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首页> 外文期刊>Journal of applied clinical medical physics / >Illustrated instructions for mechanical quality assurance of a medical linear accelerator
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Illustrated instructions for mechanical quality assurance of a medical linear accelerator

机译:医用线性加速器机械质量保证的图解说明

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Purpose The purpose of this study was to develop and test a set of illustrated instructions for effective training for mechanical quality assurance (QA) of medical linear accelerators (linac). Methods Illustrated instructions were created for mechanical QA and underwent several steps of review, testing, and refinement. Eleven testers with no recent QA experience were then recruited from our radiotherapy department (one student, two computational scientists, and eight dosimetrists). This group was selected because they have experience of radiation therapy but no preconceived ideas about how to do QA. The following parameters were progressively decalibrated on a Varian C‐series linac: Group A?=?gantry angle, ceiling laser position, X1 jaw position, couch longitudinal position, physical graticule position (five testers); Group B?=?Group A?+?wall laser position, couch lateral and vertical position, collimator angle (three testers); Group C?=?Group B?+?couch angle, wall laser angle, and optical distance indicator (three testers). Testers were taught how to use the linac and then used the instructions to try to identify these errors. An experienced physicist observed each session, giving support on machine operation as necessary. Results Testers were able to follow the instructions. They determined gantry, collimator, and couch angle errors within 0.4°, 0.3°, and 0.9° of the actual changed values, respectively. Laser positions were determined within 1?mm and jaw positions within 2?mm. Couch position errors were determined within 2?mm and 3?mm for lateral/longitudinal and vertical errors, respectively. Accessory‐positioning errors were determined within 1?mm. Optical distance indicator errors were determined within 2?mm when comparing with distance sticks and 6?mm when using blocks, indicating that distance sticks should be the preferred approach for inexperienced staff. Conclusions Inexperienced users were able to follow these instructions and catch errors within the criteria suggested by AAPM TG‐142 for linacs used for intensity‐modulated radiation therapy. These instructions are, therefore, suitable for QA training.
机译:目的这项研究的目的是开发和测试一组插图说明,以有效培训医疗线性加速器(直线加速器)的机械质量保证(QA)。方法创建了说明性的机械质量保证说明,并进行了复查,测试和完善的几个步骤。然后从我们的放射治疗部门招募了11名没有近期质量检查经验的测试人员(一名学生,两名计算科学家和八名放射剂量师)。选择该小组是因为他们具有放射治疗的经验,但是对如何进行质量检查没有先入为主的想法。以下参数在Varian C系列直线加速器上逐步失标:A组=龙门角度,天花板激光位置,X1钳口位置,卧榻纵向位置,物理刻度位置(五个测试仪); B组== A组+壁激光位置,床的横向和垂直位置,准直仪角度(三个测试仪); C组= B组β+沙发角,墙壁激光角和光学距离指示器(三个测试仪)。测试人员被告知如何使用直线加速器,然后使用说明尝试识别这些错误。一位经验丰富的物理学家会观察每个环节,并在必要时为机器操作提供支持。结果测试人员能够按照说明进行操作。他们确定了机架,准直仪和床的角度误差分别在实际变化值的0.4°,0.3°和0.9°之内。确定激光位置在1?mm以内,钳口位置在2?mm以内。沙发的位置误差分别在横向和纵向和纵向误差的2?mm和3?mm之内确定。附件定位误差确定在1?mm以内。与测距杆相比,测距指示器的光学误差在2?mm以内,而使用挡块时测得的误差在6?mm以内,这表明测距杆应是经验不足的人员的首选方法。结论经验不足的用户能够遵循这些说明,并在AAPM TG‐142建议的强度调节放射治疗直线加速器的标准范围内发现错误。因此,这些说明适用于质量检查培训。

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