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Characterizing Dead Time of Neutron Multiplicity Counters Using Rossi-Alpha Distributions

机译:使用Rossi-Alpha分布表征中子多重计数器的死区时间

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As neutrons released in a single fission event are temporally correlated, the dead time effects in neutron multiplicity counting are non-trivial resulting in rather complicated corrections of the measured data. While recent theoretical advances (e.g. Correlated Neutron Dead Time Model -CNDTM) take into account this neutron correlation, the implementation of these corrections relies on a single effective dead time. Due to the complexity of the instrument, there may be different sources of dead time, leading to a complex, detector-specific structure to the dead time, not easily characterized by a single paralyzable dead time. In practice, these dead time characteristics may not be readily available. In this paper, we present results of systematic simulation studies of various dead time effects that are artificially introduced into neutron detection time sequences (pulse trains) generated from high-fidelity MCNP simulations. Rossi-alpha distributions created from these pulse trains clearly show the differences between various dead time structures and in turn can be used as a tool to deduce the characteristics of the detector-specific dead time in the experimental data and possibly evaluate an effective value usable in analytical approaches such as CNDTM. Results from comparison with CNDTM are also discussed.
机译:由于在单个裂变事件中释放的中子在时间上是相关的,所以中子多重性计数中的死区时间影响是不平凡的,从而导致对测量数据进行相当复杂的校正。尽管最近的理论进展(例如相关中子死区时间模型-CNDTM)考虑了这种中子相关性,但这些校正的实现依赖于单个有效死区时间。由于仪器的复杂性,停滞时间可能有不同的来源,导致停滞时间的复杂,特定于检测器的结构,很难通过单个可瘫痪的停滞时间来表征。实际上,这些停滞时间特性可能不容易获得。在本文中,我们介绍了各种死区时间效应的系统仿真研究结果,这些死区时间效应被人为地引入了由高保真MCNP模拟生成的中子检测时间序列(脉冲序列)中。由这些脉冲序列创建的Rossi-alpha分布清楚地显示了各种空载时间结构之间的差异,进而可以用作在实验数据中推论特定于检测器的空载时间特性的工具,并可能评估可用于分析方法,例如CNDTM。还讨论了与CNDTM比较的结果。

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