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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Design and expected performance of a fast neutron attenuation probe for light element density measurements
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Design and expected performance of a fast neutron attenuation probe for light element density measurements

机译:快速中子衰减探针在轻元素密度测量中的设计和预期性能

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We present the design and expected performance of a proof-of-concept 32 channel material identification system. Our system is based on the energy-dependent attenuation of fast neutrons for four elements: hydrogen, carbon, nitrogen and oxygen. We describe a new approach to obtaining a broad range of neutron energies to probe a sample, as well as our technique for reconstructing the molar densities within a sample. The system's performance as a function of time-of-flight energy resolution is explored using a Geant4-based Monte Carlo. Our results indicate that, with the expected detector response of our system, we will be able to determine the molar density of all four elements to within a 20-30% accuracy in a two hour scan time. In many cases this error is systematically low, thus the ratio between elements is more accurate. This degree of accuracy is enough to distinguish, for example, a sample of water from a sample of pure hydrogen peroxide: the ratio of oxygen to hydrogen is reconstructed to within 8 ± 0.5% of the true value. Finally, with future algorithm development that accounts for backgrounds caused by scattering within the sample itself, the accuracy of molar densities, not ratios, may improve to the 5-10% level for a two hour scan time.
机译:我们介绍概念验证的32通道材料识别系统的设计和预期性能。我们的系统基于快速中子对四个元素的依赖于能量的衰减:氢,碳,氮和氧。我们描述了一种获得广泛的中子能量以探测样品的新方法,以及我们用于重构样品中摩尔密度的技术。使用基于Geant4的Monte Carlo探索了系统性能与飞行时间能量分辨率的关系。我们的结果表明,利用我们系统预期的检测器响应,我们将能够在两小时的扫描时间内将所有四个元素的摩尔密度确定为20-30%的准确度。在许多情况下,该误差系统地较低,因此元素之间的比率更准确。这种精确度足以区分例如水样品和纯过氧化氢样品:氧与氢的比例被重建为真实值的8±0.5%之内。最后,随着未来算法的发展,考虑到样品自身内部的散射引起的背景,在两个小时的扫描时间内,摩尔浓度而不是比率的准确性可能会提高到5-10%。

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