Monte Carlo simulation of large electron fields

被引:28
|
作者
Faddegon, Bruce A. [1 ]
Perl, Joseph [2 ]
Asai, Makoto [2 ]
机构
[1] Univ Calif San Francisco, Ctr Comprehens Canc, San Francisco, CA 94143 USA
[2] Stanford Linear Accelerator Ctr, Menlo Pk, CA 94025 USA
来源
PHYSICS IN MEDICINE AND BIOLOGY | 2008年 / 53卷 / 05期
关键词
D O I
10.1088/0031-9155/53/5/021
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Two Monte Carlo systems, EGSnrc and Geant4, the latter with two different `physicslists,' were used to calculate dose distributions in large electron fields used in radiotherapy. Source and geometry parameters were adjusted to match calculated results to measurement. Both codes were capable of accurately reproducing the measured dose distributions of the six electron beams available on the accelerator. Depth penetration matched the average measured with a diode and parallel-plate chamber to 0.04 cm or better. Calculated depth dose curves agreed to 2% with diode measurements in the build-up region, although for the lower beam energies there was a discrepancy of up to 5% in this region when calculated results are compared to parallel-plate measurements. Dose profiles at the depth of maximum dose matched to 2-3% in the central 25 cm of the field, corresponding to the field size of the largest applicator. A 4% match was obtained outside the central region. The discrepancy observed in the bremsstrahlung tail in published results that used EGS4 is no longer evident. Simulations with the different codes and physics lists used different source energies, incident beam angles, thicknesses of the primary foils, and distance between the primary and secondary foil. The true source and geometry parameters were not known with sufficient accuracy to determine which parameter set, including the energy of the source, was closest to the truth. These results underscore the requirement for experimental benchmarks of depth penetration and electron scatter for beam energies and foils relevant to radiotherapy.
引用
收藏
页码:1497 / 1510
页数:14
相关论文
共 50 条
  • [1] Monte Carlo simulation of large electron fields
    Faddegon, B
    Schreiber, E
    Ding, X
    PHYSICS IN MEDICINE AND BIOLOGY, 2005, 50 (05): : 741 - 753
  • [2] Improved Monte Carlo Simulation of Small Electron Fields
    O'Shea, T.
    Faddegon, B.
    Sawkey, D.
    Foley, M.
    MEDICAL PHYSICS, 2009, 36 (06) : 2703 - +
  • [3] Monte Carlo simulation of large electron fields at extended distances: Total skin electron treatment optimization
    Shokrani, P
    Elson, H
    MEDICAL PHYSICS, 2005, 32 (07) : 2424 - 2424
  • [4] A benchmark for Monte Carlo simulation of photoneutron fields from electron accelerators
    Sari, Adrien
    Meleshenkovskii, Iaroslav
    Ogawa, Tatsuhiko
    Tran, Kim-Tuyet
    Jinaphanh, Alexis
    Jouanne, Cedric
    Zoia, Andrea
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2025, 1072
  • [5] Monte Carlo Simulation of Small Electron Fields for Small Animal Irradiation
    Lee, C.
    Chen, A.
    Chao, T.
    Tung, C.
    MEDICAL PHYSICS, 2008, 35 (06)
  • [6] Monte Carlo simulation of oil fields
    Kok, Mustafa Versan
    Kaya, Egemen
    Akin, Serhat
    ENERGY SOURCES PART B-ECONOMICS PLANNING AND POLICY, 2006, 1 (02) : 207 - 211
  • [7] ELECTRON AVALANCHE MODELING IN CROSSED FIELDS IN HYDROGEN BY MONTE-CARLO SIMULATION
    VAGNER, SD
    KARASIK, BS
    PYADIN, VP
    ZHURNAL TEKHNICHESKOI FIZIKI, 1986, 56 (05): : 846 - 849
  • [8] Monte Carlo simulation of small electron fields collimated by the integrated photon MLC
    Mihaljevic, Josip
    Soukup, Martin
    Dohm, Oliver
    Alber, Markus
    PHYSICS IN MEDICINE AND BIOLOGY, 2011, 56 (03): : 829 - 843
  • [9] Total skin electron therapy treatment verification:: Monte Carlo simulation and beam characteristics of large non-standard electron fields
    Pavón, EC
    Sánchez-Doblado, F
    Leal, A
    Capote, R
    Lagares, JI
    Perucha, M
    Arráns, R
    PHYSICS IN MEDICINE AND BIOLOGY, 2003, 48 (17): : 2783 - 2796
  • [10] Monte Carlo simulation of dynamic wedged fields
    Shih, R
    MEDICAL PHYSICS, 2000, 27 (12) : 2827 - 2827