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Measurement and simulation of neutron/gamma-ray cross-correlation functions from spontaneous fission

机译:自发裂变对中子/伽马射线互相关函数的测量和模拟

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For the first time, a technique is presented for the measurement of total and separate neutron and gamma-ray cross-correlation functions from a spontaneous fission source. The cross-correlation functions are unique for given material-geometry configuration, thus represent signatures that can be used for the identification of radioactive materials. The measurement technique allows for the collection of fast coincidences within a time window of the order of a few tens of nanoseconds. A digital pulse shape discrimination technique is used, which allows for the accurate acquisition of the coincidences in all particle combinations. Specifically, separate neutron-neutron, neutron-gamma-ray, gamma-ray-neutron, and gamma-ray-gamma-ray coincidences are acquired with two liquid scintillation detectors. The measurements are compared to results obtained with the MCNP-PoliMi code, which simulates neutron and gamma-ray coincidences from a source on an event-by-event basis. This comparison leads to relatively good qualitative agreement. The measurements and simulations of the separate neutron and gamma-ray contributions to the total cross-correlations provide new signatures that can be obtained using existing experimental systems built to accurately identify nuclear materials. This research has direct applications in the areas of nuclear nonproliferation and homeland security.
机译:首次提出了一种用于测量来自自发裂变源的总中子和伽马射线互相关函数的技术。互相关函数对于给定的材料几何结构是唯一的,因此表示可用于识别放射性材料的特征。测量技术允许在几十纳秒量级的时间窗口内收集快速重合。使用了数字脉冲形状判别技术,该技术可精确获取所有粒子组合中的重合。具体而言,利用两个液体闪烁检测器分别获取中子,中子,γ射线,γ射线中子和γ射线,γ射线的重合。将测量结果与使用MCNP-PoliMi代码获得的结果进行比较,该代码逐个事件地模拟源中的中子和伽马射线重合。这种比较导致相对良好的定性一致性。中子和伽马射线对总互相关的贡献的测量和模拟提供了新的特征,可以使用为准确识别核材料而构建的现有实验系统获得新的特征。该研究直接应用于核不扩散和国土安全领域。

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