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Monte Carlo simulation of the photoneutron field in linac radiotherapy treatments with different collimation systems

机译:不同准直系统直线加速器放射治疗中光中子场的蒙特卡罗模拟

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摘要

Bremsstrahlung photon beams produced by linac accelerators are currently the most commonly used method of radiotherapy for tumour treatments. When the photon energy exceeds 10 MeV the patient receives an undesired dose due to photoneutron production in the accelerator head. In the last few decades, new sophisticated techniques such as multileaf collimators have been used for a better definition of the target volume. In this case it is crucial to evaluate the photoneutron dose produced after giant dipole resonance (GDR) excitation of the high Z materials (mainly tungsten and lead) constituting the collimator leaves in view of the optimization of the radiotherapy treatment. A Monte Carlo approach has been used to calculate the photoneutron dose arising from the GDR reaction during radiotherapy with energetic photon beams. The simulation has been performed using the code MCNP4B-GN which is based on MCNP4B, but includes a new routine GAMMAN to model photoneutron production. Results for the facility at IRCC (Istituto per la Ricerca e la Cura del Cancro) Candiolo (Turin), which is based on 18 MV x-rays from a Varian Clinac 2300 C/D, are presented for a variety of different collimator configurations.
机译:由直线加速器产生的致发光光子束是目前最常用的放射疗法用于肿瘤治疗。当光子能量超过10 MeV时,由于加速器头中产生光中子,患者会收到不希望的剂量。在过去的几十年中,诸如多叶准直仪之类的新的先进技术已被用于更好地确定目标体积。在这种情况下,鉴于放疗治疗的优化,评估组成准直器叶片的高Z材料(主要是钨和铅)的巨子偶极共振(GDR)激发后产生的光中子剂量至关重要。蒙特卡洛方法已被用于计算在高能光子束放射治疗期间由GDR反应引起的光中子剂量。已经使用基于MCNP4B的代码MCNP4B-GN进行了仿真,但是代码中包含了用于模拟光中子产生的新例程GAMMAN。展示了IRCC的设施结果(都灵),该设施基于来自Varian Clinac 2300 C / D的18 MV X射线,适用于各种不同的准直仪配置。

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