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首页> 外文期刊>Journal of Medical Physics/Association of Medical Physicists of India >Monte Carlo Calculation of the Energy Spectrum of a 6 MeV Electron Beam using PENetration and Energy Loss of Positrons and Electrons Code
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Monte Carlo Calculation of the Energy Spectrum of a 6 MeV Electron Beam using PENetration and Energy Loss of Positrons and Electrons Code

机译:Monte Carlo使用正弦和电子码的渗透和能量损失计算6MeV电子束的能谱计算

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摘要

Background: The limited bibliographic existence of research works on the use of Monte Carlo simulation to determine the energy spectra of electron beams compared to the information available regarding photon beams is a scientific task that should be resolved. Aims: In this work, Monte Carlo simulation was performed through the PENELOPE code of the Sinergy Elekta accelerator head to obtain the spectrum of a 6 MeV electron beam and its characteristic dosimetric parameters. Materials and Methods: The central-axis energy spectrum and the percentage depth dose curve of a 6 MeV electron beam of an Elekta Synergy linear accelerator were obtained by using Monte Carlo PENELOPE code v2014. For this, the linear accelerator head geometry, electron applicators, and water phantom were simplified. Subsequently, the interaction process between the electron beam and head components was simulated in a time of 86.4x10sup4/sup s. Results: From this simulation, the energy spectrum at the linear accelerator exit window and the surface of the phantom was obtained, as well as the associated percentage depth dose curves. The validation of the Monte Carlo simulation was performed by comparing the simulated and the measured percentage depth dose curves via the gamma index criterion. Measured percentage depth- dose was determined by using a Markus electron ionization chamber, type {"type":"entrez-nucleotide","attrs":{"text":"T23343","term_id":"511365","term_text":"T23343"}} T23343 . Characteristic parameters of the beam related with the PDD curves such as the maximum dose depth (Rsub100/sub), 90% dose depth (Rsub90/sub), 90% dose depth or therapeutic range (Rsub85/sub), half dose depth (Rsub50/sub), practical range (Rsubp/sub), maximum range (Rsubmax/sub), surface dose (Dsubs/sub), normalized dose gradient (Gsub0/sub) and photon contamination dose (Dsubx/sub) were determined. Parameters related with the energy spectrum, namely, the most probable energy of electrons at the surface (Esubp,0/sub) and electron average energy ( E – sub0/sub) were also determined. Conclusion: It was demonstrated that PENELOPE is an attractive and accurate tool for the obtaining of dosimetric parameters of a medical linear accelerator since it can reliably reproduce important clinical data such as the energy spectrum, depth dose, and dose profile.
机译:背景技术:研究的有限的书目存在对使用蒙特卡罗模拟来确定电子束的能谱与关于光子束的信息,是应该解决的科学任务。目的:在这项工作中,通过Sinergy Elekta Accelerator头的Penelope码进行Monte Carlo仿真,以获得6mev电子束的光谱及其特性剂量分析。材料和方法:通过使用Monte Carlo Penelope Code V2014获得了Elekta Synergy线性加速器6MeV电子束的中心轴能谱和百分比深度剂量曲线。为此,简化了线性加速器头几何,电子涂抹器和水体模。随后,在86.4x10 4 s的时间内模拟电子束和头部部件之间的相互作用过程。结果:从该模拟中,获得了线性加速器出口窗口的能谱和模镜的表面,以及相关百分比深度剂量曲线。通过比较通过伽马索引标准进行模拟和测量的百分比深度剂量曲线来执行蒙特卡罗模拟的验证。测量的百分比深度通过使用Markus电子电离室确定型(“型”:“entrez-nucerotide”,“attrez-nucleota”,“attrs”:{“text”:“t23343”,“term_id”:“511365”,“term_text “:”T23343“}} T23343。与PDD曲线相关的光束的特征参数,例如最大剂量深度(R 100 ),90%剂量深度(R 90 ),90%剂量深度或治疗剂范围(R 85 ),半剂量深度(R 50 ),实际范围(R p ),最大范围(R max ),表面剂量(D s ),归一化剂量梯度(g 0 )和光子污染剂量(d x )决定。还确定了与能谱相关的参数,即,表面(E p,0 )和电子平均能量(e- 0 )中最有可能的电子能量。结论:据证明,Penelope是获得医用线性加速器的剂量分析的吸引力和准确的工具,因为它可以可靠地再现重要的临床数据,例如能量谱,深度剂量和剂量谱。

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