MAGIC望远镜相机的光学标定

T. Schweizer, E. Lorenz, Miguel Ángel Martínez, A. Ostankov, D. Paneque
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引用次数: 16

摘要

目前,一个直径17米的空气切伦科夫望远镜,被称为MAGIC,正在拉帕尔马的加那利岛上建造,用于30 GeV以上的地面伽马射线天文学。577像素的光电倍增管相机需要在大动态范围内进行精确和定期的校准。提出了一种由多个快速、强大的LED光脉冲组成的光学校准系统。我们打算校准每个像素高达2000-3000个光电子,具有不同的波长,例如370 nm, 460 nm和520 nm。我们的目标是通过将像素的信号与专门制备和校准的光电倍增管(pmt)的信号进行比较,以及在后期的混合光电倍增管(HPD)中,使用单光子计数模式和校准良好的衰减滤波器(“盲像素”)来实现这三个波长的绝对校准。脉冲发生器的光通量由1 cm/sup 2/ PIN二极管(Hamamatsu)交叉校准,通过电荷敏感前置放大器读出。pindiode用60 keV伽马(来自am241源)校准,产生16570电子空穴对的精确信号。此外,将有一个计算机可调的连续光源,以模拟和校准相机中的pmt对月球和夜空光线的响应。这也有助于处理星光在相机视场中的分析。特别注意的是建立一个强大的现场可用设备符合IP 65标准。
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The optical calibration of the MAGIC telescope camera
Currently a 17 m diameter air Cherenkov telescope, dubbed MAGIC, for ground based gamma ray astronomy above 30 GeV is under construction on the Canarian island of La Palma. The 577 pixel photomultiplier camera requires precise and regular calibration over a large dynamic range. A system for the optical calibration consisting of a number of very fast and powerful LED light pulsers is presented. We intend to calibrate each individual pixel up to 2000-3000 photoelectrons with different wavelengths, e.g. 370 nm, 460 nm and 520 nm. We aim to achieve an absolute calibration at these three wavelengths by comparing the signal of the pixels with the one of specially prepared and calibrated photomultipliers (PMTs), and in a later stage hybrid photo multipliers (HPD), using the single photon counting mode and a well calibrated attenuation filter ('blind pixels'). The light flux of the pulser is cross calibrated by a 1 cm/sup 2/ PIN diode (Hamamatsu), read out via a charge sensitive preamplifier. The pindiode is calibrated with 60 keV gammas (from an Am 241 source) producing a precise signal of 16570 electron-hole pairs. In addition there will be a computer adjustable continuous light source to simulate and calibrate the response of the PMTs in the camera to the moon and the light of the night sky. This will also help to handle star light in the field of view of the camera in the analysis. Special attention is paid at building a robust field usable device complying with IP 65 standards.
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