首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Analytical modeling of pulse-pileup distortion using the true pulse shape; applications to Fermi-GBM
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Analytical modeling of pulse-pileup distortion using the true pulse shape; applications to Fermi-GBM

机译:使用真实脉冲形状的脉冲堆积失真分析模型; Fermi-GBM的应用

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摘要

Pulse-pileup affects most photon counting systems and occurs when photon detections occur faster than the detector's shaping and recovery time. At high input rates, shaped pulses interfere and the source spectrum, as well as intensity information, get distorted. For instruments using bipolar pulse shaping there are two aspects to consider: 'peak' and 'tail' pileup effects, which raise and lower the measured energy, respectively. Peak effects have been extensively modeled in the past. Tail effects have garnered less attention due to increased complexity. We leverage previous work to derive an accurate, semi-analytical prediction for peak and tail pileup including high order effects. We use the pulse shape of the detectors of the Fermi Gamma-ray Burst Monitor. The measured spectrum is calculated by expressing exposure time with a state-space expansion of overlapping pileup states and is valid up to very high rates. The model correctly predicts deadtime and pileup losses, and energy-dependent losses due to tail subtraction (sub-threshold) effects. We discuss total losses in terms of the true rate of photon detections versus the recorded count rate.
机译:脉冲堆积会影响大多数光子计数系统,并在光子检测发生的时间快于检测器的整形和恢复时间时发生。在高输入速率下,整形脉冲会干扰,并且源光谱以及强度信息会失真。对于使用双极性脉冲整形的仪器,要考虑两个方面:“峰值”和“尾部”堆积效应,分别提高和降低测量的能量。峰值效应在过去已被广泛建模。由于复杂性的增加,尾部效应引起了较少的关注。我们利用先前的工作来对包括高阶效应在内的峰和尾堆积进行精确的半分析预测。我们使用费米伽马射线爆破监测器的探测器的脉冲形状。通过用重叠堆积状态的状态空间扩展表示暴露时间来计算测得的光谱,并且该光谱在非常高的速率下仍然有效。该模型可以正确预测死区时间和堆积损失,以及因尾部扣除(亚阈值)影响而导致的能量相关损失。我们根据光子检测的真实速率与记录的计数速率来讨论总损耗。

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