Corns Robert A, Huang Vicky W, Thomas Steven D
BC Cancer Agency - Fraser Valley Centre.
J Appl Clin Med Phys. 2015 Nov 8;16(6):376–385. doi: 10.1120/jacmp.v16i6.5869.
Flattening filter-free radiation beams have higher dose rates that significantly increase the ion recombination rate in an ion chamber's volume and lower the signal read by the chamber-electrometer pair. The ion collection efficiency correction (P(ion)) accounts for the loss of signal and subsequently changes dosimetric quantities when applied. We seek to characterize the changes to the percent depth dose, tissue maximum ratio, relative dose factor, absolute dose calibration, off-axis ratio, and the field width. We measured P(ion) with the two-voltage technique and represented P(ion) as a linear function of the signal strength. This linear fit allows us to correct measurement sets when we have only gathered the high voltage signal and to correct derived quantities. The changes to dosimetric quantities can be up to 1.5%. Charge recombination significantly affects percent depth dose, tissue maximum ratio, and off-axis ratio, but has minimal impact on the relative dose factor, absolute dose calibration, and field width.
无均整器的辐射束具有更高的剂量率,这会显著提高电离室体积内的离子复合率,并降低电离室 - 静电计对读取的信号。离子收集效率校正(P(ion))考虑了信号损失,并在应用时会改变剂量学量。我们试图表征百分深度剂量、组织最大剂量比、相对剂量因子、绝对剂量校准、离轴比和射野宽度的变化。我们使用双电压技术测量了P(ion),并将P(ion)表示为信号强度的线性函数。这种线性拟合使我们能够在仅收集了高压信号时校正测量集,并校正派生量。剂量学量的变化可达1.5%。电荷复合对百分深度剂量、组织最大剂量比和离轴比有显著影响,但对相对剂量因子、绝对剂量校准和射野宽度的影响最小。