Geant4 Modifications for Accurate Fission Simulations

Jiawei Tan, Joseph Bendahan
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引用次数: 2

Abstract

Monte Carlo is one of the methods to simulate the generation and transport of radiation through matter. The most widely used radiation simulation codes are MCNP and Geant4. The simulation of fission production and transport by MCNP has been thoroughly benchmarked. There is an increasing number of users that prefer using Geant4 due to the flexibility of adding features. However, it has been found that Geant4 does not have the proper fission-production cross sections and does not produce the correct fission products. To achieve accurate results for studies in fissionable material applications, Geant4 was modified to correct these inaccuracies and to add new capabilities. The fission model developed by the Lawrence Livermore National Laboratory was integrated into the neutron-fission modeling package. The photofission simulation capability was enabled using the same neutron-fission library under the assumption that nuclei fission in the same way, independent of the excitation source. The modified fission code provides the correct multiplicity of prompt neutrons and gamma rays, and produces delayed gamma rays and neutrons with time and energy dependencies that are consistent with ENDF/B-VII. The delayed neutrons are now directly produced by a custom package that bypasses the fragment cascade model. The modifications were made for U-235, U-238 and Pu-239 isotopes; however, the new framework allows adding new isotopes easily. The SLAC nuclear data library is used for simulation of isotopes with an atomic number above 92 because it is not available in Geant4. Results of the modified Geant4.10.1 package of neutron-fission and photofission for prompt and delayed radiation are compared with ENDFB-VII and with results produced with the original package.

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精确裂变模拟的Geant4修正
蒙特卡罗法是模拟辐射在物质中产生和传输的方法之一。目前使用最广泛的辐射模拟代码是MCNP和Geant4。MCNP对裂变产生和输运的模拟已经经过了全面的基准测试。由于添加特性的灵活性,越来越多的用户更喜欢使用Geant4。然而,已经发现Geant4没有适当的裂变产生截面,也没有产生正确的裂变产物。为了在可裂变材料应用研究中获得准确的结果,对Geant4进行了修改,以纠正这些不准确性,并增加了新的功能。由劳伦斯利弗莫尔国家实验室开发的裂变模型被集成到中子裂变建模包中。在假设原子核以相同的方式独立于激发源的情况下,使用相同的中子裂变库实现了光裂变模拟能力。修改后的裂变代码提供了提示中子和伽马射线的正确数量,并产生具有时间和能量依赖性的延迟伽马射线和中子,与ENDF/B-VII一致。延迟中子现在由一个定制的包直接产生,绕过碎片级联模型。对U-235、U-238和Pu-239同位素进行了修饰;然而,新的框架允许很容易地添加新的同位素。SLAC核数据库用于原子序数大于92的同位素的模拟,因为它在Geant4中不可用。将修改后的genant4.10.1中子裂变和光裂变快速和延迟辐射包的结果与ENDFB-VII以及原始包的结果进行比较。
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