首页> 外文期刊>Medical Physics >SU‐F‐T‐159: Monte Carlo Simulation Studies of Three‐Dimensional Dose Distribution for Polymer Gel Dosimeter and Radiochromic Gel Dosimeter in a Proton Beam
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SU‐F‐T‐159: Monte Carlo Simulation Studies of Three‐Dimensional Dose Distribution for Polymer Gel Dosimeter and Radiochromic Gel Dosimeter in a Proton Beam

机译:SU-F-T-159:聚合物凝胶剂量计的三维剂量分布的蒙特卡罗模拟研究质子梁中的放射性胶质凝胶剂量计

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Purpose: The purpose of this simulation study is to evaluate the proton detectability of gel dosimeters, and estimate the three‐dimensional dose distribution of protons in the radiochromic gel and polymer gel dosimeter compared with the dose distribution in water. Methods: The commercial composition ratios of normoxic polymer gel and LCV micelle radiochromic gel were included in this simulation study. The densities of polymer and radiochromic gel were 1.024 and 1.005 g/cm3, respectively. The 50, 80 and 140 MeV proton beam energies were selected. The dose distributions of protons in the polymer and radiochromic gel were simulated using Monte Carlo radiation transport code (MCNPX 2.7.0, Los Alamos Laboratory). The water equivalent depth profiles and the dose distributions of two gel dosimeters were compared for the water. Results: In case of irradiating 50, 80 and 140 MeV proton beam to water phantom, the reference Bragg‐peak depths are represented at 2.22, 5.18 and 13.98 cm, respectively. The difference in the water equivalent depth is represented to about 0.17 and 0.37 cm in the radiochromic gel and polymer gel dosimeter, respectively. The proton absorbed doses in the radiochromic gel dosimeter are calculated to 2.41, 3.92 and 6.90 Gy with increment of incident proton energies. In the polymer gel dosimeter, the absorbed doses are calculated to 2.37, 3.85 and 6.78 Gy with increment of incident proton energies. The relative absorbed dose in radiochromic gel (about 0.47 %) is similar to that of water than the relative absorbed dose of polymer gel (about 2.26 %). In evaluating the proton dose distribution, we found that the dose distribution of both gel dosimeters matched that of water in most cases. Conclusion: As the dosimetry device, the radiochromic gel dosimeter has the potential particle detectability and is feasible to use for quality assurance of proton beam therapy beam.
机译:目的:本研究模拟的目的是评价凝胶剂量计的质子探测性,并估计质子的在辐射变色凝胶和聚合物凝胶剂量计在水中的剂量分布进行比较的三维剂量分布。方法:在含氧量正常的聚合物凝胶和LCV胶束辐射显凝胶的商业组成比包括在该模拟研究。聚合物和辐射变色凝胶的密度分别为1.024和1.005克/立方厘米。选择时的50,80和140兆电子伏的质子束的能量。质子在聚合物和辐射变色凝胶的剂量分布是使用蒙特卡洛辐射传输代码模拟(MCNPX 2.7.0,洛斯阿拉莫斯实验室)。水当量深度剖面和两个凝胶剂量计的剂量分布的水进行比较。结果:在照射50,80和140兆电子伏的质子束,以水体模的情况下,参考布拉格峰深度在2.22,5.18和13.98厘米分别表示。在水当量深度差分别表示至约0.17和0.37厘米的辐射显凝胶和聚合物凝胶剂量计。质子吸收剂量在剂量计被计算以2.41,3.92和6.90 Gy的与入射质子能量的增量的辐射变色凝胶。在聚合物凝胶剂量计,所吸收的剂量计算为2.37,3.85和6.78 Gy的与入射质子能量的增量。相对在辐射变色凝胶(约0.47%)的吸收剂量是类似的水比的相对吸收了聚合物凝胶的剂量(约2.26%)。在评估质子剂量分布,我们发现,无论是凝胶的剂量分布剂量计在大多数情况下,匹配的是水。结论:作为剂量测定装置中,所述辐射变色凝胶剂量计具有潜在粒子探测,并且是用于质子束治疗射束的质量保证可行的。

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