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混合中子-γ混合辐射场中复合基体材料的屏蔽性能研究

Shielding Capability Research on Composite Base Materials in Hybrid Neutron-Gamma Mixed Radiation Fields.

作者信息

Xiao Ming, Qin Qingao, He Xin, Li Fei, Wang Xiaobo

机构信息

College of Nuclear Technology and Automation Engineering, Chengdu University of Technology, Chengdu 610059, China.

Applied Nuclear Technology in Geosciences Key Laboratory of Sichuan Province, Chengdu 610059, China.

出版信息

Materials (Basel). 2023 Mar 3;16(5):2084. doi: 10.3390/ma16052084.

Abstract

The N monitoring system operates in a mixed neutron-gamma radiation field and is subject to high background radiation, thus triggering instability in the N monitoring system measurement data. Due to its property of actual physical process simulation, the Monte Carlo method was adopted to establish the model of the N monitoring system and design a structure-functionally integrated shield to realize neutron-gamma mixed radiation shielding. First, the optimal shielding layer with a thickness of 4 cm was determined in this working environment, which had a significant shielding effect on the background radiation and improved the measurement of the characteristic energy spectrum and the shielding effect on neutrons was better than gamma shielding with the increase in the shield thickness. Then, functional fillers such as B, Gd, W, and Pb were added to the matrix to compare the shielding rates of three matrix materials of polyethylene, epoxy resin, and 6061 aluminum alloy at 1 MeV neutron and gamma energy. The shielding performance of epoxy resin as the matrix material was better than that of the aluminum alloy and polyethylene, and the shielding rate of boron-containing epoxy resin was 44.8%. The γ-ray mass attenuation coefficients of lead and tungsten in the three matrix materials were simulated to determine the best material for the gamma shielding performance. Finally, the optimal materials for neutron shielding and gamma shielding were combined, and the shielding performance of single-layer shielding and double-layer shielding in mixed radiation field was compared. The optimal shielding material-boron-containing epoxy resin was determined as the shielding layer of the N monitoring system to realize the integration of structure and function, which provides a theoretical basis for the selection of shielding materials in a special working environment.

摘要

N监测系统在中子-γ混合辐射场中运行,受到高本底辐射影响,导致N监测系统测量数据不稳定。基于其实际物理过程模拟特性,采用蒙特卡罗方法建立N监测系统模型,并设计一种结构功能一体化屏蔽体以实现中子-γ混合辐射屏蔽。首先,确定了在该工作环境下厚度为4 cm的最佳屏蔽层,其对本底辐射有显著屏蔽效果,改善了特征能谱测量,且随着屏蔽层厚度增加,对中子的屏蔽效果优于对γ射线的屏蔽。然后,向基体中添加B、Gd、W和Pb等功能填料,比较聚乙烯、环氧树脂和6061铝合金三种基体材料在1 MeV中子和γ能量下的屏蔽率。以环氧树脂为基体材料的屏蔽性能优于铝合金和聚乙烯,含硼环氧树脂的屏蔽率为44.8%。模拟了三种基体材料中铅和钨的γ射线质量衰减系数,确定γ射线屏蔽性能最佳的材料。最后,将中子屏蔽和γ射线屏蔽的最佳材料组合,比较混合辐射场下单层屏蔽和双层屏蔽的屏蔽性能。确定最佳屏蔽材料——含硼环氧树脂作为N监测系统的屏蔽层,实现了结构与功能一体化,为特殊工作环境下屏蔽材料的选择提供了理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/131f/10004341/790dbd045cbe/materials-16-02084-g001.jpg

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