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基于Arduino的用于核物理与粒子物理的读出电子设备。

Arduino-Based Readout Electronics for Nuclear and Particle Physics.

作者信息

Köhli Markus, Weimar Jannis, Schmidt Simon, Schmidt Fabian P, Lambertz Alexander, Weber Laura, Kaminski Jochen, Schmidt Ulrich

机构信息

Physikalisches Institut, Heidelberg University, Im Neuenheimer Feld 226, 69120 Heidelberg, Germany.

Physikalisches Institut, University of Bonn, Kreuzbergweg 24, 53115 Bonn, Germany.

出版信息

Sensors (Basel). 2024 May 5;24(9):2935. doi: 10.3390/s24092935.

Abstract

Open Hardware-based microcontrollers, especially the Arduino platform, have become a comparably easy-to-use tool for rapid prototyping and implementing creative solutions. Such devices in combination with dedicated front-end electronics can offer low-cost alternatives for student projects, slow control and independently operating small-scale instrumentation. The capabilities can be extended to data taking and signal analysis at mid-level rates. Two detector realizations are presented, which cover the readouts of proportional counter tubes and of scintillators or wavelength-shifting fibers with silicon photomultipliers (SiPMs). The SiPMTrigger realizes a small-scale design for coincidence readout of SiPMs as a trigger or veto detector. It consists of a custom mixed signal front-end board featuring signal amplification, discrimination and a coincidence unit for rates of up to 200 kHz. The nCatcher transforms an Arduino Nano to a proportional counter readout with pulse shape analysis: time over threshold measurement and a 10-bit analog-to-digital converter for pulse heights. The device is suitable for low-to-medium-rate environments up to 5 kHz, where a good signal-to-noise ratio is crucial. We showcase the monitoring of thermal neutrons. For data taking and slow control, a logger board is presented that features an SD card and GSM/LoRa interface.

摘要

基于开源硬件的微控制器,尤其是 Arduino 平台,已成为一种相对易于使用的工具,可用于快速原型制作和实现创新解决方案。此类设备与专用前端电子设备相结合,可为学生项目、慢速控制和独立运行的小型仪器提供低成本替代方案。其功能可扩展至中等速率的数据采集和信号分析。本文介绍了两种探测器实现方式,涵盖了用硅光电倍增管(SiPM)对正比计数管以及闪烁体或波长转移光纤的读出。SiPMTrigger 实现了一种小规模设计,用于将 SiPM 的符合读出作为触发或否决探测器。它由一块定制的混合信号前端板组成,具有信号放大、甄别功能以及一个用于高达 200 kHz 速率的符合单元。nCatcher 将 Arduino Nano 转变为具有脉冲形状分析功能的正比计数器读出装置:阈值时间测量以及用于脉冲幅度的 10 位模数转换器。该设备适用于高达 5 kHz 的低至中等速率环境,在这种环境中良好的信噪比至关重要。我们展示了对热中子的监测。为了进行数据采集和慢速控制,还介绍了一块具有 SD 卡和 GSM/LoRa 接口的记录板。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8426/11086173/d4e6adfa5597/sensors-24-02935-g012.jpg

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