Validation of Monte Carlo dose calculations near I-125 sources in the presence of bounded heterogeneities

被引:0
|
作者
Das, RK
Keleti, D
Zhu, YM
Kirov, AS
Meigooni, AS
Williamson, JF
机构
[1] WASHINGTON UNIV, SCH MED, EDWARD MALLINCKRODT INST RADIOL, RADIAT ONCOL CTR, ST LOUIS, MO 63110 USA
[2] UNIV FLORIDA, DEPT RADIAT ONCOL, GAINESVILLE, FL USA
[3] USAF, SAN FRANCISCO, CA USA
[4] STEREOTAXIS INC, ST LOUIS, MO USA
[5] UNIV KENTUCKY, DEPT RADIAT MED, LEXINGTON, KY USA
来源
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS | 1997年 / 38卷 / 04期
关键词
tissue heterogeneity; TLD dosimetry; Monte Carlo;
D O I
暂无
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: Dose distributions around low energy (< 60 keV) brachytherapy sources, such as I-125, are known to be very sensitive to changes in tissue composition, Available I-125 dosimetry data describe the effects of replacing the entire water medium by heterogeneous material, This work extends our knowledge of tissue heterogeneity effects to the domain of bounded tissue heterogeneities, simulating clinical situations, Our goals are three-fold: (a) to experimentally characterize the variation of dose rate as a function of location and dimensions of the heterogeneity, (b) to confirm the accuracy of Monte Carlo dose calculation methods in the presence of bounded tissue heterogeneities, and (c) to use the Monte Carlo, method to characterize the dependence of heterogeneity correction factors (HCF) on the irradiation geometry. Methods and Materials: Thermoluminescent dosimeters (TLD) were used to measure the deviations from the homogeneous dose distribution of an I-125 Seed due to cylindrical tissue heterogeneities. A solid water phantom was machined accurately to accommodate the long axis of the heterogeneous cylinder in the transverse plane of a I-125 source, Profiles were obtained perpendicular to and along the cylinder axis, in the region downstream of the heterogeneity, Measurements were repeated at the corresponding points in homogeneous solid water, The measured heterogeneity correction factor (HCF) was defined as the ratio of the detector reading in the heterogeneous medium to that in the homogeneous medium at that point, The same ratio was simulated by a Monte Carlo photon transport (MCPT) code, using accurate modeling of the source, phantom, and detector geometry, In addition, Monte Carlo-based parametric studies were performed to identify the dependence of HCF on heterogeneity dimensions and distance from the source. Results: Measured and calculated HCFs reveal excellent agreement (less than or equal to 5% average) over a wide range of materials and geometries, HCFs downstream of 20 mm diameter by 10 mm thick hard bone cylinders vary from 0.12 to 0.30 with respect to distance, while for an inner bone cylinder of the same dimension, it varies from 0.72 to 0.83, For 6 mm diameter by 10 mm thick hard bone and inner bone cylinders, HCF varies 0.27-0.58 and 0.77-0.88, respectively, For lucite, fat, and air, the dependence of HCF on the 3D irradiation geometry was much less pronounced. Conclusion: Monte Carlo simulation is a powerful, convenient, and accurate tool for investigating the long neglected area of tissue composition heterogeneity corrections, Simple one dimensional dose calculation models that depend only on the heterogeneity thickness cannot accurately characterize I-125 dose distributions in the presence of bone-like heterogeneities. (C) 1997 Elsevier Science Inc.
引用
收藏
页码:843 / 853
页数:11
相关论文
共 50 条
  • [41] COMPARISON OF CALCULATED AND MEASURED HETEROGENEITY CORRECTION FACTORS FOR I-125, CS-137, AND IR-192 BRACHYTHERAPY SOURCES NEAR LOCALIZED HETEROGENEITIES
    WILLIAMSON, JF
    PERERA, H
    LI, ZF
    LUTZ, WR
    MEDICAL PHYSICS, 1993, 20 (01) : 209 - 222
  • [42] Models of photonic sources of radiological facilities for use in Monte Carlo irradiation dose calculations
    Yu. V. Zhurov
    I. N. Kachanov
    V. A. Klimanov
    V. V. Smirnov
    D. A. Chupikin
    Atomic Energy, 2008, 104 : 142 - 148
  • [43] Models of photonic sources of radiological facilities for use in Monte Carlo irradiation dose calculations
    Zhurov, Yu. V.
    Kachanov, I. N.
    Klimanov, V. A.
    Smirnov, V. V.
    Chupikin, D. A.
    ATOMIC ENERGY, 2008, 104 (02) : 142 - 148
  • [44] MONTE-CARLO ESTIMATES OF SPECIFIC ABSORBED FRACTIONS FOR AN I-125 POINT-SOURCE IN WATER
    BURNS, GS
    RAESIDE, DE
    MEDICAL PHYSICS, 1983, 10 (02) : 197 - 198
  • [45] Validation of a Monte Carlo Framework for Out-of-Field Dose Calculations in Proton Therapy
    De Saint-Hubert, Marijke
    Verbeek, Nico
    Baeumer, Christian
    Esser, Johannes
    Wulff, Joerg
    Nabha, Racell
    Van Hoey, Olivier
    Dabin, Jeremie
    Stuckmann, Florian
    Vasi, Fabiano
    Radonic, Stephan
    Boissonnat, Guillaume
    Schneider, Uwe
    Rodriguez, Miguel
    Timmermann, Beate
    Thierry-Chef, Isabelle
    Brualla, Lorenzo
    FRONTIERS IN ONCOLOGY, 2022, 12
  • [46] A SET OF PATIENT AND STAFF DOSE DATA FOR VALIDATION OF MONTE CARLO CALCULATIONS IN INTERVENTIONAL CARDIOLOGY
    Vano, E.
    Sanchez, R. M.
    Fernandez, J. M.
    Bartal, G.
    Canevaro, L.
    Lykawka, R.
    Melo, C.
    RADIATION PROTECTION DOSIMETRY, 2015, 165 (1-4) : 235 - 239
  • [47] Validation of Acuros XB Dose Calculations in SBRT Lung Planning with Monte Carlo Methods
    Bush, K.
    Wang, L.
    Mok, E.
    MEDICAL PHYSICS, 2012, 39 (06) : 3816 - 3817
  • [48] Validation of shutdown dose rate Monte Carlo calculations through a benchmark experiment at JET
    Villari, R.
    Angelone, M.
    Batistoni, P.
    Fischer, U.
    Pereslavtsev, P.
    Petrizzi, L.
    Popovichev, S.
    FUSION ENGINEERING AND DESIGN, 2008, 83 (10-12) : 1782 - 1787
  • [49] GPU technology is the hope for near real-time Monte Carlo dose calculations
    Jia, Xun
    Xu, X. George
    Orton, Colin G.
    MEDICAL PHYSICS, 2015, 42 (04) : 1474 - 1476
  • [50] Dose Distribution with a High-Z Intraocular Shield-Ferrofluid System: An I-125 Eye Plaque Brachytherapy Monte Carlo Study
    Oare, C.
    Gerbi, B.
    Ferreira, C.
    MEDICAL PHYSICS, 2022, 49 (06) : E241 - E242