Saskatoon Cancer Centre, 20 Campus Drive, Saskatoon, Saskatchewan S7N 4H4, Canada.
Med Phys. 2011 Apr;38(4):2192-7. doi: 10.1118/1.3560425.
To design and optimize a minibeam collimator for minibeam radiation therapy studies using a 250 kVp x-ray machine as a simulated synchrotron source.
A Philips RT250 orthovoltage x-ray machine was modeled using the EGSnrc/BEAMnrc Monte Carlo software. The resulting machine model was coupled to a model of a minibeam collimator with a beam aperture of 1 mm. Interaperture spacing and collimator thickness were varied to produce a minibeam with the desired peak-to-valley ratio.
Proper design of a minibeam collimator with Monte Carlo methods requires detailed knowledge of the x-ray source setup. For a cathode-ray tube source, the beam spot size, target angle, and source shielding all determine the final valley-to-peak dose ratio.
A minibeam collimator setup was created, which can deliver a 30 Gy peak dose minibeam radiation therapy treatment at depths less than 1 cm with a valley-to-peak dose ratio on the order of 23%.
设计并优化一种使用 250 kVp X 射线机作为模拟同步加速器源的微束放射治疗研究用微束准直器。
使用 EGSnrc/BEAMnrc 蒙特卡罗软件对飞利浦 RT250 正交千伏 X 射线机进行建模。将所得机器模型与具有 1 毫米孔径的微束准直器模型相耦合。通过改变孔径间的间隔和准直器的厚度,产生具有所需峰谷比的微束。
使用蒙特卡罗方法对微束准直器进行适当的设计需要详细了解 X 射线源的设置。对于阴极射线管源,束斑尺寸、靶角和源屏蔽都决定了最终的峰谷剂量比。
创建了一种微束准直器设置,可以在深度小于 1 厘米的情况下提供 30 Gy 的峰值剂量微束放射治疗,峰谷剂量比约为 23%。