University of Washington.
J Appl Clin Med Phys. 2014 Mar 6;15(2):4682. doi: 10.1120/jacmp.v15i2.4682.
Accurate alignment of linear accelerator table rotational axis with radiation isocenter is critical for noncoplanar radiotherapy applications. The purpose of the present study is to develop a method to align the table rotation axis and the MV isocenter to submillimeter accuracy. We developed a computerized method using electronic portal imaging device (EPID) and measured alignment stability over time. Mechanical and radiation isocenter coincidence was measured by placing a steel ball bearing at radiation isocenter using existing EPID techniques. Then, EPID images were acquired over the range of table rotation. A MATLAB script was developed to calculate the center of rotation, as well as the necessary adjustment to move the table rotational axis to MV isocenter. Adjustment was applied via torque to screws at the base of the linac table. Stability of rotational alignment was measured with 49 measurements over 363 days on four linacs. Initial rotational misalignment from radiation isocenter ranged from 0.91-2.11 mm on the four tested linacs. Linac-A had greatest error (> 2 mm) and was adjusted with the described method. After adjustment, the error was significantly decreased to 0.40 ± 0.12 mm. The adjustment was stable over the course of 15 measurements over 231 days. Linac-B was not adjusted, but tracked from time of commissioning with 27 measurements over 363 days. No discernible shift in couch characteristics was observed (mean error 1.40 ± 0.22 mm). The greater variability for Linac-B may relate to the interchangeable two-piece couch, which allows more lateral movement than the one-piece Linac-A couch. Submillimeter isocenter alignment was achieved by applying a precision correction to the linac table base. Table rotational characteristics were shown to be stable over the course of twelve months. The accuracy and efficiency of this method may make it suitable for acceptance testing, annual quality assurance, or commissioning of highly-conformal noncoplanar radiotherapy programs.
直线加速器治疗床旋转轴与射束等中心精确对准对于非共面放射治疗应用至关重要。本研究旨在开发一种将治疗床旋转轴与 MV 等中心精确对准到亚毫米级的方法。我们使用电子射野影像装置(EPID)开发了一种计算机化方法,并测量了随时间推移的对准稳定性。通过使用现有的 EPID 技术将钢球轴承放置在射束等中心,测量机械和射束等中心的重合度。然后,在治疗床旋转范围内获取 EPID 图像。开发了一个 MATLAB 脚本,以计算旋转中心,以及将治疗床旋转轴移动到 MV 等中心所需的调整。通过施加扭矩来调整加速器治疗床底部的螺丝来进行调整。在四台直线加速器上进行了 363 天、49 次测量,以测量旋转对准的稳定性。从四个测试的直线加速器上的射束等中心来看,初始旋转失准度范围为 0.91-2.11 毫米。直线加速器 A 的误差最大(>2 毫米),并采用所述方法进行调整。调整后,误差显著降低至 0.40 ± 0.12 毫米。在 231 天内进行了 15 次测量,调整是稳定的。直线加速器 B 未进行调整,但自调试以来进行了 27 次测量,共 363 天。未观察到治疗床特征的明显变化(平均误差 1.40 ± 0.22 毫米)。直线加速器 B 的变异性更大可能与可互换的两件式治疗床有关,该治疗床允许比一体式直线加速器 A 治疗床更大的侧向移动。通过对直线加速器底座进行精密校正实现了亚毫米级等中心对准。在 12 个月的时间内,治疗床旋转特性显示稳定。该方法的准确性和效率可能使其适用于验收测试、年度质量保证或高度适形非共面放射治疗计划的调试。