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A Low-Power Directional Gamma-Ray Sensor System for Long-Term Radiation Monitoring

机译:用于长期辐射监测的低功率定向伽马射线传感器系统

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A Low-power directional gamma-ray sensor system for long-term radiation monitoring is presented in this paper. The system can determine the direction of gamma-rays emitted from multiple point sources while simultaneously identifying them. The overall system is formed by merging a sensor section with a compact and low-power computational radiation sensor section. The sensor section houses three NaI gamma-ray detectors arranged in a spatial configuration that allows detection on a plane defined by the front faces of the detectors. The computational section is based on a single chip solution developed by the authors that house multiple low-power event-driven sensor front ends, event-driven analog-to-digital converters, and a dedicated microcontroller on the same silicon die. The presented system is capable of collecting individual gamma isotope detection events within the three separate NaI scintillator detectors. Further processing of the data to yield direction finding and multiple isotope identification is possible by executing software algorithms using the computation resources available on chip. To that end, a compact fixed-point program is developed to perform on-chip real-time gamma isotope identification and direction estimation. The single chip solution is fabricated in a 0.18-$mu{rm m}$ CMOS technology with field tests demonstrating the validity of the approaches taken. The total computational sensor system power consumption is less than 20 $mu{rm W}$, excluding the detector power consumption. The gamma isotope identification and direction finding program executes in less than 100 ms. The system is validated by multiple 1-$mu{rm Ci}$ gamma-ray calibration button sources set at 25-cm distance from the detector setup. The system starts to provide consistent an- repeatable results with less than 5$^{circ}$ errors in accuracy, once more than 2000 total photopeaks are gathered in a detection session. Since the underlying processing paradigm is event-driven and low-power, the possible field applications of the presented system involve long-term monitoring for radiation detection and protection, where low count rates may be present.
机译:本文提出了一种用于长期辐射监测的低功率定向伽马射线传感器系统。该系统可以确定从多个点源发出的伽马射线的方向,同时进行识别。整个系统是通过将传感器部分与紧凑且低功耗的计算辐射传感器部分合并而成的。传感器部分容纳三个NaI伽马射线探测器,这些探测器以空间配置排列,从而可以在由探测器正面限定的平面上进行探测。计算部分基于作者开发的单芯片解决方案,该解决方案在同一硅片上装有多个低功耗事件驱动的传感器前端,事件驱动的模数转换器和专用微控制器。所提出的系统能够在三个独立的NaI闪烁体探测器内收集单个伽马同位素探测事件。通过使用芯片上可用的计算资源执行软件算法,可以对数据进行进一步处理以产生方向发现和多重同位素识别。为此,开发了紧凑的定点程序来执行片上实时伽马同位素识别和方向估计。该单芯片解决方案采用0.18- $ mu {rm m} $ CMOS技术制造,并通过现场测试证明了其有效性。采取的方法。计算传感器系统的总功耗小于20,但不包括检测器功耗。公式表达式=“ inline”> $ mu {rm W} $ 。 γ同位素识别和测向程序的执行时间不到100毫秒。该系统通过设置在25厘米处的多个1- $ mu {rm Ci} $ 伽玛射线校准按钮源进行验证与检测器设置之间的距离。系统开始提供一致且可重复的结果,并且准确性再次小于5 $ ^ {circ} $ 错误在一次检测会话中,总共收集了超过2000个光电峰。由于基本的处理范例是事件驱动和低功耗的,因此本系统可能的现场应用涉及对辐射检测和防护的长期监视,其中可能存在低计数率。

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