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BEAM:一款用于模拟放射治疗设备的蒙特卡罗代码。

BEAM: a Monte Carlo code to simulate radiotherapy treatment units.

作者信息

Rogers D W, Faddegon B A, Ding G X, Ma C M, We J, Mackie T R

机构信息

Institute for National Measurement Standards, National Research Council Canada, Ottawa.

出版信息

Med Phys. 1995 May;22(5):503-24. doi: 10.1118/1.597552.

Abstract

This paper describes BEAM, a general purpose Monte Carlo code to simulate the radiation beams from radiotherapy units including high-energy electron and photon beams, 60Co beams and orthovoltage units. The code handles a variety of elementary geometric entities which the user puts together as needed (jaws, applicators, stacked cones, mirrors, etc.), thus allowing simulation of a wide variety of accelerators. The code is not restricted to cylindrical symmetry. It incorporates a variety of powerful variance reduction techniques such as range rejection, bremsstrahlung splitting and forcing photon interactions. The code allows direct calculation of charge in the monitor ion chamber. It has the capability of keeping track of each particle's history and using this information to score separate dose components (e.g., to determine the dose from electrons scattering off the applicator). The paper presents a variety of calculated results to demonstrate the code's capabilities. The calculated dose distributions in a water phantom irradiated by electron beams from the NRC 35 MeV research accelerator, a Varian Clinac 2100C, a Philips SL75-20, an AECL Therac 20 and a Scanditronix MM50 are all shown to be in good agreement with measurements at the 2 to 3% level. Eighteen electron spectra from four different commercial accelerators are presented and various aspects of the electron beams from a Clinac 2100C are discussed. Timing requirements and selection of parameters for the Monte Carlo calculations are discussed.

摘要

本文介绍了BEAM,这是一个通用的蒙特卡罗代码,用于模拟放射治疗设备产生的辐射束,包括高能电子束和光子束、60钴束以及深部X线治疗机。该代码可处理用户根据需要组合的各种基本几何实体(准直器、施源器、叠层圆锥体、反射镜等),从而能够模拟各种加速器。该代码不限于圆柱对称。它采用了多种强大的方差减少技术,如射程剔除、轫致辐射分裂和强制光子相互作用。该代码允许直接计算监测电离室中的电荷。它能够跟踪每个粒子的历史,并利用这些信息对不同的剂量分量进行评分(例如,确定电子从施源器散射产生的剂量)。本文给出了各种计算结果以展示该代码的能力。由加拿大国家研究委员会35兆电子伏研究加速器、瓦里安Clinac 2100C、飞利浦SL75 - 20、加拿大原子能公司Therac 20和斯堪的克尼克斯MM50产生的电子束在水模体中照射时的计算剂量分布均显示与测量结果在2%至3%的水平上吻合良好。给出了来自四种不同商业加速器的18个电子能谱,并讨论了Clinac 2100C电子束的各个方面。还讨论了蒙特卡罗计算的时间要求和参数选择。

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