使用粒子和重离子传输系统代码模拟 TrueBeam 直线粒子加速器的头部,并计算 10-MV 光子中心轴上的光中子谱。

IF 0.8 4区 环境科学与生态学 Q4 ENVIRONMENTAL SCIENCES
Soai Dang Quoc, Toshioh Fujibuchi, Hiroyuki Arakawa, Keisuke Hamada
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引用次数: 0

摘要

光子能量高于(γ,n)阈值,使其能够与具有高 z 特性的材料的原子核相互作用并释放出快中子。这可能是对人类和环境有害的辐射源。这项研究在 TrueBeam 10-MV 直线粒子加速器的头部屏蔽模型上使用粒子和重离子传输代码系统 (PHITS) 验证了蒙特卡罗模拟,然后使用 PHITS 代码模拟光束传输的光中子谱。结果表明,在比较模拟和测量的 PDD 和横线时,100% 的 γ 指数都是
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulating the head of a TrueBeam linear particle accelerator and calculating the photoneutron spectrum on the central axis of a 10-MV photon using particle and heavy-ion transport system code.

Photon energy is higher than the (γ,n) threshold, allowing it to interact with the nuclei of materials with high z properties and liberate fast neutrons. This represents a potentially harmful source of radiation for humans and the environment. This study validated the Monte Carlo simulation, using the particle and heavy-ion transport code system (PHITS) on a TrueBeam 10-MV linear particle accelerator's head shielding model and then used this PHITS code to simulate a photo-neutron spectrum for the transport of the beam. The results showed that, when comparing the simulated to measured PDD and crosslines, 100% of the γ-indexes were <1 (γ3%/3mm) for both simulations, for both phase-space data source and a mono energy source. Neutron spectra were recorded in all parts of the TrueBeam's head, as well as photon neutron spectra at three points on the beamline.

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来源期刊
Radiation protection dosimetry
Radiation protection dosimetry 环境科学-公共卫生、环境卫生与职业卫生
CiteScore
1.40
自引率
10.00%
发文量
223
审稿时长
6-12 weeks
期刊介绍: Radiation Protection Dosimetry covers all aspects of personal and environmental dosimetry and monitoring, for both ionising and non-ionising radiations. This includes biological aspects, physical concepts, biophysical dosimetry, external and internal personal dosimetry and monitoring, environmental and workplace monitoring, accident dosimetry, and dosimetry related to the protection of patients. Particular emphasis is placed on papers covering the fundamentals of dosimetry; units, radiation quantities and conversion factors. Papers covering archaeological dating are included only if the fundamental measurement method or technique, such as thermoluminescence, has direct application to personal dosimetry measurements. Papers covering the dosimetric aspects of radon or other naturally occurring radioactive materials and low level radiation are included. Animal experiments and ecological sample measurements are not included unless there is a significant relevant content reason.
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