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首页> 外文期刊>Journal of instrumentation: an IOP and SISSA journal >A model for the secondary scintillation pulse shape from a gas proportional scintillation counter
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A model for the secondary scintillation pulse shape from a gas proportional scintillation counter

机译:气体比例闪烁计数器的二次闪烁脉冲形状模型

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摘要

Proportional scintillation counters (PSCs), both single- and dual-phase, can measure the scintillation (S1) and ionization (S2) channels from particle interactions within the detector volume. The signal obtained from these detectors depends first on the physics of the medium (the initial scintillation and ionization), and second how the physics of the detector manipulates the resulting photons and liberated electrons. In this paper we develop a model of the detector physics that incorporates event topology, detector geometry, electric field configuration, purity, optical properties of components, and wavelength shifters. We present an analytic form of the model, which allows for general study of detector design and operation, and a Monte Carlo model which enables a more detailed exploration of S2 events. This model may be used to study systematic effects in current detectors such as energy and position reconstruction, pulse shape discrimination, event topology, dead time calculations, purity, and electric field uniformity. We present a comparison of this model with experimental data collected with an argon gas proportional scintillation counter (GPSC), operated at 20 C and 1 bar, and irradiated with an internal, collimated 55Fe source. Additionally we discuss how the model may be incorporated in Monte Carlo simulations of both GPSCs and dual-phase detectors, increasing the reliability of the simulation results and allowing for tests of the experimental data analysis algorithms.
机译:单相和双相比例闪烁计数器(PSC)可以根据探测器体积内的粒子相互作用来测量闪烁(S1)和电离(S2)通道。从这些探测器获得的信号首先取决于介质的物理特性(初始闪烁和电离),其次取决于探测器的物理特性如何操纵所得的光子和释放的电子。在本文中,我们开发了一种检测器物理模型,该模型结合了事件拓扑,检测器几何形状,电场配置,纯度,组件的光学特性和波长偏移器。我们提出了该模型的一种分析形式,该模型允许对检测器的设计和操作进行一般性研究,而蒙特卡洛模型则可以对S2事件进行更详细的探索。该模型可用于研究电流检测器中的系统效应,例如能量和位置重建,脉冲形状识别,事件拓扑,停滞时间计算,纯度和电场均匀性。我们将这个模型与使用氩气比例闪烁计数器(GPSC)收集的实验数据进行比较,该计数器在20 C和1 bar下运行,并用内部准直的55Fe源进行辐照。此外,我们讨论了如何将模型整合到GPSC和双相检测器的蒙特卡洛仿真中,从而提高仿真结果的可靠性并允许对实验数据分析算法进行测试。

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