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A feasibility study of the Dynamic Phantom scanner for quality assurance of beam profiles at various gantry angles

机译:动态幻影扫描仪在不同龙门角度下保证光束轮廓质量的可行性研究

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摘要

The effect of gantry rotation on beam profiles of photon and electron beams is an important issue in quality assurance for radiotherapy. To address variations in the profiles of photon and electron beams at different gantry angles, a Dynamic Phantom scanner composed of a 20 × 12 × 6 cm3 scanning Lucite block was designed as a cross‐beam‐profile scanner. To our knowledge, differences between scanned profiles acquired at different gantry angles with a small size Lucite block and those acquired a full‐size (60 × 60 × 50 cm3) water phantom have not been previously investigated. We therefore performed a feasibility study for a first prototype Dynamic Phantom scanner without a gantry attachment mount. Radiation beams from a Varian LINAC 21EX and 2100C were used. Photon beams (6 MV and 18 MV) were shaped by either collimator jaws or a Varian 120 Multileaf (MLC) collimator, and electron beams (6 MeV, 12 MeV, and 20 MeV) were shaped by a treatment cone. To investigate the effect on profiles by using a Lucite block, a quantitative comparison of scanned profiles with the Dynamic Phantom and a full‐size water phantom was first performed at a 0° gantry angle for both photon and electron beams. For photon beam profiles defined by jaws at 1.0 cm and 5.0 cm depths of Lucite (i.e., at 1.1 cm and 5.7 cm depth of water), a good agreement (less than 1% variation) inside the field edge was observed between profiles scanned with the Dynamic Phantom and with a water phantom. The use of Lucite in the Dynamic Phantom resulted in reduced penumbra width (about 0.5 mm out of 5 mm to 8 mm) and reduced (1% to 2%) scatter dose beyond the field edges for both 6 MV and 18 MV beams, compared with the water phantom scanner. For profiles of the MLC‐shaped 6 MV photon beam, a similar agreement was observed. For profiles of electron beams scanned at 2.9 cm depth of Lucite (i.e., at 3.3 cm depth of water), larger disagreements in profiles (3% to 4%) and penumbra width (3 mm to 4 mm out of 12 mm) were observed. Additional profiles with the gantry at 90° and 270° were performed for both MLC‐ and jaw‐shaped photon beams and electron beams to evaluate the effect of gantry rotation. General good agreement is seen (less than 1 % variation) at all field sizes for collimator‐shaped 6 MV and 18 MV photon beams. Similar variations observed for MLC‐shaped photon beams indicate that the uncertainty in MLC position is similar to that for the collimator jaws. We conclude that the Dynamic Phantom scanner is a useful device for the routine quality assurance on beam profiles of photon beams and for constancy check on electron beams at various gantry angles. Caution should be taken when using this device to acquire basic electron dosimetry data.PACS number: 87.53.‐j
机译:龙门架旋转对光子和电子束的射束轮廓的影响是放射治疗质量保证中的重要问题。为了解决不同龙门角度下光子束和电子束轮廓的变化,设计了由20×12×6cm 3 扫描Lucite块组成的动态幻影扫描仪作为交叉束轮廓扫描仪。据我们所知,先前没有研究过在不同龙门角度下使用小尺寸Lucite块获得的扫描轮廓与获得全尺寸(60×60×50cm 3 )水模的轮廓之间的差异。因此,我们对第一台没有机架附件安装架的动态Phantom扫描仪原型进行了可行性研究。使用了来自Varian LINAC 21EX和2100C的辐射束。通过准直器钳口或Varian 120 Multileaf(MLC)准直器对光子束(6 MV和18 MV)进行整形,并通过处理锥对电子束(6 MeV,12 MeV和20 MeV)进行整形。为了使用Lucite块研究轮廓对图像的影响,首先在0°龙门角对光子束和电子束进行了动态幻影和全尺寸水体模扫描轮廓的定量比较。对于由在Lucite的1.0厘米和5.0厘米深度(即在水的1.1厘米和5.7厘米深度)的钳口定义的光子束轮廓,在用扫描仪扫描的轮廓之间观察到良好的一致性(小于1%的变化)动态幻影和水幻影。与6 MV和18 MV光束相比,在动态幻影中使用Lucite可以减少半影宽度(5毫米至8毫米中约0.5毫米),并且减少了超出场边缘的散射剂量(1%至2%)。与水幻影扫描仪。对于MLC形的6 MV光子束的轮廓,观察到类似的协议。对于在2.9 cm的萤石深度(即在3.3 cm的水深)扫描的电子束轮廓,观察到轮廓的较大差异(3%至4%)和半影宽度(12 mm中的3 mm至4 mm) 。对于MLC形和颚形光子束和电子束,在90°和270°的机架上还进行了其他分析,以评估机架旋转的效果。对于准直器形的6 MV和18 MV光子束,在所有视场尺寸上都观察到总体良好的一致性(变化小于1%)。对MLC形光子束观察到的类似变化表明,MLC位置的不确定性与准直器钳口的不确定性相似。我们得出的结论是,动态幻影扫描仪是一种有用的设备,可确保对光子束的射束轮廓进行常规质量检查,以及在不同机架角度对电子束进行稳定性检查。使用此设备获取基本电子剂量数据时应格外小心.PACS编号:87.53.-j

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