Determination of Tissue Phantom Ratios of High Energy Photon Beams Using Monte Carlo Code

Ibitoye A.Z, Adedokun M.B, Ogungbemi I.K
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Abstract

Monte Carlo codes are veritable tools in radiotherapy to understand the transport mechanism, dose distributions, and energy depositions of ionizing radiations traversing in different media. In some beam calibration protocols, a tissue-phantom-ratio at depths 20 cm and 10 cm (TPR20,10) in a phantom is used to determine the beam-quality conversion factor for different ion chambers. Thus, this study aims to evaluate the efficiency of Monte Carlo code in the determination of beam quality of high radiation energy beams similar to what is expected in clinical settings. Electron Gamma Shower National Research Council in Canada (EGSnrc) Monte Carlo Code was used to design complex ion chamber geometries according to the manufacturer’s specifications. Phase space files were used as x-ray beam radiation sources. Two set-ups (SAD and SSD) methods were used for the determination of TPR20,10 to conform to the accepted clinical procedures. Beam collimation was 10 cm by 10 cm field size with an ionization chamber placed at 20 cm and 10 cm in the water phantom to obtain doses at two points respectively. The TPR20,10 of each energy was obtained using the appropriate equations. The obtained results showed no significant difference between the measured and available TPR 20,10 data (p = 0.995). Ion chamber configurations and specifications were also found not to have a significant effect (p = 0.33) on the TPR 20,10 obtained values. The results obtained in this study are in agreement with the recommended standard values. The findings of this study show that the Monte Carlo codes can be used as a tool in determining x-ray beam quality indices of designed clinical linear accelerator (Linac) machines.
利用蒙特卡洛代码确定高能光子束的组织幻影比率
蒙特卡罗码是放疗中了解电离辐射在不同介质中传输机制、剂量分布和能量沉积的名副其实的工具。在一些光束校准方案中,在深度20 cm和10 cm处的组织-幻影比(TPR20,10)用于确定不同离子室的光束质量转换因子。因此,本研究旨在评估蒙特卡罗代码在确定高辐射能量光束的光束质量方面的效率,类似于临床环境中所期望的。电子伽玛阵雨在加拿大国家研究委员会(EGSnrc)使用蒙特卡罗代码设计复杂的离子室几何形状根据制造商的规格。采用相空间文件作为x射线束辐射源。采用两种设置(SAD和SSD)法测定TPR20、10,以符合临床公认的程序。光束准直采用10 cm × 10 cm的场尺寸,电离室分别放置在水模内20 cm和10 cm处,分别获得两点的剂量。利用相应的方程求得各能量的TPR20、10。所得结果与实测TPR 20,10数据无显著差异(p = 0.995)。离子室的配置和规格也没有显著影响(p = 0.33)的TPR 20,10得到的值。本研究结果与推荐标准值一致。本研究结果表明,蒙特卡罗码可以作为一种工具来确定所设计的临床直线加速器(Linac)机器的x射线束质量指标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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