HERE???? %%%%%%%%%%%%%%%%%%%%%%%%%%
|
|---|
| 936 |
|
|---|
| 937 | {\bf Mount and Drive}\dotfill 17.500,-\,\euro\\[-3ex]
|
|---|
| 938 | \begin{quote}
|
|---|
| 939 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 940 | The present mount is used. Only a smaller investment for safety,
|
|---|
| 941 | corrosion protection, cable ducts, etc. is needed (7.500,-\,\euro).
|
|---|
| 942 |
|
|---|
| 943 | Motors, shaft encoders and control electronics in the order of
|
|---|
| 944 | 10.000,-\,\euro\ have to be bought. The costs have been estimated with
|
|---|
| 945 | the experience from building the MAGIC drive systems. The DWARF drive
|
|---|
| 946 | system should allow for relatively fast repositioning for three
|
|---|
| 947 | reasons: (i)~Fast movement might be mandatory for future ToO
|
|---|
| 948 | observations. (ii)~Wobble mode observations will be done changing the
|
|---|
| 949 | Wobble-position continuously (each 20\,min) for symmetry reasons.
|
|---|
| 950 | (iii)~To ensure good time coverage of more than one source visible at
|
|---|
| 951 | the same time, the observed source will be changed in constant time
|
|---|
| 952 | intervals.
|
|---|
| 953 |
|
|---|
| 954 | For the drive system three 150\,Watt servo motors are intended to be bought. A
|
|---|
| 955 | micro-controller based motion control unit (Siemens SPS L\,20) similar to
|
|---|
| 956 | the one of the current MAGIC~II drive system will be used. For
|
|---|
| 957 | communication with the readout-system, a standard Ethernet connection
|
|---|
| 958 | based on the TCP/IP- and UDP-protocol will be setup.
|
|---|
| 959 | %}\\[2ex]
|
|---|
| 960 | \end{quote}\vspace{3ex}
|
|---|
| 961 |
|
|---|
| 962 | {\bf Security}\dotfill 4.000,-\,\euro\\[-3ex]
|
|---|
| 963 | \begin{quote}
|
|---|
| 964 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 965 | Uninterruptable power-supply (UPS)\hfill 2.000,-\,\euro\\
|
|---|
| 966 | Security fence\hfill 2.000,-\,\euro\\
|
|---|
| 967 | \end{minipage}\\[-0.5ex]
|
|---|
| 968 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 969 | A UPS with 5\,kW-10\,kW will be
|
|---|
| 970 | installed to protect the equipment against power cuts and ensure a safe
|
|---|
| 971 | telescope position at the time of sunrise.
|
|---|
| 972 |
|
|---|
| 973 | For protection in case of robotic movement a fence will be
|
|---|
| 974 | installed.%}\\[2ex]
|
|---|
| 975 | \end{quote}\vspace{3ex}
|
|---|
| 976 |
|
|---|
| 977 | {\bf Other expenses}\dotfill 7.500,-\,\euro\\[-3ex]
|
|---|
| 978 | \begin{quote}
|
|---|
| 979 | %\parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 980 | % Robotics\hfill 7.500,-\,\euro\\
|
|---|
| 981 | % \end{minipage}\\[-0.5ex]
|
|---|
| 982 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 983 | For remote, robotic operation a variety of remote controllable electronic
|
|---|
| 984 | components such as Ethernet controlled sockets and switches will be
|
|---|
| 985 | bought. Monitoring equipment, for example different kind of sensors, is
|
|---|
| 986 | also mandatory.%}\\[2ex]
|
|---|
| 987 | \end{quote}
|
|---|
| 988 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 989 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.2:\hfill{\bf
|
|---|
| 990 | 341.135,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 991 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 992 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 993 |
|
|---|
| 994 | \begin{figure}[p]
|
|---|
| 995 | \centering{
|
|---|
| 996 | \includegraphics[width=0.57\textwidth]{cherenkov.eps}
|
|---|
| 997 | \includegraphics[width=0.57\textwidth]{reflectivity.eps}
|
|---|
| 998 | \includegraphics[width=0.57\textwidth]{qe.eps}
|
|---|
| 999 | \caption{Top to bottom: The Cherenkov spectrum as observed by a
|
|---|
| 1000 | telescope located at 2000\,m above sea level. The mirror's reflectivity
|
|---|
| 1001 | of a 300\,nm thick aluminum layer with a protection layer of 10\,nm and
|
|---|
| 1002 | 100\,nm thickness respectively. For comparison the reflectivity of
|
|---|
| 1003 | HEGRA CT1's mirrors \citep{Kestel:2000} are shown. The bottom plot depicts
|
|---|
| 1004 | the quantum efficiency of the preferred PMs (EMI) together with the
|
|---|
| 1005 | predecessor used in CT1. A proper coating \citep{Paneque:2004} will
|
|---|
| 1006 | further enhance its efficiency. An even better increase would be the
|
|---|
| 1007 | usage of Geiger-mode APDs.}
|
|---|
| 1008 |
|
|---|
| 1009 | \label{cherenkov}
|
|---|
| 1010 | \label{reflectivity}
|
|---|
| 1011 | \label{qe}
|
|---|
| 1012 | }
|
|---|
| 1013 | \end{figure}
|
|---|
| 1014 |
|
|---|
| 1015 | \subsection[4.3]{Consumables (Verbrauchsmaterial)}
|
|---|
| 1016 |
|
|---|
| 1017 | \begin{quote}
|
|---|
| 1018 | % \parbox[t]{1em}{~}\begin{minipage}[t]{0.9\textwidth}
|
|---|
| 1019 | 10 LTO\,4 tapes (8\,TB)\dotfill 750,-\,\euro\\
|
|---|
| 1020 | Consumables (overalls): tools and materials\dotfill 10.000,-\,\euro
|
|---|
| 1021 | % \end{minipage}\\[-0.5ex]
|
|---|
| 1022 | \end{quote}
|
|---|
| 1023 |
|
|---|
| 1024 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 1025 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.3:\hfill{\bf
|
|---|
| 1026 | 10.750,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 1027 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 1028 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 1029 |
|
|---|
| 1030 | \subsection[4.4]{Travel expenses (Reisen)}
|
|---|
| 1031 | The large amount of travel funding is required due to the very close
|
|---|
| 1032 | cooperation between Dortmund and W\"{u}rzburg and the work demands on
|
|---|
| 1033 | the construction site.\\[-2ex]
|
|---|
| 1034 |
|
|---|
| 1035 | \begin{quote}
|
|---|
| 1036 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1037 | Per year one senior group member from Dortmund and W\"{u}rzburg should
|
|---|
| 1038 | present the status of the work in progress at an international workshop
|
|---|
| 1039 | or conference:\\
|
|---|
| 1040 | 2 x 3\,years x 1.500,-\,\euro\dotfill 9.000,-\,\euro\\[-2ex]
|
|---|
| 1041 |
|
|---|
| 1042 | One participation at the biannual MAGIC collaboration meeting:\\
|
|---|
| 1043 | 2 x 3\,years x 1.000,-\,\euro\dotfill 6.000,-\,\euro\\[-2ex]
|
|---|
| 1044 |
|
|---|
| 1045 | PhD student exchange between W\"{u}rzburg and Dortmund:\\
|
|---|
| 1046 | 1\,student x 1\,week x 24 (every six weeks) x 800,-\,\euro\dotfill
|
|---|
| 1047 | 19.200,-\,\euro\\[-2ex]
|
|---|
| 1048 |
|
|---|
| 1049 | For setup of the telescope at La Palma the following travel expenses
|
|---|
| 1050 | are necessary:\\
|
|---|
| 1051 | 4 x 2\,weeks at La Palma x 2\,persons x 1.800,-\,\euro\dotfill
|
|---|
| 1052 | 28.800,-\,\euro
|
|---|
| 1053 | %}
|
|---|
| 1054 | \end{quote}
|
|---|
| 1055 |
|
|---|
| 1056 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 1057 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.4:\hfill{\bf
|
|---|
| 1058 | 63.000,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 1059 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 1060 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 1061 |
|
|---|
| 1062 |
|
|---|
| 1063 | \subsection[4.5]{Publication costs (Publikationskosten)}
|
|---|
| 1064 | Will be covered by the proposing institutes.
|
|---|
| 1065 |
|
|---|
| 1066 |
|
|---|
| 1067 | \subsection[4.6]{Other costs (Sonstige Kosten)}
|
|---|
| 1068 | \begin{quote}
|
|---|
| 1069 | Storage container (for shipment of the mirrors)\dotfill 5.000,-\,\euro\\
|
|---|
| 1070 | Transport\dotfill 15.000,-\,\euro\\
|
|---|
| 1071 | Dismantling (will be covered by proposing institutes)\dotfill n/a
|
|---|
| 1072 | \end{quote}
|
|---|
| 1073 |
|
|---|
| 1074 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 1075 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.6:\hfill{\bf
|
|---|
| 1076 | 20.000,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 1077 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 1078 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 1079 |
|
|---|
| 1080 | \newpage
|
|---|
| 1081 | \germanTeX
|
|---|
| 1082 | \section[5]{Preconditions for carrying out the project\\(Voraussetzungen f"ur die Durchf"uhrung des Vorhabens)}
|
|---|
| 1083 | none
|
|---|
| 1084 |
|
|---|
| 1085 | \subsection[5.1]{The research team (Zusammensetzung der Arbeitsgruppe)}
|
|---|
| 1086 |
|
|---|
| 1087 | \paragraph{Dortmund}
|
|---|
| 1088 | \begin{itemize}
|
|---|
| 1089 | \setlength{\itemsep}{0pt}
|
|---|
| 1090 | \setlength{\parsep}{0pt}
|
|---|
| 1091 | \item Prof.\ Dr.\ Dr.\ Wolfgang Rhode (Grundauststattung)
|
|---|
| 1092 | \item Dr.\ Tanja Kneiske (Postdoc (Ph"anomenologie), DFG-Forschungsstipendium)
|
|---|
| 1093 | \item Dr.\ Julia Becker (Postdoc (Ph"anomenologie), Drittmittel)
|
|---|
| 1094 | \item Dipl.-Phys.\ Kirsten M"unich (Doktorand (IceCube), Drittmittel)
|
|---|
| 1095 | \item Dipl.-Phys.\ Jens Dreyer (Doktorand (IceCube), Grundauststattung)
|
|---|
| 1096 | \item M.Sc.\ Valentin Curtef (Doktorand (MAGIC), Grundausstattung)
|
|---|
| 1097 | \item cand.\ phys.\ Michael Backes (Diplomand (MAGIC), zum F"orderbeginn diplomiert)
|
|---|
| 1098 | \item cand.\ phys.\ Daniela Hadasch (Diplomand (MAGIC))
|
|---|
| 1099 | \item cand.\ phys.\ Anne Wiedemann (Diplomand (IceCube))
|
|---|
| 1100 | \item cand.\ phys.\ Dominik Neise (Diplomand (MAGIC))
|
|---|
| 1101 | \item Dipl.-Ing.\ Kai Warda (Elektronik)
|
|---|
| 1102 | \item PTA Matthias Domke (Systemadministration)
|
|---|
| 1103 | \end{itemize}
|
|---|
| 1104 |
|
|---|
| 1105 | \paragraph{W\"{u}rzburg}
|
|---|
| 1106 | \begin{itemize}
|
|---|
| 1107 | \setlength{\itemsep}{0pt}
|
|---|
| 1108 | \setlength{\parsep}{0pt}
|
|---|
| 1109 | \item Prof.\ Dr.\ Karl Mannheim (Landesmittel)
|
|---|
| 1110 | \item Prof.\ Dr.\ Thomas Trefzger (Landesmittel)
|
|---|
| 1111 | \item Prof.\ Dr.\ Wolfgang Dr"oge (Landesmittel)
|
|---|
| 1112 | \item Dr.\ Thomas Bretz (Postdoc (MAGIC), BMBF)
|
|---|
| 1113 | \item Dr.\ Felix Spanier (Postdoc, Landesmittel)
|
|---|
| 1114 | \item Dipl.-Phys.\ Jordi Albert (Doktorand, DFG-GRK1147)
|
|---|
| 1115 | \item Dipl.-Phys.\ Karsten Berger (Doktorand (MAGIC), Landesmittel)
|
|---|
| 1116 | \item Dipl.-Phys.\ Thomas Burkart (Doktorand (LISA), DLR)
|
|---|
| 1117 | \item Dipl.-Phys.\ Oliver Elbracht (Doktorand, Elitenetzwerk Bayern)
|
|---|
| 1118 | \item Dipl.-Phys.\ Dominik Els"asser (Doktorand, Elitenetzwerk Bayern)
|
|---|
| 1119 | \item Dipl.-Phys.\ Daniela Dorner (Doktorand (MAGIC), BMBF)
|
|---|
| 1120 | \item Dipl.-Phys.\ Daniel H"ohne (Doktorand (MAGIC), Landesmittel)
|
|---|
| 1121 | \item Dipl.-Phys.\ Markus Meyer (Doktorand, DFG-GRK1147)
|
|---|
| 1122 | \item M.Sc.\ Surajit Paul (Doktorand, DFG-GRK1147)
|
|---|
| 1123 | \item Dipl.-Phys.\ Stefan R"ugamer (Doktorand (MAGIC), Landesmittel)
|
|---|
| 1124 | \item Dipl.-Phys.\ Michael R"uger (Doktorand, Elitenetzwerk Bayern)
|
|---|
| 1125 | \item Dipl.-Phys.\ Martina Wei"s (Doktorand, Elitenetzwerk Bayern)
|
|---|
| 1126 | \item cand.\ phys.\ Sebastian Huber
|
|---|
| 1127 | \item cand.\ phys.\ Tobias Hein
|
|---|
| 1128 | \item cand.\ phys.\ Tobias Viering
|
|---|
| 1129 | \end{itemize}
|
|---|
| 1130 | \originalTeX
|
|---|
| 1131 |
|
|---|
| 1132 | \subsection[5.2]{Cooperation with other scientists\\(Zusammenarbeit mit
|
|---|
| 1133 | anderen Wissenschaftlern)}
|
|---|
| 1134 |
|
|---|
| 1135 | Both applying groups cooperate with the international
|
|---|
| 1136 | MAGIC collaboration and the institutes represented therein. (W\"{u}rzburg
|
|---|
| 1137 | funded by the BMBF, Dortmund by means of appointment for the moment).
|
|---|
| 1138 |
|
|---|
| 1139 | W\"{u}rzburg is also in close scientific exchange with the group of
|
|---|
| 1140 | Prof.~Dr.~Victoria Fonseca, UCM Madrid and the University of Turku
|
|---|
| 1141 | (Finland) operating the KVA optical telescope at La Palma. Other
|
|---|
| 1142 | cooperations refer to the projects JEM-EUSO (science case), GRIPS
|
|---|
| 1143 | (simulation), LISA (astrophysical input for templates), STEREO (data
|
|---|
| 1144 | analysis), and SOLAR ORBITER (electron-proton telescope). A cooperation
|
|---|
| 1145 | with GLAST science team members (Dr.~Anita and Dr.~Olaf Reimer,
|
|---|
| 1146 | Stanford) is also relevant for the proposed project.
|
|---|
| 1147 |
|
|---|
| 1148 | The group in Dortmund is involved in the IceCube experiment (BMBF
|
|---|
| 1149 | funding) and maintains close contacts to the collaboration partners.
|
|---|
| 1150 | Moreover on the field of phenomenology good working contacts exist to
|
|---|
| 1151 | the groups of Prof.~Dr.~Reinhard Schlickeiser, Ruhr-Universit\"{a}t
|
|---|
| 1152 | Bochum and Prof.~Dr.~Peter Biermann, MPIfR Bonn. There are furthermore
|
|---|
| 1153 | intense contacts to Prof.~Dr.~Francis Halzen, Madison, Wisconsin.
|
|---|
| 1154 |
|
|---|
| 1155 | The telescope design will be worked out in close cooperation with the
|
|---|
| 1156 | group of Prof.~Dr.~Felicitas Pauss, Dr.~Adrian Biland and
|
|---|
| 1157 | Prof.~Dr.~Eckart Lorenz (ETH~Z\"{u}rich). They will provide help in design
|
|---|
| 1158 | studies, construction and software development. The DAQ design will be
|
|---|
| 1159 | contributed by the group of Prof.~Dr.~Riccardo Paoletti (Universit\`{a} di
|
|---|
| 1160 | Siena and INFN sez.\ di Pisa, Italy).
|
|---|
| 1161 |
|
|---|
| 1162 | The group of the newly appointed {\em Lehrstuhl f\"{u}r Physik und ihre
|
|---|
| 1163 | Didaktik} (Prof.~Dr.~Thomas Trefzger) has expressed their interest to
|
|---|
| 1164 | join the project. They bring in a laboratory for photo-sensor testing,
|
|---|
| 1165 | know-how from former contributions to ATLAS and a joint interest in
|
|---|
| 1166 | operating a data pipeline using GRID technologies.
|
|---|
| 1167 |
|
|---|
| 1168 | \subsection[5.3]{Work outside Germany, Cooperation with foreign
|
|---|
| 1169 | partners\\(Arbeiten im Ausland, Kooperation mit Partnern im Ausland)}
|
|---|
| 1170 |
|
|---|
| 1171 | The work on DWARF will take place at the ORM on the Spanish island La
|
|---|
| 1172 | Palma. It will be performed in close collaboration with the
|
|---|
| 1173 | MAGIC collaboration.
|
|---|
| 1174 |
|
|---|
| 1175 | \subsection[5.4]{Scientific equipment available (Apparative
|
|---|
| 1176 | Ausstattung)}
|
|---|
| 1177 | In Dortmund and W\"{u}rzburg extensive computer capacities for data
|
|---|
| 1178 | storage as well as for data analysis are available.
|
|---|
| 1179 |
|
|---|
| 1180 | The faculty of physics at the University Dortmund has modern
|
|---|
| 1181 | equipped mechanical and electrical workshops including a department for
|
|---|
| 1182 | development of electronics at its command. The chair of astroparticle
|
|---|
| 1183 | physics possesses common technical equipment required for constructing
|
|---|
| 1184 | modern DAQ.
|
|---|
| 1185 |
|
|---|
| 1186 | The faculty of physics at the University of W\"{u}rzburg comes with a
|
|---|
| 1187 | mechanical and an electronic workshop, as well as a special laboratory
|
|---|
| 1188 | of the chair for astronomy suitable for photosensor testing.
|
|---|
| 1189 |
|
|---|
| 1190 | \subsection[5.5]{The institution's general contribution\\(Laufende
|
|---|
| 1191 | Mittel f\"{u}r Sachausgaben)}
|
|---|
| 1192 |
|
|---|
| 1193 | Current total institute budget from the University Dortmund
|
|---|
| 1194 | $\sim$20.000,-\,\euro\ per year.
|
|---|
| 1195 |
|
|---|
| 1196 | Current total institute budget from the University W\"{u}rzburg
|
|---|
| 1197 | $\sim$30.000,-\,\euro\ per year.
|
|---|
| 1198 |
|
|---|
| 1199 | %\paragraph{5.6 Conflicts of interest in economic activities\\Interessenskonflikte bei wirtschaftlichen Aktivit\"aten}~\\
|
|---|
| 1200 | \subsection[5.6]{Conflicts of interest in economic activities\\(Interessenskonflikte bei wirtschaftlichen Aktivit\"{a}ten)}~\\
|
|---|
| 1201 | none
|
|---|
| 1202 |
|
|---|
| 1203 | \subsection[5.7]{Other requirements (Sonstige Voraussetzungen)}~\\
|
|---|
| 1204 | none
|
|---|
| 1205 |
|
|---|
| 1206 | \newpage
|
|---|
| 1207 | \thispagestyle{empty}
|
|---|
| 1208 |
|
|---|
| 1209 | \paragraph{6 Declarations (Erkl\"{a}rungen)}
|
|---|
| 1210 |
|
|---|
| 1211 | A request for funding this project has not been submitted to
|
|---|
| 1212 | any other addressee. In case we submit such a request we will inform
|
|---|
| 1213 | the Deutsche Forschungsgemeinschaft immediately. \\
|
|---|
| 1214 |
|
|---|
| 1215 | The corresponding persons (Vertrauensdozenten) at the
|
|---|
| 1216 | Universit\"{a}t Dortmund (Prof.\ Dr.\ Gather) and at the Universit\"{a}t
|
|---|
| 1217 | W\"{u}rzburg (Prof.\ Dr.\ G.\ Bringmann) have been informed about the
|
|---|
| 1218 | submission of this proposal.
|
|---|
| 1219 |
|
|---|
| 1220 | \paragraph{7 Signatures (Unterschriften)}~\\
|
|---|
| 1221 |
|
|---|
| 1222 | \vspace{2.5 cm}
|
|---|
| 1223 |
|
|---|
| 1224 | \hfill
|
|---|
| 1225 | \begin{minipage}[t]{6cm}
|
|---|
| 1226 | W\"{u}rzburg,\\[3.0cm]
|
|---|
| 1227 | \parbox[t]{6cm}{\hrulefill}\\
|
|---|
| 1228 | \parbox[t]{6cm}{~\hfill Prof.\ Dr.\ Karl Mannheim\hfill~}\\
|
|---|
| 1229 | \end{minipage}
|
|---|
| 1230 | \hfill
|
|---|
| 1231 | \begin{minipage}[t]{6cm}
|
|---|
| 1232 | Dortmund,\\[3.0cm]
|
|---|
| 1233 | \parbox[t]{6cm}{\hrulefill}\\
|
|---|
| 1234 | \parbox[t]{6cm}{~\hfill Prof.\ Dr.\ Dr.\ Wolfgang Rhode\hfill~}\\
|
|---|
| 1235 | \end{minipage}\hfill~
|
|---|
| 1236 |
|
|---|
| 1237 | \thispagestyle{empty}
|
|---|
| 1238 | \newpage
|
|---|
| 1239 | \mbox{}
|
|---|
| 1240 | \thispagestyle{empty}
|
|---|
| 1241 | \newpage
|
|---|
| 1242 | \paragraph{8 List of appendices (Verzeichnis der Anlagen)}
|
|---|
| 1243 |
|
|---|
| 1244 | \begin{itemize}
|
|---|
| 1245 | \item
|
|---|
| 1246 | %Schriftenverzeichnis der Antragsteller seit dem Jahr 2000
|
|---|
| 1247 | List of refereed publications of the applicants since 2000
|
|---|
| 1248 | \item Appendix A: Chapter 4 in German
|
|---|
| 1249 | \item CV of Karl Mannheim
|
|---|
| 1250 | \item CV of Wolfgang Rhode
|
|---|
| 1251 | \item Letter of Support from the MAGIC collaboration
|
|---|
| 1252 | \item Letter of Support from Mets\"{a}hovi Radio Observatory
|
|---|
| 1253 | \item Letter of Support from the IceCube collaboration
|
|---|
| 1254 | \item Letter of Support from KVA optical telescope
|
|---|
| 1255 | \item Email with offer from EMI for the PMs
|
|---|
| 1256 | \end{itemize}
|
|---|
| 1257 | \newpage
|
|---|
| 1258 | \mbox{}
|
|---|
| 1259 | \thispagestyle{empty}
|
|---|
| 1260 | \newpage
|
|---|
| 1261 |
|
|---|
| 1262 | \appendix
|
|---|
| 1263 | \germanTeX
|
|---|
| 1264 | \section[4]{Beantragte Mittel}
|
|---|
| 1265 |
|
|---|
| 1266 | Die beantragten Mittel werden durch die Ausgaben f"ur die Kamera und
|
|---|
| 1267 | die Datennahme dominiert. Wir beantragen eine F"orderung von drei Jahren.
|
|---|
| 1268 |
|
|---|
| 1269 | \subsection[4.1]{Personalkosten}
|
|---|
| 1270 |
|
|---|
| 1271 | F"ur diesen Zeitraum beantragen wir die Finanzierung von zwei Postdocs
|
|---|
| 1272 | und zwei Doktoranden, jeweils einer in Dortmund und einer in W"urzburg
|
|---|
| 1273 | (3\,x\,TV-L13). Mit den besetzten Stellen sollen die erw"ahnten Arbeiten
|
|---|
| 1274 | zur Planung und zum Bau des Teleskops durchgef"uhrt werden. Zus"atzlich
|
|---|
| 1275 | wird noch eine schwankende Zahl an Doktoranden und Diplomanden
|
|---|
| 1276 | zur Verf"ugung stehen.
|
|---|
| 1277 |
|
|---|
| 1278 | Interessierte Kandidaten sind Dr.\ Thomas
|
|---|
| 1279 | Bretz, Dr.\ dest.\ Daniela Dorner, Dr.\ dest.\ Kirsten M\"{u}nich,
|
|---|
| 1280 | cand.\ phys.\ Michael Backes, cand.\ phys.\ Daniela Hadasch und cand.\
|
|---|
| 1281 | phys.\ Dominik Neise.
|
|---|
| 1282 |
|
|---|
| 1283 | \subsection[4.2]{Wissenschaftliche Ger\"{a}te}
|
|---|
| 1284 |
|
|---|
| 1285 | Am Observatorio del Roque de los Muchachos (ORM), nahe dem MAGIC
|
|---|
| 1286 | Teleskop, steht noch das ehemalige HEGRA-Teleskop (CT3) zur Verf"ugung.
|
|---|
| 1287 | Es ist noch immer nutzbar und geh"ort jetzt der MAGIC Kollaboration.
|
|---|
| 1288 | Au"serdem ist noch ein Container zur Unterbringung von Elektronik,
|
|---|
| 1289 | sowie weiterer Platz im MAGIC-eignenen Haus vorhanden. Der Memorandum
|
|---|
| 1290 | of Understanding der MAGIC-Kollaboration erlaubt uns den Betrieb des
|
|---|
| 1291 | Teleskops als DWARF (siehe Anlage). F"ur Notfallsituationen steht die
|
|---|
| 1292 | MAGIC Schichtmannschaft zur Verf"ugung.
|
|---|
| 1293 |
|
|---|
| 1294 | Um die angestrebte Sensitivit"at und Energieschwelle (Abb.~\ref{sensitivity})
|
|---|
| 1295 | in m"oglichgst kurzer Zeit zu erreichen, wurden die folgenden
|
|---|
| 1296 | Komponenten ausgew"ahlt. Einzelheiten zu den Auswahlkriterien k"onnen
|
|---|
| 1297 | im Kapitel~4 nachgelesen werden.\\
|
|---|
| 1298 |
|
|---|
| 1299 | {\bf Kamera}\dotfill 206.450,-\,\euro\\[-3ex]
|
|---|
| 1300 | \begin{quote}
|
|---|
| 1301 | F"ur eine Kamera mit 313 Pixel werden folgende Komponenten ben"otigt:\\
|
|---|
| 1302 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 1303 | Photomultiplier R"ohre EMI\,9083B\hfill 220,-\,\euro\\
|
|---|
| 1304 | Aktiver Spannungsteiler (EMI)\hfill 80,-\,\euro\\
|
|---|
| 1305 | Hochspannungsversorgung und -kontrolle\hfill 300,-\,\euro\\
|
|---|
| 1306 | Vorverst"arker\hfill 50,-\,\euro\\
|
|---|
| 1307 | Ersatzteile (pauschal)\hfill 3000,-\,\euro\\
|
|---|
| 1308 | \end{minipage}\\[-0.5ex]
|
|---|
| 1309 | %For long-term observations, the stability of the camera is a major
|
|---|
| 1310 | %criterion. To keep the systematic errors small, a good background
|
|---|
| 1311 | %estimation is mandatory. The only possibility for a synchronous
|
|---|
| 1312 | %determination of the background is the measurement from the night-sky
|
|---|
| 1313 | %observed in the same field-of-view with the same instrument. To achieve
|
|---|
| 1314 | %this, the observed position is moved out of the camera center which
|
|---|
| 1315 | %allows the estimation of the background from positions symmetric with
|
|---|
| 1316 | %respect to the camera center (so called Wobble mode). This observation
|
|---|
| 1317 | %mode increases the sensitivity by a factor of $\sqrt{2}$, because
|
|---|
| 1318 | %spending observation time for dedicated background observations becomes
|
|---|
| 1319 | %obsolete, i.e.\ observation time for the source is doubled. This
|
|---|
| 1320 | %ensures in addition a better time coverage of the observed sources.\\
|
|---|
| 1321 | %A further increase in sensitivity can be achieved by better background
|
|---|
| 1322 | %statistics from not only one but several independent positions for the
|
|---|
| 1323 | %background estimation in the camera \citep{Lessard:2001}. To allow for
|
|---|
| 1324 | %this the source position in Wobble mode should be shifted
|
|---|
| 1325 | %$0.6^\circ-0.7^\circ$ out of the camera center.
|
|---|
| 1326 | %
|
|---|
| 1327 | %A camera completely containing the shower images of events in the energy
|
|---|
| 1328 | %region of 1\,TeV-10\,TeV should have a diameter in the order of
|
|---|
| 1329 | %5$^\circ$. To decrease the dependence of the measurements on the camera
|
|---|
| 1330 | %geometry, a camera layout as symmetric as possible will be chosen.
|
|---|
| 1331 | %Consequently a camera allowing to fulfill these requirements should be
|
|---|
| 1332 | %round and have a diameter of $4.5^\circ-5.0^\circ$.
|
|---|
| 1333 | %
|
|---|
| 1334 | %Therefore a camera with 313 pixel camera (see fig.~\ref{camDWARF}) is
|
|---|
| 1335 | %chosen. The camera will be built based on the experience with HEGRA and
|
|---|
| 1336 | %MAGIC. 19\,mm diameter Photomultiplier Tubes (PM, EMI\,9083B/KFLA-UD)
|
|---|
| 1337 | %will be bought, similar to the HEGRA type (EMI\,9083\,KFLA). They have
|
|---|
| 1338 | %a quantum efficiency improved by 25\% (see fig.~\ref{qe}) and ensure a
|
|---|
| 1339 | %granularity which is enough to guarantee good results even below the
|
|---|
| 1340 | %energy threshold (flux peak energy). Each individual pixel has to be
|
|---|
| 1341 | %equipped with a preamplifier, an active high-voltage supply and
|
|---|
| 1342 | %control. The total expense for a single pixel will be in the order of
|
|---|
| 1343 | %650,-\,\euro.
|
|---|
| 1344 | %
|
|---|
| 1345 | %All possibilities of borrowing one of the old HEGRA cameras for a
|
|---|
| 1346 | %transition time have been probed and refused by the owners of the
|
|---|
| 1347 | %cameras.
|
|---|
| 1348 | %
|
|---|
| 1349 | %At ETH~Z\"{u}rich currently test measurements are ongoing to prove the
|
|---|
| 1350 | %ability, i.e.\ stability, aging, quantum efficiency, etc., of using
|
|---|
| 1351 | %Geiger-mode APDs (GAPD) as photon detectors in the camera of a
|
|---|
| 1352 | %Cherenkov telescope. The advantages are an extremely high quantum
|
|---|
| 1353 | %efficiency ($>$50\%), easier gain stabilization and simplified
|
|---|
| 1354 | %application compared to classical PMs. If these test measurements are
|
|---|
| 1355 | %successfully finished until 8/2008, we consider to use GAPDs in favor
|
|---|
| 1356 | %of classical PMs. The design of such a camera would take place at
|
|---|
| 1357 | %University Dortmund in close collaboration with the experts from ETH.
|
|---|
| 1358 | %The construction would also take place at the electronics workshop of
|
|---|
| 1359 | %Dortmund.
|
|---|
| 1360 | \end{quote}\vspace{3ex}
|
|---|
| 1361 | \newpage
|
|---|
| 1362 | {\bf Kameraaufh"angung und -geh"ause}\dotfill 7.500,-\,\euro\\[-3ex]
|
|---|
| 1363 | \begin{quote}
|
|---|
| 1364 | %For this setup the camera holding has to be redesigned. (1500,-\,\euro)
|
|---|
| 1365 | %The camera chassis must be water tight and will be equipped with an
|
|---|
| 1366 | %automatic lid, protecting the PMs at daytime. For further protection, a
|
|---|
| 1367 | %plexi-glass window will be installed in front of the camera. By coating
|
|---|
| 1368 | %this window with an anti-reflex layer of magnesium-fluoride, a gain in
|
|---|
| 1369 | %transmission of 5\% is expected. Each PM will be equipped with a
|
|---|
| 1370 | %light-guide (Winston cone) as developed by UC Davis and successfully in
|
|---|
| 1371 | %operation in the MAGIC camera. (3000,-\,\euro\ for all Winston cones). The
|
|---|
| 1372 | %current design will be improved by using a high reflectivity aluminized
|
|---|
| 1373 | %Mylar mirror-foil, coated with a dialectical layer ($Si\,O_2$
|
|---|
| 1374 | %alternated with Niobium Oxide), to reach a reflectivity in the order of
|
|---|
| 1375 | %98\%. An electric and optical shielding of the individual PMs is
|
|---|
| 1376 | %planned.
|
|---|
| 1377 | %
|
|---|
| 1378 | %In total a gain of $\sim$15\% in light-collection
|
|---|
| 1379 | %efficiency compared to the old CT3 system can be achieved.
|
|---|
| 1380 | \end{quote}%\vspace{1ex}
|
|---|
| 1381 | {\bf Datennahme}\dotfill 61.035,-\,\euro\\[-3ex]
|
|---|
| 1382 | \begin{quote}
|
|---|
| 1383 | 313 Pixel\\
|
|---|
| 1384 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 1385 | Auslese\hfill 95,-\,\euro\\
|
|---|
| 1386 | Triggerelektronik\hfill 100,-\,\euro\\
|
|---|
| 1387 | \end{minipage}\\[-0.5ex]
|
|---|
| 1388 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1389 | %For the data acquisition system a hardware readout based on an analog
|
|---|
| 1390 | %ring buffer (Domino\ II/IV), currently developed for the MAGIC~II
|
|---|
| 1391 | %readout, will be used \citep{Barcelo}. This technology allows to sample
|
|---|
| 1392 | %the pulses with high frequencies and readout several channels with a
|
|---|
| 1393 | %single Flash-ADC resulting in low costs. The low power consumption will
|
|---|
| 1394 | %allow to include the digitization near the signal source making
|
|---|
| 1395 | %the transfer of the analog signal obsolete. This results in less
|
|---|
| 1396 | %pick-up noise and reduces the signal dispersion. By high sampling rates
|
|---|
| 1397 | %(1.2\,GHz), additional information about the pulse shape can be
|
|---|
| 1398 | %obtained. This increases the over-all sensitivity further, because the
|
|---|
| 1399 | %short integration time allows for almost perfect suppression of noise
|
|---|
| 1400 | %due to night-sky background photons. The estimated trigger-, i.e.\
|
|---|
| 1401 | %readout-rate of the telescope is below 100\,Hz (HEGRA: $<$10\,Hz) which
|
|---|
| 1402 | %allows to use a low-cost industrial solution for readout of the system,
|
|---|
| 1403 | %like USB\,2.0.
|
|---|
| 1404 | %
|
|---|
| 1405 | %Current results obtained with the new 2\,GHz FADC system in the MAGIC
|
|---|
| 1406 | %data acquisition show, that for a single telescope a sensitivity
|
|---|
| 1407 | %improvement of 40\% with a fast FADC system is achievable \citep{Tescaro:2007}.
|
|---|
| 1408 | %
|
|---|
| 1409 | %Like for the HEGRA telescopes a simple multiplicity trigger is
|
|---|
| 1410 | %sufficient, but also a simple neighbor-logic could be programmed (both
|
|---|
| 1411 | %cases $\sim$100,-\,\euro/channel).
|
|---|
| 1412 | %
|
|---|
| 1413 | %Additional data reduction and preprocessing within the readout chain is
|
|---|
| 1414 | %provided. Assuming conservatively a readout rate of 30\,Hz, the storage
|
|---|
| 1415 | %space needed will be less than 250\,GB/month or 3\,TB/year. This amount
|
|---|
| 1416 | %of data can easily be stored and processed by the W\"{u}rzburg
|
|---|
| 1417 | %Datacenter (current capacity $>$80\,TB, $>$40\,CPUs).
|
|---|
| 1418 | \end{quote}\vspace{3ex}
|
|---|
| 1419 |
|
|---|
| 1420 | {\bf Spiegel}\dotfill 15.000,-\,\euro\\[-3ex]
|
|---|
| 1421 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1422 | \begin{quote}
|
|---|
| 1423 | %The existing mirrors will be replaced by new plastic mirrors currently
|
|---|
| 1424 | %developed by Wolfgang Dr\"{o}ge's group. The cheap and light-weight
|
|---|
| 1425 | %material has been formerly used for Winston cones in balloon
|
|---|
| 1426 | %experiments. The mirrors are copied from a master and coated with a
|
|---|
| 1427 | %reflecting and a protective material. Tests have given promising
|
|---|
| 1428 | %results. By a change of the mirror geometry, the mirror area can be
|
|---|
| 1429 | %increased from 8.5\,m$^2$ to 13\,m$^2$ (see picture~\ref{CT3} and
|
|---|
| 1430 | %montage~\ref{DWARF}). This includes an increase of $\sim$10$\%$ per
|
|---|
| 1431 | %mirror by using a hexagonal layout instead of a round one. A further
|
|---|
| 1432 | %increase of the mirror area would require a reconstruction of parts of
|
|---|
| 1433 | %the mount and will therefore be considered only in a later phase of the
|
|---|
| 1434 | %experiment.
|
|---|
| 1435 | %
|
|---|
| 1436 | %If the current development of the plastic mirrors cannot be finished in
|
|---|
| 1437 | %time, a re-machining of the old glass mirrors (8.5\,m$^2$) is possible
|
|---|
| 1438 | %with high purity aluminum and quartz coating.
|
|---|
| 1439 | %
|
|---|
| 1440 | %In both cases the mirrors can be coated with the same high reflectivity
|
|---|
| 1441 | %aluminized Mylar mirror-foil and a dialectical layer of $SiO_2$ as for
|
|---|
| 1442 | %the Winston cones. By this, a gain in reflectivity of $\sim10\%$ is
|
|---|
| 1443 | %achieved, see fig.~\ref{reflectivity} \citep{Fraunhofer}. Both
|
|---|
| 1444 | %solutions would require the same expenses.
|
|---|
| 1445 | %
|
|---|
| 1446 | %To keep track of the alignment, reflectivity and optical quality of the
|
|---|
| 1447 | %individual mirrors and the point-spread function of the total mirror
|
|---|
| 1448 | %during long-term observations, the application of an automatic mirror
|
|---|
| 1449 | %adjustment system, as developed by ETH~Z\"{u}rich and successfully
|
|---|
| 1450 | %operated on the MAGIC telescope, is intended.
|
|---|
| 1451 | \end{quote}%\vspace{3ex}
|
|---|
| 1452 | {\bf Kalibrationssystem}\dotfill 9.650,-\,\euro\\[-3ex]
|
|---|
| 1453 | \begin{quote}
|
|---|
| 1454 | Einzelkomponenten\\
|
|---|
| 1455 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 1456 | Absolute Lichtkalibration\hfill 2.000,-\,\euro\\
|
|---|
| 1457 | Messung der Triggerrate einzelner Pixel\hfill 3.000,-\,\euro\\
|
|---|
| 1458 | Wetterstation\hfill 500,-\,\euro\\
|
|---|
| 1459 | GPS gesteuerte Uhr\hfill 1.500,-\,\euro\\
|
|---|
| 1460 | CCD Kameras mit Auslese\hfill 2.650,-\,\euro\\
|
|---|
| 1461 | \end{minipage}\\[-0.5ex]
|
|---|
| 1462 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1463 | %For the absolute light calibration (gain-calibration) of the PMs a
|
|---|
| 1464 | %calibration box, as successfully used in the MAGIC telescope, will be
|
|---|
| 1465 | %produced.
|
|---|
| 1466 | %
|
|---|
| 1467 | %To ensure a homogeneous acceptance of the camera, essential for
|
|---|
| 1468 | %Wobble mode observations, the trigger rate of the individual pixels
|
|---|
| 1469 | %will be measured and controlled.
|
|---|
| 1470 | %
|
|---|
| 1471 | %For a correction of axis misalignments and possible deformations of the
|
|---|
| 1472 | %structure (e.g.\ bending of camera holding masts) a pointing correction
|
|---|
| 1473 | %algorithm will be applied, as used in the MAGIC tracking system. It is
|
|---|
| 1474 | %calibrated by measurements of the reflection of bright guide stars on
|
|---|
| 1475 | %the camera surface and ensures a pointing accuracy well below the pixel
|
|---|
| 1476 | %diameter. Therefore a high sensitive low-cost video camera, as for
|
|---|
| 1477 | %MAGIC\ I and~II, (300,-\,\euro\ camera, 600,-\,\euro\ optics,
|
|---|
| 1478 | %300,-\,\euro\ housing, 250,-\,\euro\ frame grabber) will be installed.
|
|---|
| 1479 | %
|
|---|
| 1480 | %A second identical CCD camera for online monitoring (starguider) will
|
|---|
| 1481 | %be bought.
|
|---|
| 1482 | %
|
|---|
| 1483 | %For an accurate tracking a GPS clock is necessary. The weather station
|
|---|
| 1484 | %helps judging the data quality.
|
|---|
| 1485 | %}\\[2ex]
|
|---|
| 1486 | \end{quote}\vspace{3ex}
|
|---|
| 1487 |
|
|---|
| 1488 | {\bf Computing}\dotfill 12.000,-\,\euro\\[-3ex]
|
|---|
| 1489 | \begin{quote}
|
|---|
| 1490 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 1491 | Drei PCs\hfill 8.000,-\,\euro\\
|
|---|
| 1492 | SATA RAID 3TB\hfill 4.000,-\,\euro\\
|
|---|
| 1493 | \end{minipage}\\[-0.5ex]
|
|---|
| 1494 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1495 | %For on-site computing three standard PCs are needed ($\sim$8.000,-\,\euro).
|
|---|
| 1496 | %This includes readout and storage, preprocessing and telescope control.
|
|---|
| 1497 | %For safety reasons, a firewall is mandatory. For local cache-storage
|
|---|
| 1498 | %and backup, two RAID\,5 SATA disk arrays with one Terabyte capacity
|
|---|
| 1499 | %each will fulfill the requirement ($\sim$4.000,-\,\euro). The data will be
|
|---|
| 1500 | %transmitted as soon as possible after data taking via Internet to the
|
|---|
| 1501 | %W\"{u}rzburg Datacenter. Enough storage capacity and computing power
|
|---|
| 1502 | %is available there and already reserved for this purpose.
|
|---|
| 1503 | %
|
|---|
| 1504 | %Monte Carlo production and storage will take place at University
|
|---|
| 1505 | %Dortmund.%}\\[2ex]
|
|---|
| 1506 | \end{quote}\vspace{3ex}
|
|---|
| 1507 |
|
|---|
| 1508 | {\bf Antrieb und Positionsauslese}\dotfill 17.500,-\,\euro\\[-3ex]
|
|---|
| 1509 | \begin{quote}
|
|---|
| 1510 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1511 | %The present mount is used. Only a smaller investment for safety,
|
|---|
| 1512 | %corrosion protection, cable ducts, etc. is needed (7.500,-\,\euro).
|
|---|
| 1513 | %
|
|---|
| 1514 | %Motors, shaft encoders and control electronics in the order of
|
|---|
| 1515 | %10.000,-\,\euro\ have to be bought. The costs have been estimated with
|
|---|
| 1516 | %the experience from building the MAGIC drive systems. The DWARF drive
|
|---|
| 1517 | %system should allow for relatively fast repositioning for three
|
|---|
| 1518 | %reasons: (i)~Fast movement might be mandatory for future ToO
|
|---|
| 1519 | %observations. (ii)~Wobble mode observations will be done changing the
|
|---|
| 1520 | %Wobble-position continuously (each 20\,min) for symmetry reasons.
|
|---|
| 1521 | %(iii)~To ensure good time coverage of more than one source visible at
|
|---|
| 1522 | %the same time, the observed source will be changed in constant time
|
|---|
| 1523 | %intervals.
|
|---|
| 1524 | %
|
|---|
| 1525 | %For the drive system three 150\,Watt servo motors are intended to be bought. A
|
|---|
| 1526 | %micro-controller based motion control unit (Siemens SPS L\,20) similar to
|
|---|
| 1527 | %the one of the current MAGIC~II drive system will be used. For
|
|---|
| 1528 | %communication with the readout-system, a standard Ethernet connection
|
|---|
| 1529 | %based on the TCP/IP- and UDP-protocol will be setup.
|
|---|
| 1530 | %}\\[2ex]
|
|---|
| 1531 | \end{quote}%\vspace{3ex}
|
|---|
| 1532 | %
|
|---|
| 1533 | {\bf Sicherheit}\dotfill 4.000,-\,\euro\\[-3ex]
|
|---|
| 1534 | \begin{quote}
|
|---|
| 1535 | \parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 1536 | Unterbrechungsfreie Stromversorgung (UPS)\hfill 2.000,-\,\euro\\
|
|---|
| 1537 | Sicherheitszaun\hfill 2.000,-\,\euro\\
|
|---|
| 1538 | \end{minipage}\\[-0.5ex]
|
|---|
| 1539 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1540 | %A UPS with 5\,kW-10\,kW will be
|
|---|
| 1541 | %installed to protect the equipment against power cuts and ensure a safe
|
|---|
| 1542 | %telescope position at the time of sunrise.
|
|---|
| 1543 | %
|
|---|
| 1544 | %For protection in case of robotic movement a fence will be
|
|---|
| 1545 | %installed.%}\\[2ex]
|
|---|
| 1546 | \end{quote}\vspace{3ex}
|
|---|
| 1547 |
|
|---|
| 1548 | {\bf Andere Ausgaben}\dotfill 7.500,-\,\euro\\[-3ex]
|
|---|
| 1549 | \begin{quote}
|
|---|
| 1550 | %\parbox[t]{1em}{~}\begin{minipage}[t]{0.6\textwidth}
|
|---|
| 1551 | % Robotics\hfill 7.500,-\,\euro\\
|
|---|
| 1552 | % \end{minipage}\\[-0.5ex]
|
|---|
| 1553 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1554 | F"ur den Betrieb in Fernsteuerung
|
|---|
| 1555 | werden verschiedene fernbedienbare Komponenten, wie z.B.\
|
|---|
| 1556 | Ethernet steuerbare Steckdosen und "Uberwachungselektronik, gekauft.
|
|---|
| 1557 | \end{quote}
|
|---|
| 1558 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 1559 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.2:\hfill{\bf
|
|---|
| 1560 | 341.135,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 1561 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 1562 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 1563 |
|
|---|
| 1564 | \subsection[4.3]{Verbrauchsmaterial}
|
|---|
| 1565 |
|
|---|
| 1566 | \begin{quote}
|
|---|
| 1567 | % \parbox[t]{1em}{~}\begin{minipage}[t]{0.9\textwidth}
|
|---|
| 1568 | 10 LTO\,4 B"ander (8\,TB)\dotfill 750,-\,\euro\\
|
|---|
| 1569 | Verbrauchsgegenst"ande (pauschal): Werkzeug und Materialien\dotfill 10.000,-\,\euro
|
|---|
| 1570 | % \end{minipage}\\[-0.5ex]
|
|---|
| 1571 | \end{quote}
|
|---|
| 1572 |
|
|---|
| 1573 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 1574 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.3:\hfill{\bf
|
|---|
| 1575 | 10.750,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 1576 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 1577 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 1578 |
|
|---|
| 1579 | \subsection[4.4]{Reisen}
|
|---|
| 1580 | Die hohen Reisekosten sind in der engen Zusammenarbeit zwischen
|
|---|
| 1581 | Dortmund und W"urzburg, sowie den notwendigen Aufenthalten in La Palma
|
|---|
| 1582 | begr"undet.\\[-2ex]
|
|---|
| 1583 |
|
|---|
| 1584 | \begin{quote}
|
|---|
| 1585 | %\parbox[t]{1em}{~}\parbox[t]{0.955\textwidth}{
|
|---|
| 1586 | Jedes Jahr sollte ein erfahrenes Gruppenmitglied aus Dortmund und
|
|---|
| 1587 | W"urzburg den Status des Projektes bei einer internationalen Konferenz
|
|---|
| 1588 | vorstellen:\\
|
|---|
| 1589 | 2 x 3\,Jahre x 1.500,-\,\euro\dotfill 9.000,-\,\euro\\[-2ex]
|
|---|
| 1590 |
|
|---|
| 1591 | Teilnahme am MAGIC Kollaborationstreffen (zweimal j"ahrlich):\\
|
|---|
| 1592 | 2 x 3\,Jahre x 1.000,-\,\euro\dotfill 6.000,-\,\euro\\[-2ex]
|
|---|
| 1593 |
|
|---|
| 1594 | Austausch von Doktoranden zwischen W\"{u}rzburg and Dortmund:\\
|
|---|
| 1595 | 1\,Student x 1\,Woche x 24 (alle sechs Wochen) x 800,-\,\euro\dotfill
|
|---|
| 1596 | 19.200,-\,\euro\\[-2ex]
|
|---|
| 1597 |
|
|---|
| 1598 | Zum Aufbau des Teleskops vor Ort sind folgende Reisekosten n"otig:\\
|
|---|
| 1599 | 4 x 2\,Wochen auf La Palma x 2\,Personen x 1.800,-\,\euro\dotfill
|
|---|
| 1600 | 28.800,-\,\euro
|
|---|
| 1601 | %}
|
|---|
| 1602 | \end{quote}
|
|---|
| 1603 |
|
|---|
| 1604 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 1605 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.4:\hfill{\bf
|
|---|
| 1606 | 63.000,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 1607 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 1608 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 1609 |
|
|---|
| 1610 |
|
|---|
| 1611 | \subsection[4.5]{Publikationskosten}
|
|---|
| 1612 | Werden von den beantragenden Universit"aten "ubernommen.
|
|---|
| 1613 |
|
|---|
| 1614 |
|
|---|
| 1615 | \subsection[4.6]{Sonstige Kosten}
|
|---|
| 1616 | \begin{quote}
|
|---|
| 1617 | Euro-Container (zum Versand der Spiegel)\dotfill 5.000,-\,\euro\\
|
|---|
| 1618 | Transport\dotfill 15.000,-\,\euro\\
|
|---|
| 1619 | Abbau (wird von den Antragstellern "ubernommen)\dotfill n/a
|
|---|
| 1620 | \end{quote}
|
|---|
| 1621 |
|
|---|
| 1622 | \hspace*{0.66\textwidth}\hrulefill\\[0.5ex]
|
|---|
| 1623 | \hspace*{0.66\textwidth}\hspace{0.5ex}\hfill Sum 4.6:\hfill{\bf
|
|---|
| 1624 | 20.000,-\,\euro}\hfill\hspace*{0pt}\\[-1ex]
|
|---|
| 1625 | \hspace*{0.66\textwidth}\hrulefill\\[-1.9ex]
|
|---|
| 1626 | \hspace*{0.66\textwidth}\hrulefill\\
|
|---|
| 1627 |
|
|---|
| 1628 | \newpage
|
|---|
| 1629 | \thispagestyle{empty}
|
|---|
| 1630 | \mbox{}
|
|---|
| 1631 | \newpage
|
|---|
| 1632 |
|
|---|
| 1633 | \originalTeX
|
|---|
| 1634 |
|
|---|
| 1635 | %(References of our groups are marked by an asterix *)
|
|---|
| 1636 | \bibliography{application}
|
|---|
| 1637 | \bibliographystyle{plainnat}
|
|---|
| 1638 | %\bibliographystyle{alpha}
|
|---|
| 1639 | %\bibliographystyle{plain}
|
|---|
| 1640 |
|
|---|
| 1641 | \end{document}
|
|---|