Suppr超能文献

使用蒙特卡罗技术对单能电子和放射性核素进行剂量点核模拟。

Dose point kernel simulation for monoenergetic electrons and radionuclides using Monte Carlo techniques.

作者信息

Wu J, Liu Y L, Chang S J, Chao M M, Tsai S Y, Huang D E

机构信息

Department of Biomedical Imaging and Radiological Science, China Medical University, 40402 Taichung, Taiwan, ROC.

出版信息

Radiat Prot Dosimetry. 2012 Nov;152(1-3):119-24. doi: 10.1093/rpd/ncs204. Epub 2012 Aug 23.

Abstract

Monte Carlo (MC) simulation has been commonly used in the dose evaluation of radiation accidents and for medical purposes. The accuracy of simulated results is affected by the particle-tracking algorithm, cross-sectional database, random number generator and statistical error. The differences among MC simulation software packages must be validated. This study simulated the dose point kernel (DPK) and the cellular S-values of monoenergetic electrons ranging from 0.01 to 2 MeV and the radionuclides of (90)Y, (177)Lu and (103 m)Rh, using Fluktuierende Kaskade (FLUKA) and MC N-Particle Transport Code Version 5 (MCNP5). A 6-μm-radius cell model consisting of the cell surface, cytoplasm and cell nucleus was constructed for cellular S-value calculation. The mean absolute percentage errors (MAPEs) of the scaled DPKs, simulated using FLUKA and MCNP5, were 7.92, 9.64, 4.62, 3.71 and 3.84 % for 0.01, 0.1, 0.5, 1 and 2 MeV, respectively. For the three radionuclides, the MAPEs of the scaled DPKs were within 5 %. The maximum deviations of S(N←N), S(N←Cy) and S(N←CS) for the electron energy larger than 10 keV were 6.63, 6.77 and 5.24 %, respectively. The deviations for the self-absorbed S-values and cross-dose S-values of the three radionuclides were within 4 %. On the basis of the results of this study, it was concluded that the simulation results are consistent between FLUKA and MCNP5. However, there is a minor inconsistency for low energy range. The DPK and the cellular S-value should be used as the quality assurance tools before the MC simulation results are adopted as the gold standard.

摘要

蒙特卡罗(MC)模拟已普遍应用于辐射事故剂量评估及医学用途。模拟结果的准确性受粒子追踪算法、截面数据库、随机数发生器及统计误差影响。必须验证MC模拟软件包之间的差异。本研究使用弗卢克蒂ierende卡ascade(FLUKA)和MC N粒子输运代码版本5(MCNP5)模拟了能量范围从0.01到2 MeV的单能电子以及(90)Y、(177)Lu和(103 m)Rh放射性核素的剂量点核(DPK)和细胞S值。构建了一个半径为6μm、由细胞表面、细胞质和细胞核组成的细胞模型用于细胞S值计算。使用FLUKA和MCNP5模拟的缩放DPK的平均绝对百分比误差(MAPE),对于0.01、0.1、0.5、1和2 MeV分别为7.92%、9.64%、4.62%、3.71%和3.84%。对于这三种放射性核素,缩放DPK的MAPE在5%以内。电子能量大于10 keV时,S(N←N)、S(N←Cy)和S(N←CS)的最大偏差分别为6.63%、6.77%和5.24%。三种放射性核素的自吸收S值和交叉剂量S值的偏差在4%以内。基于本研究结果,得出结论:FLUKA和MCNP5的模拟结果一致。然而,在低能量范围存在微小不一致。在将MC模拟结果作为金标准采用之前,DPK和细胞S值应用作质量保证工具。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验