Development and Characterization of a Directional Gamma-ray Detector

Felix Cormier, Marcel P. Georgin, Stephen Koelbl, R. Oda
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Abstract

Background: This work characterizes the first generation of detectors from the Hanna Laboratory to implement Silicon Photomultipliers and a heptagonal scintillator conguration. The purpose of the device is to determine the angle at which a radioactive source is located. Methods: The development of the detector consisted of three phases: construction(September 2012- December 2012), simulation and characterization (April 2013). The experimental portion of the work consisted of placing a 137 Cs source at an arbitrary location, measuring the count rates in each scintillator panel and analysing the results. Results: The detector’s function was validated by confirming the inverse square law with a radioactive source moving away from the detector. Furthermore, with a x2 summation method of analysis the angular position of a source was determined with an accuracy of 10˚ and a precision of 12˚. With a normalisation method of analysis the angular position of a source was found with an accuracy of 2˚ and a corresponding precision of 2˚. Limitations: The quality of the electronics handling the signal from the silicon photomultipliers limited our resolution. Occasional double counts occur when a large amount of energy is imparted to the scintillator. Furthermore, the custom-built circuitry lowered the signal-to-noise ratio such that large distances were not feasible due to electronic noise constraints. Finally, simulation data analysis showed that the break of one circuit only had a small effect on the x2 method of analysis. Conclusions: In conclusion, the design of the detector and the analysis techniques were shown to be suitable for short range angular resolution of a gamma-ray source. Both distance trials and a simulation of the detector prototype confirmed the validity of our design and of the analysis methods used. These promising results at short distances motivate further work in electronic circuit design to improve the range while maintaining both accuracy and precision.
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定向伽玛射线探测器的研制与表征
背景:这项工作的特点是第一代探测器从汉纳实验室实现硅光电倍增管和七方体闪烁体配置。该装置的目的是确定放射源所在的角度。方法:探测器的研制分为构建(2012年9月- 2012年12月)、仿真和表征(2013年4月)三个阶段。这项工作的实验部分包括在任意位置放置一个137cs光源,测量每个闪烁体面板的计数率并分析结果。结果:当辐射源远离探测器时,通过确认平方反比定律验证了探测器的功能。利用x2求和分析法确定了光源的角位置,精度为10˚,精度为12˚。用归一化分析方法确定了光源的角位置,其精度为2˚,相应的精度为2˚。限制:处理硅光电倍增管信号的电子设备的质量限制了我们的分辨率。当大量的能量被传递给闪烁体时,偶尔会发生重复计数。此外,定制电路降低了信噪比,因此由于电子噪声的限制,长距离传输是不可行的。最后,仿真数据分析表明,其中一条电路的断路对x2分析方法的影响很小。结论:探测器的设计和分析技术适用于伽玛射线源的短距离角分辨。距离试验和探测器原型的模拟都证实了我们的设计和所使用的分析方法的有效性。这些在短距离上的有希望的结果激励了电子电路设计的进一步工作,以提高范围,同时保持准确性和精度。
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