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Neutron Field Outside the Room of Linear Medical Accelerator

机译:线性医疗加速器房间外的中子场

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Neutron radiation field in radiotherapeutic facility is mainly generated as a result of photonuclear reactions (γ,n), occurring when high-energy beam from linear medical accelerators is emitted. The intensity of undesired neutron production is strongly dependent on an accelerator model, i.e. beam type, end-point energy and head materials. Outside the treatment room neutron field is also dependent on the topology of the facility (room surface area, wall composition, maze shape and length, position of the control panel). Four linacs working in 20 MV photon mode (600 MU/min), installed in rooms of different size were considered in terms of the occupational neutron dose. The influence of the direction of X-ray beam emission as well as the size of irradiation field and wedge usage on the neutron field behind the treatment room door were investigated. Prompt gamma neutron activation analysis (PGNAA) has been used for determination of photoneutron fluence outside the treatment room. In situ portable spectrometry system based on semiconductor high purity germanium (HPGe) detector was used. Neutron capture reactions as well as inelastic scattering processes on germanium crystal were observed. The analysis was based on photopeaks count rates selected from registered spectra. Application of neutron energy moderators made of paraffin, allowed for roughly estimation of photoneutron spectra, distinguishing the slow, intermediate and fast components of neutron flux. Ambient dose equivalent H*(10) was estimated with the use of fluence-to-dose conversion coefficients. Additionally neutron dose rate meter LB123 was used. Dose rates 50 cm away from the bunker door were found to be within the range 0.531 - 2.500 μSv/h depending on the linac and direction of 20 MV beam emission. At the operator's console H*(10) was of the order of 0.027 μSv/h. Obtained results and their agreement with dosimeter indication have shown that PGNAA of HPGe spectrometer could be used in characterization of low rate neutron radiation field.
机译:放射治疗设施中的中子辐射场主要是由光核反应(γ,n)产生的,当发射来自线性医疗加速器的高能束时会发生。不良中子产生的强度在很大程度上取决于加速器模型,即射束类型,终点能量和头部材料。在治疗室之外,中子场还取决于设备的拓扑结构(房间表面积,壁组成,迷宫形状和长度,控制面板的位置)。根据职业中子剂量,考虑了安装在不同大小房间中的四个以20 MV光子模式工作的直线加速器(600 MU / min)。研究了X射线束发射方向以及辐照场大小和楔形物用量对治疗室门后的中子场的影响。迅速的γ中子活化分析(PGNAA)已用于确定治疗室外的光中子通量。使用基于半导体高纯锗(HPGe)检测器的原位便携式光谱系统。观察到中子俘获反应以及锗晶体上的非弹性散射过程。该分析基于从注册光谱中选择的光电峰计数率。由石蜡制成的中子能量调节剂的应用可以粗略估计光中子光谱,从而区分中子通量的慢,中和快成分。使用注量-剂量转换系数估算环境剂量当量H *(10)。另外,使用中子剂量率计LB123。距离地堡门50厘米的剂量率被发现在0.531-2.500μSv/ h的范围内,具体取决于直线加速器和20 MV束发射的方向。在操作员控制台上,H *(10)约为0.027μSv/ h。所得结果及其与剂量计指示的一致性表明,HPGe光谱仪的PGNAA可用于表征低速中子辐射场。

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