Mishra Subhalaxmi, Mishra Bibekananda, Selvam T Palani, Deshpande Sudesh, Pathan Munir Shabbir, Kumar Rajesh
Division of Radiological Physics and Advisory, Health Safety and Environment Group, Bhabha Atomic Research Centre, Mumbai, Maharashtra, India.
Division of Radiological Safety, Atomic Energy Regulatory Board, Mumbai, Maharashtra, India.
J Med Phys. 2022 Jul-Sep;47(3):270-278. doi: 10.4103/jmp.jmp_16_22. Epub 2022 Nov 8.
As per the recommendations of the American Association of Physicists in Medicine Task Group 43, Monte Carlo (MC) investigators should reproduce previously published dose distributions whenever new features of the code are explored. The purpose of the present study is to benchmark the TG-43 dosimetric parameters calculated using the new MC user-code egs_brachy of EGSnrc code system for three different radionuclides Ir, Yb, and I which represent high-, intermediate-, and low-energy sources, respectively.
Brachytherapy sources investigated in this study are high-dose rate (HDR) Ir VariSource (Model VS2000), Yb HDR (Model 4140), and I -low-dose-rate (LDR) (Model OcuProsta). The TG-43 dosimetric parameters such as air-kerma strength, , dose rate constant, Λ, radial dose function, g(r) and anisotropy function, θ and two-dimensional (2D) absorbed dose rate data (along-away table) are calculated in a cylindrical water phantom of mass density 0.998 g/cm using the MC code egs_brachy. Dimensions of phantom considered for Ir VS2000 and Yb sources are 80 cm diameter ×80 cm height, whereas for I OcuProsta source, 30 cm diameter ×30 cm height cylindrical water phantom is considered for MC calculations.
The dosimetric parameters calculated using egs_brachy are compared against the values published in the literature. The calculated values of dose rate constants from this study agree with the published values within statistical uncertainties for all investigated sources. Good agreement is found between the egs_brachy calculated radial dose functions, g(r), anisotropy functions, and 2D dose rate data with the published values (within 2%) for the same phantom dimensions. For Ir VS2000 source, difference of about 28% is observed in g(r) value at 18 cm from the source which is due to differences in the phantom dimensions.
The study validates TG-43 dose parameters calculated using egs_brachy for Ir, Yb, and I brachytherapy sources with the values published in the literature.
根据美国医学物理学家协会任务组43的建议,每当探索代码的新特性时,蒙特卡罗(MC)研究人员都应重现先前发表的剂量分布。本研究的目的是对使用EGSnrc代码系统的新MC用户代码egs_brachy计算的TG-43剂量学参数进行基准测试,该参数针对三种不同的放射性核素铱(Ir)、镱(Yb)和碘(I),分别代表高、中、低能量源。
本研究中调查的近距离放射治疗源为高剂量率(HDR)铱可变源(型号VS2000)、镱HDR(型号4140)和碘低剂量率(LDR)(型号OcuProsta)。使用MC代码egs_brachy在质量密度为0.998 g/cm的圆柱形水体模中计算TG-43剂量学参数,如空气比释动能强度、剂量率常数、径向剂量函数g(r)和各向异性函数、θ以及二维(2D)吸收剂量率数据(沿源-距源表)。对于铱VS2000和镱源,考虑的体模尺寸为直径80 cm×高度80 cm,而对于碘OcuProsta源,MC计算考虑直径30 cm×高度30 cm的圆柱形水体模。
将使用egs_brachy计算的剂量学参数与文献中公布的值进行比较。本研究计算的剂量率常数与所有调查源在统计不确定度范围内的公布值一致。对于相同的体模尺寸,发现egs_brachy计算的径向剂量函数g(r)、各向异性函数和2D剂量率数据与公布值之间有良好的一致性(在2%以内)。对于铱VS2000源,在距源18 cm处的g(r)值观察到约28%的差异,这是由于体模尺寸的差异。
本研究验证了使用egs_brachy为铱、镱和碘近距离放射治疗源计算的TG-43剂量参数与文献中公布的值一致。