Ling C C, Schell M C, Rustgi S N
Med Phys. 1982 Jan-Feb;9(1):20-6. doi: 10.1118/1.595066.
For megavoltage x-ray beams, the percent depth dose increases considerably with field size in the buildup region, with a concomitant shift in the position of the maximum dose (dmax) to a shallower depth. Various authors disagree as to the cause of this effect. The radiation components contributing to absorbed dose in the buildup region of 10-MV photon field were analyzed as a function of field size by placing an electromagnet next to the Clinac 18 treatment head. The percent depth dose curves in the buildup region, obtained with a parallel plate chamber downstream from the magnetic field at 85 cm SSD, exhibited no dmax shift and a much reduced dependence on field size, in clear distinction with similar data taken with zero magnetic field. Confirmatory data were obtained at 100 and 120 cm SSD. These results clearly show that scattered electrons are the primary cause for the dmax shift and the dose increase in the buildup region with increasing field size.
对于兆伏级X射线束,在建成区百分深度剂量随射野大小显著增加,同时最大剂量(dmax)位置向较浅深度移动。关于这种效应的原因,不同作者存在分歧。通过在Clinac 18治疗头旁放置一个电磁铁,分析了10兆伏光子射野建成区中对吸收剂量有贡献的辐射成分随射野大小的变化。在85厘米源皮距(SSD)下,使用位于磁场下游的平行板电离室获得的建成区百分深度剂量曲线,未显示dmax移动,且对射野大小的依赖性大大降低,这与在零磁场下获取的类似数据明显不同。在100厘米和120厘米SSD处获得了验证数据。这些结果清楚地表明,散射电子是dmax移动以及建成区剂量随射野大小增加的主要原因。