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Monte Carlo simulations of a low energy proton beamline for radiobiological experiments

机译:蒙特卡罗模拟低能量质子束线,用于放射生物学实验

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摘要

Background: In order to determine the relative biological effectiveness (RBE) of protons with high accuracy, radiobiological experiments with detailed knowledge of the linear energy transfer (LET) are needed. Cell survival data from high LET protons are sparse and experiments with low energy protons to achieve high LET values are therefore required. The aim of this study was to quantify LET distributions from a low energy proton beam by using Monte Carlo (MC) simulations, and to further compare to a proton beam representing a typical minimum energy available at clinical facilities. Materials and methods: A Markus ionization chamber and Gafchromic films were employed in dose measurements in the proton beam at Oslo Cyclotron Laboratory. Dose profiles were also calculated using the FLUKA MC code, with the MC beam parameters optimized based on comparisons with the measurements. LET spectra and dose-averaged LET (LET_d) were then estimated in FLUKA, and compared with LET calculated from an 80 MeV proton beam.
机译:背景:为了确定具有高精度的质子的相对生物效果(RBE),需要具有详细知识的辐射生物学实验,详细了解线性能量转移(Let)。来自高的细胞存活数据使质子稀疏,并且具有低能量质子的实验以实现高,所以需要值。本研究的目的是通过使用蒙特卡罗(MC)模拟来量化从低能量质子束的分布,并进一步与表示在临床设施中可用的典型最小能量的质子束进行比较。材料和方法:Markus电离室和Gafchromic薄膜在奥斯陆回旋尔利实验室的质子束中使用给剂量测量。还使用Fluka MC代码计算剂量配置文件,基于与测量的比较进行了优化的MC光束参数。然后,然后在Fluka中估计光谱和剂量平均设定(Let_D),并与来自80MeV质子束的允许计算。

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