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对 FLUKA 和 GEANT4 的碳离子治疗核模型进行基准测试。

Benchmarking nuclear models of FLUKA and GEANT4 for carbon ion therapy.

机构信息

European Organization for Nuclear Research CERN, CH-1211, Geneva 23, Switzerland.

出版信息

Phys Med Biol. 2010 Oct 7;55(19):5833-47. doi: 10.1088/0031-9155/55/19/014. Epub 2010 Sep 16.

DOI:10.1088/0031-9155/55/19/014
PMID:20844337
Abstract

As carbon ions, at therapeutic energies, penetrate tissue, they undergo inelastic nuclear reactions and give rise to significant yields of secondary fragment fluences. Therefore, an accurate prediction of these fluences resulting from the primary carbon interactions is necessary in the patient's body in order to precisely simulate the spatial dose distribution and the resulting biological effect. In this paper, the performance of nuclear fragmentation models of the Monte Carlo transport codes, FLUKA and GEANT4, in tissue-like media and for an energy regime relevant for therapeutic carbon ions is investigated. The ability of these Monte Carlo codes to reproduce experimental data of charge-changing cross sections and integral and differential yields of secondary charged fragments is evaluated. For the fragment yields, the main focus is on the consideration of experimental approximations and uncertainties such as the energy measurement by time-of-flight. For GEANT4, the hadronic models G4BinaryLightIonReaction and G4QMD are benchmarked together with some recently enhanced de-excitation models. For non-differential quantities, discrepancies of some tens of percent are found for both codes. For differential quantities, even larger deviations are found. Implications of these findings for the therapeutic use of carbon ions are discussed.

摘要

作为治疗能量的碳离子,在穿透组织时会发生非弹性核反应,并产生大量次级碎片通量。因此,为了精确模拟空间剂量分布和由此产生的生物学效应,有必要在患者体内对这些源自初级碳相互作用的通量进行准确预测。在本文中,研究了蒙特卡罗输运代码 FLUKA 和 GEANT4 的核碎裂模型在组织样介质中和治疗碳离子相关能量范围内的性能。评估了这些蒙特卡罗代码重现电荷变化截面和次级带电碎片的积分和微分产额的实验数据的能力。对于碎片产额,主要关注实验近似和不确定性的考虑,例如飞行时间测量的能量。对于 GEANT4,与一些最近增强的退激模型一起对强相互作用模型 G4BinaryLightIonReaction 和 G4QMD 进行了基准测试。对于非微分量,两个代码都发现存在几十%的差异。对于微分量,甚至发现更大的偏差。讨论了这些发现对碳离子治疗应用的影响。

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