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Quality assurance for a six degrees‐of‐freedom table using a 3D printed phantom

机译:使用3D打印幻像的六自由度桌子的质量保证

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Abstract PurposeTo establish a streamlined end-to-end test of a 6 degrees-of-freedom (6DoF) robotic table using a 3D printed phantom for periodic quality assurance. MethodsA 3D printed phantom was fabricated with translational and rotational offsets and an imbedded central ball-bearing (BB). The phantom underwent each step of the radiation therapy process: CT simulation in a straight orientation, plan generation using the treatment planning software, setup to offset marks at the linac, registration and corrected 6DoF table adjustments via hidden target test, delivery of a Winston-Lutz test to the BB, and verification of table positioning via field and laser lights. The registration values, maximum total displacement of the combined Winston-Lutz fields, and a pass or fail criterion of the laser and field lights were recorded. The quality assurance process for each of the three linacs were performed for the first 30 days. ResultsWithin a 95% confidence interval, the overall uncertainty values for both translation and rotation were below 1.0 mm and 0.5° for each linac respectively. When combining the registration values and other uncertainties for all three linacs, the average deviations were within 2.0 mm and 1.0° of the designed translation and rotation offsets of the 3D print respectively. For all three linacs, the maximum total deviation for the Winston-Lutz test did not exceed 1.0 mm. Laser and light field verification was within tolerance every day for all three linacs given the latest guidance documentation for table repositioning. ConclusionThe 3D printer is capable of accurately fabricating a quality assurance phantom for 6DoF positioning verification. The end-to-end workflow allows for a more efficient test of the 6DoF mechanics while including other important tests needed for routine quality assurance.
机译:摘要目的使用6D自由度(6DoF)机器人工作台建立简化的端到端测试,该工作台使用3D打印的幻像进行定期质量保证。方法:制作具有平移和旋转偏移以及嵌入式中央滚珠(BB)的3D打印体模。幻影接受了放射治疗过程的每个步骤:以直线方向进行CT模拟,使用治疗计划软件生成计划,在直线加速器上偏移标记设置,通过隐藏目标测试进行配准和校正的6DoF表调整,交付Winston- Lutz对BB进行测试,并通过野外和激光验证工作台的位置。记录配准值,组合的Winston-Lutz场的最大总位移以及激光和场光的通过或失败标准。在开始的30天内,对三个直线加速器中的每一个进行了质量保证过程。结果在95%的置信区间内,每个直线加速器的平移和旋转总不确定度值分别低于1.0 mm和0.5°。当将所有三个直线加速器的套准值和其他不确定性结合在一起时,平均偏差分别在3D打印的设计平移和旋转偏移量的2.0 mm和1.0°之内。对于所有三个直线加速器,Winston-Lutz测试的最大总偏差不超过1.0毫米。鉴于最新的工作台重新定位指导文件,所有这三个直线加速器的激光和光场验证每天都在公差范围内。结论3D打印机能够准确地制造用于6DoF定位验证的质量保证模型。端到端的工作流程可以对6DoF机械进行更有效的测试,同时还包括常规质量保证所需的其他重要测试。

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