论文标题
质子运输和剂量计算中的核效应
Nuclear effects in proton transport and dose calculations
论文作者
论文摘要
质子与核的相互作用以适合蒙特卡洛模拟质子转运的形式进行建模。质子与中性原子的弹性碰撞的差分横截面(DC)表示为卢瑟福DC的乘积,它描述了通过裸点核描述散射的散射,而两个校正因子则说明了通过原子电子和核结构的效果筛选核电筛选的校正因子。筛选校正是通过考虑通过点核的原子对弹丸的散射以及通过Dirac-Hartree-Slater-Slater自称电子密度的参数化描述的原子电子云的散射。通过艾科尼尔近似值计算出散射的DC。通过传统的部分波分析计算出对DC进行弹性碰撞的核校正,并具有描述与裸核相互作用的全局光学模型电位。弹丸与靶核的非弹性相互作用是通过使用ENDF-6格式的数据文件的信息来描述的,这些信息提供了所有反应产物的横截面,多重性和角度 - 能量分布:光弹出液(中子,质子,质子,……),伽玛斯,伽玛斯,以及沉重的残留物。这些相互作用数据已在蒙特卡洛运输代码penh中使用,这是电子 - 伽马码Penelope的扩展,最初仅考虑电磁相互作用。组合的代码系统Penh/Penelope进行了耦合电子 - Photon-Proton传输的模拟。给出了一些模拟结果的例子,以揭示核相互作用对质子转运过程的影响以及对质子束的剂量分布的计算。
Interactions of protons with nuclei are modeled in a form that is suitable for Monte Carlo simulation of proton transport. The differential cross section (DCS) for elastic collisions of protons with neutral atoms is expressed as the product of the Rutherford DCS, which describes scattering by a bare point nucleus, and two correction factors that account for the screening of the nuclear charge by the atomic electrons and for the effect of the structure of the nucleus. The screening correction is obtained by considering the scattering of the projectile by an atom with a point nucleus and the atomic electron cloud described by a parameterization of the Dirac-Hartree-Fock-Slater self-consistent electron density. The DCS for scattering by this point nucleus atom is calculated by means of the eikonal approximation. The nuclear correction to the DCS for elastic collisions is calculated by conventional partial-wave analysis with a global optical-model potential that describes the interaction with the bare nucleus. Inelastic interactions of the projectile with target nuclei are described by using information from data files in ENDF-6 format, which provide cross sections, multiplicities, and angle-energy distributions of all reaction products: light ejectiles (neutrons, protons, . . . ), gammas, as well as recoiling heavy residuals. These interaction data have been used in the Monte Carlo transport code PENH, an extension of the electron-gamma code PENELOPE, which originally accounted for electromagnetic interactions only. The combined code system PENH/PENELOPE performs simulations of coupled electron-photon-proton transport. A few examples of simulation results are presented to reveal the influence of nuclear interactions on proton transport processes and on the calculation of dose distributions from proton beams.