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Development of a water calorimetry-based standard for absorbed dose to water in HDR 192Ir brachytherapy.

机译:开发了一种基于水热法的标准,用于HDR 192Ir近距离放射治疗中对水的吸收剂量。

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PURPOSE: The aim of this article is to develop and evaluate a primary standard for HDR 192Ir brachytherapy based on 4 degrees C stagnant water calorimetry. METHODS: The absolute absorbed dose to water was directly measured for several different Nucletron microSelectron 192Ir sources of air kerma strength ranging between 21,000 and 38,000 U and for source-to-detector separations ranging between 25 and 70 mm. The COMSOL MULTIPHYSICS software was used to accurately calculate the heat transport in a detailed model geometry. Through a coupling of the "conduction and convection" module with the "Navier-Stokes incompressible fluid" module in the software, both the conductive and convective effects were modeled. RESULTS: A detailed uncertainty analysis resulted in an overall uncertainty in the absorbed dose of 1.90% (1 sigma). However, this includes a 1.5% uncertainty associated with a nonlinear predrift correction which can be substantially reduced if sufficient time is provided for the system to come to a new equilibrium in between successive calorimetric runs, an opportunity not available to the authors in their clinical setting due to time constraints on the machine. An average normalized dose rate of 361 +/- 7 microGy/(h U) at a source-to-detector separation of 55 mm was measured for the microSelectron 192Ir source based on water calorimetry. The measured absorbed dose per air kerma strength agreed to better than 0.8% (1 sigma) with independent ionization chamber and EBT-1 Gafchromic film reference dosimetry as well as with the currently accepted AAPM TG-43 protocol measurements. CONCLUSIONS: This work paves the way toward a primary absorbed dose to water standard in 192Ir brachytherapy.
机译:目的:本文的目的是开发和评估基于4摄氏度死水量热法的HDR 192Ir近距离放射治疗的主要标准。方法:直接测量了几种不同的Nucletron microSelectron 192Ir空气比释动能强度的水源的绝对吸收剂量,范围介于21,000和38,000 U之间,以及源与检测器的分离范围为25至70 mm。 COMSOL MULTIPHYSICS软件用于精确计算详细模型几何中的热传递。通过软件中“传导和对流”模块与“ Navier-Stokes不可压缩流体”模块的耦合,可以对传导和对流效应进行建模。结果:详细的不确定性分析导致吸收剂量的整体不确定性为1.90%(1 sigma)。但是,这包括与非线性预漂移校正相关的1.5%不确定性,如果在连续的量热运行之间为系统提供足够的时间使其达到新的平衡,则可以大大降低不确定性,这对于作者在其临床环境中没有机会由于机器上的时间限制。基于水量热法,对于MicroSelectron 192Ir光源,在源与检测器之间的距离为55 mm的情况下,测得的平均归一化剂量率为361 +/- 7 microGy /(h U)。使用独立的电离室和EBT-1 Gafchromic薄膜参考剂量法以及当前接受的AAPM TG-43协议测量,所测得的每个空气比释动能强度的吸收剂量优于0.8%(1 sigma)。结论:这项工作为192Ir近距离放射治疗中达到水标准的基本吸收剂量铺平了道路。

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