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首页> 外文期刊>Il Nuovo Cimento della Societa Italiana di Fisica, C. Geophysics and space physics >Cosmic Ray Cherenkov and Fluorescence Imaging: Photosensors and data acquisition systems for a new generation of focal planes
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Cosmic Ray Cherenkov and Fluorescence Imaging: Photosensors and data acquisition systems for a new generation of focal planes

机译:宇宙射线切伦科夫和荧光成像:新一代焦平面的光电传感器和数据采集系统

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In this paper the design of a new generation of focal planes for Imaging Atmospheric Cherenkov and Fluorescence Telescopes is discussed, based on a Digital Photon Counting architecture instrumented with (SiPM) Silicon Pho-thmultipliers. 3 × 3 mm~2 SiPMs were chosen to minimize the photoelectron pile-up within intervals shorter than the clock sampling time. The large number of chan-nels requires a compact, modular design with minimal cabling and distance between the photosensors arid the frontend electronics. Other design requirements are a high reliability, easy field maintenance and minimization of the total power budget. Data acquisition electronics are partitioned in on-board frontend and off-detector high-level trigger electronics. Extensive use of mixed-signal ASICs and low-power FPGAs for early data reduction were adopted. Temperature is controlled by a liquid cooling sub-system. An asynchronous data readout and filtering, where each of the trigger levels works at its own clock frequency is adopted. The off-detector data acquisition and trigger architecture is based on an asynchronous multi-gigabit switching approach implemented over standard MicroTCA boards, equipped with optical interfaces and high-capability FPGAs. The boards are connected by multi-Gbps optical links to the frontend electronics. Trigger primitives are sent asynchronously to the MicroTCA trigger boards via data links running at their own clocks, for maximum bandwidth. Data and slow-control data streams are sent over the same data lines, reducing in this way the number of cables required. Each crate can pro-cess up to 4 × 10~4 channels and the modularity offered allows further expansion by inter-connecting additional crates with optical fiber links.
机译:在本文中,基于配备有(SiPM)硅光子倍增器的数字光子计数体系结构,讨论了用于成像大气Cherenkov和荧光望远镜的新一代焦平面的设计。选择3×3 mm〜2 SiPM,以在短于时钟采样时间的间隔内使光电子堆积最小。大量通道需要紧凑的模块化设计,并且电缆之间的布线和光电传感器与前端电子设备之间的距离最小。其他设计要求是高可靠性,易于现场维护以及最小化总功率预算。数据采集​​电子设备分为板载前端和离检测器高级触发电子设备。采用了混合信号ASIC和低功耗FPGA来减少早期数据。温度由液体冷却子系统控制。采用异步数据读取和过滤,其中每个触发电平均以其自己的时钟频率工作。探测器外数据采集和触发架构基于在标准MicroTCA板上实现的异步多千兆位切换方法,该板上配备了光接口和高功能FPGA。这些板通过多Gbps光链路连接到前端电子设备。触发原语通过以自己的时钟运行的数据链路异步发送到MicroTCA触发板,以实现最大带宽。数据和慢速控制数据流通过同一条数据线发送,从而减少了所需的电缆数量。每个板条箱最多可处理4×10〜4个通道,并且通过将其他板条箱与光纤链路相互连接,所提供的模块化特性允许进一步扩展。

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