Comparison of penh, fluka, and Geant4/topas for absorbed dose calculations in air cavities representing ionization chambers in high-energy photon and proton beams

被引:38
作者
Baumann, Kilian-Simon [1 ,2 ]
Horst, Felix [2 ,3 ]
Zink, Klemens [1 ,2 ,4 ]
Goma, Carles [5 ]
机构
[1] Univ Med Ctr Giessen Marburg, Dept Radiotherapy & Radiooncol, Marburg, Germany
[2] Univ Appl Sci, Inst Med Phys & Radiat Protect, Giessen, Germany
[3] GSI Helmholtzzentrum Schwerionenforsch, Darmstadt, Germany
[4] FIAS, Frankfurt, Germany
[5] Katholieke Univ Leuven, Lab Expt Radiotherapy, Dept Oncol, Leuven, Belgium
基金
比利时弗兰德研究基金会; 欧盟地平线“2020”;
关键词
beam quality correction factors; dosimetry; high-energy photon and proton radiation; Monte Carlo simulation; radiation therapy; QUALITY CORRECTION FACTORS; MONTE-CARLO-SIMULATION; PLANE-PARALLEL CHAMBERS; CARBON-ION THERAPY; 10 MV PHOTON; ELECTRON-TRANSPORT; CALORIMETRIC DETERMINATION; MULTIPLE-SCATTERING; REFERENCE DOSIMETRY; K(Q) FACTORS;
D O I
10.1002/mp.13737
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose The purpose of this work is to analyze whether the Monte Carlo codes penh, fluka, and geant4/topas are suitable to calculate absorbed doses and fQ/fQ0 ratios in therapeutic high-energy photon and proton beams. Methods We used penh, fluka, geant4/topas, and egsnrc to calculate the absorbed dose to water in a reference water cavity and the absorbed dose to air in two air cavities representative of a plane-parallel and a cylindrical ionization chamber in a 1.25 MeV photon beam and a 150 MeV proton beam - egsnrc was only used for the photon beam calculations. The physics and transport settings in each code were adjusted to simulate the particle transport as detailed as reasonably possible. From these absorbed doses, fQ0 factors, fQ factors, and fQ/fQ0 ratios (which are the basis of Monte Carlo calculated beam quality correction factors kQ,Q0) were calculated and compared between the codes. Additionally, we calculated the spectra of primary particles and secondary electrons in the reference water cavity, as well as the integrated depth-dose curve of 150 MeV protons in water. Results The absorbed doses agreed within 1.4% or better between the individual codes for both the photon and proton simulations. The fQ0 and fQ factors agreed within 0.5% or better for the individual codes for both beam qualities. The resulting fQ/fQ0 ratios for 150 MeV protons agreed within 0.7% or better. For the 1.25 MeV photon beam, the spectra of photons and secondary electrons agreed almost perfectly. For the 150 MeV proton simulation, we observed differences in the spectra of secondary protons whereas the spectra of primary protons and low-energy delta electrons also agreed almost perfectly. The first 2 mm of the entrance channel of the 150 MeV proton Bragg curve agreed almost perfectly while for greater depths, the differences in the integrated dose were up to 1.5%. Conclusion penh, fluka, and geant4/topas are capable of calculating beam quality correction factors in proton beams. The differences in the fQ0 and fQ factors between the codes are 0.5% at maximum. The differences in the fQ/fQ0 ratios are 0.7% at maximum.
引用
收藏
页码:4639 / 4653
页数:15
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