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首页> 外文期刊>Medical Physics >Absolute dosimetry of a 1.5 T MR‐guided accelerator‐based high‐energy photon beam in water and solid phantoms using Aerrow
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Absolute dosimetry of a 1.5 T MR‐guided accelerator‐based high‐energy photon beam in water and solid phantoms using Aerrow

机译:基于1.5T的MR引导的基于加速器的高能量光子束的绝对剂量测定使用Aerrow

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摘要

Purpose In this work, the fabrication, operation, and evaluation of a probe‐format graphite calorimeter — herein referred to as Aerrow — as an absolute clinical dosimeter of high‐energy photon beams while in the presence of a B ?=?1.5?T magnetic field is described. Comparable to a cylindrical ionization chamber (IC) in terms of utility and usability, Aerrow has been developed for the purpose of accurately measuring absorbed dose to water in the clinic with a minimum disruption to the existing clinical workflow. To our knowledge, this is the first reported application of graphite calorimetry to magnetic resonance imaging (MRI)‐guided radiotherapy. Methods Based on a previously numerically optimized and experimentally validated design, an Aerrow prototype capable of isothermal operation was constructed in‐house. Graphite‐to‐water dose conversions as well as magnetic field perturbation factors were calculated using Monte Carlo, while heat transfer and mass impurity corrections and uncertainties were assessed analytically. Reference dose measurements were performed in the absence and presence of a B ?=?1.5?T magnetic field using Aerrow in the 7?MV FFF photon beam of an Elekta MRI‐linac and were directly compared to the results obtained using two calibrated reference‐class IC types. The feasibility of performing solid phantom‐based dosimetry with Aerrow and the possible influence of clearance gaps is also investigated by performing reference‐type dosimetry measurements for multiple rotational positions of the detector and comparing the results to those obtained in water. Results In the absence of the B ‐field, as well as in the parallel orientation while in the presence of the B ‐ field, the absorbed dose to water measured using Aerrow was found to agree within combined uncertainties with those derived from TG‐51 using calibrated reference‐class ICs. Statistically significant differences on the order of (2–4)%, however, were observed when measuring absorbed dose to water using the ICs in the perpendicular orientation in the presence of the B ‐field. Aerrow had a peak‐to‐peak response of about 0.5% when rotated within the solid phantom regardless of whether the B ‐field was present or not. Conclusions This work describes the successful use of Aerrow as a straightforward means of measuring absolute dose to water for large high‐energy photon fields in the presence of a 1.5?T B ‐field to a greater accuracy than currently achievable with ICs. The detector‐phantom air gap does not appear to significantly influence the response of Aerrow in absolute terms, nor does it contribute to its rotational dependence. This work suggests that the accurate use of solid phantoms for absolute point dose measurement is possible with Aerrow.
机译:在这项工作中的目的,探针格式石墨热计的制造,操作和评估 - 本文称为Aerrow - 作为高能光子束的绝对临床剂量计,而在存在B的情况下,在B?1.5?T描述磁场。在实用性和可用性方面可与圆柱电离室(IC)相当,已经开发了Aerrow,目的是为了准确地测量临床中的吸收剂量,最小地破坏现有的临床工作流程。据我们所知,这是第一次报道将石墨量热法应用于磁共振成像(MRI) - 指导放射疗法。方法基于先前数控优化和实验验证的设计,在内部构建了一种能够进行等温手术的Aerrow原型。使用蒙特卡罗计算石墨到水剂量转化以及磁场扰动因子,而分析评估热传递和质量杂质校正和不确定性。使用Aerrow在Elekta MRI-LINAC的7?MV FFF光子光束中的不存在和存在的情况下进行参考剂量测量,在不存在和存在B?=1.5≤T磁场中进行ELEKTA MRI-LINAC的光子束,并与使用两个校准的参考的结果直接相比IC类类型。通过对检测器的多个旋转位置进行参考型剂量测量并将结果与​​水中获得的结果进行比较,还研究了与Aerrow进行了稳定幻像的剂量测定的可行性以及间隙间隙的可能影响。导致B-Fields在存在B场的情况下不存在B-域,发现使用Aerrow测量的吸收剂量以在使用TG-51的那些的情况下同意达成的不确定性校准的参考级IC。然而,当在B-菲尔德存在下使用垂直取向的IC测量吸收的剂量时,观察到(2-4)%的统计学差异。无论是否存在B -FIEND,在固体虚线内旋转时,AERROK的峰值达到峰值响应约为0.5%。结论这项工作描述了Aerrow的成功使用作为在1.5Ω·T B -Field的存在下测量绝对剂量的绝对剂量,以便更高的精度,比目前可实现IC。探测器 - 幻影气隙似乎没有显着影响AerRow以绝对术语的响应,也没有导致其旋转依赖性。这项工作表明,Aerrow可以准确地使用固体幽灵来绝对点剂量测量。

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