Monte Carlo N Particle code - Dose distribution of clinical electron beams in inhomogeneous phantoms

被引:5
|
作者
Nedaie, H. A. [1 ]
Mosleh-Shirazi, M. A. [2 ]
Allahverdi, M. [3 ]
机构
[1] Univ Tehran Med Sci, Canc Inst, Canc Res Ctr, Dept Radiotherapy Phys, Tehran, Iran
[2] Shiraz Univ Med Sci, Namazi Hosp, Dept Radiotherapy, Radiotherapy Phys Unit, Shiraz, Iran
[3] Shahid Beheshti Univ, Dept Nucl Engn, Tehran, Iran
关键词
Dose distribution; dosimetry; electron therapy; heterogeneous phantom; Monte Carlo N Particle;
D O I
10.4103/0971-6203.106607
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
Electron dose distributions calculated using the currently available analytical methods can be associated with large uncertainties. The Monte Carlo method is the most accurate method for dose calculation in electron beams. Most of the clinical electron beam simulation studies have been performed using non- MCNP [Monte Carlo N Particle] codes. Given the differences between Monte Carlo codes, this work aims to evaluate the accuracy of MCNP4C-simulated electron dose distributions in a homogenous phantom and around inhomogeneities. Different types of phantoms ranging in complexity were used; namely, a homogeneous water phantom and phantoms made of polymethyl methacrylate slabs containing different-sized, low- and high-density inserts of heterogeneous materials. Electron beams with 8 and 15 MeV nominal energy generated by an Elekta Synergy linear accelerator were investigated. Measurements were performed for a 10 cm x 10 cm applicator at a source-to-surface distance of 100 cm. Individual parts of the beam-defining system were introduced into the simulation one at a time in order to show their effect on depth doses. In contrast to the first scattering foil, the secondary scattering foil, X and Y jaws and applicator provide up to 5% of the dose. A 2%/2 mm agreement between MCNP and measurements was found in the homogenous phantom, and in the presence of heterogeneities in the range of 1-3%, being generally within 2% of the measurements for both energies in a "complex" phantom. A full-component simulation is necessary in order to obtain a realistic model of the beam. The MCNP4C results agree well with the measured electron dose distributions.
引用
收藏
页码:15 / 21
页数:7
相关论文
共 50 条
  • [1] Comparison of measured and Monte Carlo calculated dose distributions in inhomogeneous phantoms in clinical electron beams
    Doucet, R
    Olivares, M
    DeBlois, F
    Podgorsak, EB
    Kawrakow, I
    Seuntjens, J
    PHYSICS IN MEDICINE AND BIOLOGY, 2003, 48 (15): : 2339 - 2354
  • [2] ELECTRON DOSE DISTRIBUTIONS IN INHOMOGENEOUS PHANTOMS: A MONTE CARLO STUDY
    Mihailescu, D.
    Borcia, C.
    ROMANIAN REPORTS IN PHYSICS, 2018, 70 (03)
  • [3] Optimization of Monte Carlo Code for Clinical Simulation of Electron Beams
    Guerra Gutierrez, P.
    Udias, J. M.
    Herranz, E.
    Valdivieso, M.
    Calama, J.
    Illana, C.
    Ledesma-Carbayo, M. J.
    Santos, A.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2012, 84 (03): : S870 - S871
  • [4] Comparison of RTPS and Monte Carlo Dose Distributions in Heterogeneous Phantoms for Clinical Photon Beams
    Nakaguchi, Y.
    Araki, F.
    Fukuda, S.
    MEDICAL PHYSICS, 2009, 36 (06)
  • [5] Phantoms in particle therapy to verify Monte Carlo dose calculation
    Wohlfahrt, P.
    RADIOTHERAPY AND ONCOLOGY, 2019, 133 : S363 - S364
  • [6] Modelling of electron contamination in clinical photon beams for Monte Carlo dose calculation
    Yang, J
    Li, JS
    Qin, L
    Xiong, W
    Ma, CM
    PHYSICS IN MEDICINE AND BIOLOGY, 2004, 49 (12): : 2657 - 2673
  • [7] Experimental Validation of Peripheral Dose Distribution of Electron Beams for Eclipse Electron Monte Carlo Algorithm
    Cebe, M.
    Pacaci, P.
    Mabhouti, H.
    Codel, G.
    Sanli, E.
    Serin, E.
    Kucuk, N.
    Kucukmorkoc, E.
    Doyuran, M.
    Canoglu, D.
    Altinok, A.
    Acar, H.
    Ozkok, H. Caglar
    MEDICAL PHYSICS, 2016, 43 (06) : 3351 - 3351
  • [8] Experimental validaton of peripheral dose distribution of electron beams for eclipse electron Monte Carlo algorithm
    Acar, Hilal
    Caglar, Mustafa
    Altinok, Ayse Y.
    JOURNAL OF RADIOTHERAPY IN PRACTICE, 2018, 17 (03) : 279 - 288
  • [9] DOSE DISTRIBUTION OF ELECTRON BEAMS IN INHOMOGENEOUS PHANTOMS BY MCNP CALCULATION AND IT'S VERIFICATION WITH EXPERIMENTAL MEASUREMENTS.
    Nedaie, H. A.
    Shirazi, M. A. Mosleh
    RADIOTHERAPY AND ONCOLOGY, 2009, 92 : S220 - S220
  • [10] Dose distribution of electron beams in inhomogeneous phantoms by MCNP calculation and its verification with experimental measurements.
    Nedaie, H.
    Shiraziz, A. Mosleh
    Gharrati, H.
    Allahverdi, M.
    Shariari, M.
    Tizmaghz, Z.
    RADIOTHERAPY AND ONCOLOGY, 2007, 84 : S223 - S224