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首页> 外文期刊>Cellular and molecular biology >Calculation of dose components in head phantom for boron neutron capture therapy.
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Calculation of dose components in head phantom for boron neutron capture therapy.

机译:用于硼中子俘获治疗的头部模型中剂量成分的计算。

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Application of neutrons to cancer treatment has been a subject of considerable clinical and research interest since the discovery of the neutron by Chadwick in 1932 (3). Boron neutron capture therapy (BNCT) is a technique of radiation oncology which is used in treating brain cancer (glioblastoma multiform) or melanoma and that consists of preferentially loading a compound containing 10B into the tumor location, followed by the irradiation of the patient with a beam of neutron. Dose distribution for BNCT is mainly based on Monte Carlo simulations. In this work, the absorbed dose spatial distribution resultant from an idealized neutron beam incident upon ahead phantom is investigated using the Monte Carlo N-particles code, MCNP 4B. The phantom model used is based on the geometry of a circular cylinder on which sits an elliptical cylinder capped by half an ellipsoid representing the neck and head, both filled with tissue-equivalent material. The neutron flux and the contribution of individual absorbed dose components, as a function of depths and of radial distance from the beam axis (dose profiles) in phantom model, is presented and discussed. For the studied beam the maximum thermal neutron flux is at a depth of 2 cm and the maximum gamma dose at a depth of 4 cm.
机译:自1932年Chadwick发现中子以来,中子在癌症治疗中的应用一直是相当重要的临床和研究兴趣(3)。硼中子俘获疗法(BNCT)是一种放射肿瘤学技术,用于治疗脑癌(胶质母细胞瘤形式)或黑色素瘤,其方法是将含有10B的化合物优先装入肿瘤部位,然后用放射线照射患者。中子束。 BNCT的剂量分布主要基于蒙特卡洛模拟。在这项工作中,使用蒙特卡罗N粒子代码MCNP 4B研究了理想化的中子束入射到前方模型上所产生的吸收剂量空间分布。所使用的幻影模型基于圆柱体的几何形状,在圆柱体上放置一个椭圆形圆柱体,该椭圆形圆柱体由代表颈部和头部的半个椭圆形所覆盖,两者均填充有组织等效材料。提出并讨论了幻影模型中中子通量和各个吸收剂量成分的贡献,其是深度和距束轴的径向距离(剂量分布)的函数。对于所研究的光束,最大中子热通量为2 cm,最大伽马剂量为4 cm。

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