Varian Medical Systems, a Siemens Healthineers Company, Helsinki, Finland.
Department of Physics, University of Helsinki, Finland.
Phys Med Biol. 2023 Feb 10;68(4). doi: 10.1088/1361-6560/acb4d9.
A Monte Carlo (MC) model of a Halcyon and Ethos (Varian Medical Systems, a Siemens Healthineers Company) radiotherapy beam was validated and field-independent phase space (PHSP) files were recorded above the dual-layer multileaf collimators (MLC).The treatment head geometry was modeled according to engineering drawings and the dual-layer MLC was imported from CAD (computer-aided design) files. The information for the incident electron beam was achieved from an iterative electromagnetic solver. The validation of the model was performed by comparing the dose delivered by the square MLC fields as well as complex field measurements.An electron phase space was generated from linac simulations and achieved improved MC results. The output factors for square fields were within 1% and the largest differences of 5% were found in the build-up region of PDDs and the penumbra region of profiles. With the more complicated MLC-shaped field (Fishbone), the largest differences of up to 8% were found in the MLC leaf tip region due to the uncertainty of the MLC positioning and the mechanical leaf gap value. The impact of the collimator rotation on the PHSP solution has been assessed with both small and large fields, confirming negligible effects on in-field and out-of-field dose distributions.A computational model of the Halcyon and Ethos radiotherapy beam with a high accuracy implementation of the MLC was shown to be able to reproduce the radiation beam characteristics with square fields and more complex MLC-shaped fields. The field-independent PHSP files that were produced can be used as an accurate treatment head model above the MLC, and reduce the time to simulate particle transport through treatment head components.
对瓦里安医疗系统(西门子健康业务的一部分)Halcyon 和 Ethos 放疗设备的光束进行了 Monte Carlo (MC) 建模,并在双层多叶准直器 (MLC) 上方记录了与射野无关的相空间 (PHSP) 文件。根据工程图纸对治疗头几何形状进行建模,并从 CAD(计算机辅助设计)文件中导入双层 MLC。入射电子束的信息由迭代电磁场求解器获得。通过比较方形 MLC 射野的剂量分布以及复杂射野的测量结果来验证模型。从直线加速器模拟生成电子相空间,获得了改进的 MC 结果。方形射野的输出因子在 1%以内,在 PDD 的建成区和轮廓的半影区发现最大差异为 5%。在更复杂的 MLC 形状射野(鱼骨型)中,由于 MLC 定位的不确定性和机械叶片间隙值,在 MLC 叶片尖端区域发现最大差异可达 8%。评估了准直器旋转对 PHSP 解的影响,使用小射野和大射野进行了评估,证实对射野内和射野外剂量分布的影响可以忽略不计。一个具有高精度 MLC 实现的 Halcyon 和 Ethos 放疗光束的计算模型被证明能够重现方形射野和更复杂的 MLC 形状射野的辐射束特性。生成的与射野无关的 PHSP 文件可作为 MLC 上方的精确治疗头模型,减少模拟粒子通过治疗头组件传输所需的时间。