Division of Radiation Protection and Safety Control, Cyclotron and Radioisotope Center, Tohoku University, 6-3 Aoba, Aramaki, Aoba-ku, Sendai, Miyagi 980-8578, Japan.
Nuclear Science and Engineering Center, Japan Atomic Energy Agency, 2-4 Shirakata, Tokai, Ibaraki 319-1195, Japan.
Radiat Prot Dosimetry. 2024 Feb 16;200(2):130-142. doi: 10.1093/rpd/ncad278.
Previously, we have developed DynamicMC for modeling relative movement of Oak Ridge National Laboratory phantom in a radiation field for the Monte Carlo N-Particle package (Health Physics. 2023,124(4):301-309). Using this software, three-dimensional dose distributions in a phantom irradiated by a certain mono-energetic (Mono E) source can be deduced through its graphical user interface. In this study, we extended DynamicMC to be used in combination with the Particle and Heavy Ion Transport code System (PHITS) by providing it with a higher flexibility for dynamic movement for an anthropomorphic phantom. For this purpose, we implemented four new functions into the software, which are (1) to generate not only Mono E sources but also those having an energy spectrum of an arbitrary radioisotope (2) to calculate the absorbed doses for several radiologically important organs (3) to automatically average the calculated absorbed doses along the path of the phantom and (4) to generate user-defined slab shielding materials. The first and third items utilize the PHITS-specific modalities named radioisotope-source and sumtally functions, respectively. The computational cost and complexity can be dramatically reduced with these features. We anticipate that the present work and the developed open-source tools will be in the interest of nuclear radiation physics community for research and teaching purposes.
此前,我们已经开发了 DynamicMC,用于模拟 Monte Carlo N-Particle 包中 Oak Ridge National Laboratory 体模在辐射场中的相对运动(《健康物理学》。2023,124(4):301-309)。使用此软件,可以通过其图形用户界面推断出受特定单能(Mono E)源照射的体模中的三维剂量分布。在这项研究中,我们通过为拟人体模的动态运动提供更高的灵活性,将 DynamicMC 扩展到与粒子和重离子传输代码系统(PHITS)一起使用。为此,我们在软件中实现了四个新功能,分别是:(1) 不仅可以生成 Mono E 源,还可以生成具有任意放射性同位素能谱的源;(2) 计算几个放射学重要器官的吸收剂量;(3) 自动沿体模路径平均计算的吸收剂量;(4) 生成用户定义的平板屏蔽材料。第一项和第三项分别利用了 PHITS 特有的放射性同位素源和 sumtally 功能。这些功能可以显著降低计算成本和复杂性。我们预计,本工作和开发的开源工具将有助于核辐射物理界进行研究和教学。