首页> 外文期刊>Medical Physics >3D printing for rapid prototyping of low‐Z/density ionization chamber arrays
【24h】

3D printing for rapid prototyping of low‐Z/density ionization chamber arrays

机译:用于低Z /密度电离室阵列的快速原型设计的3D打印

获取原文
获取原文并翻译 | 示例
       

摘要

Purpose To explore 3D printing for rapid development of prototype thin slab low‐Z/density ionization chamber arrays viable for custom needs in radiotherapy dosimetry and quality assurance (QA). Materials and methods We designed and fabricated parallel plate ionization chambers and ionization chamber arrays using an off‐the‐shelf 3D printing equipment. Conductive components of the detectors were made of conductive polylactic acid (cPLA) and insulating components were made of acrylonitrile butadiene styrene (ABS). We characterized the detector responses using a Varian TrueBeam linac at 95?cm SSD in slab solid water phantom at 5?cm depth. We measured the current‐voltage (IV) curves, the response to different energy beam lines (2.5 MV, 6 MV, 6 MV FFF) for various dose rates and compared them to responses of a commercial Exradin A12 ionization chamber. We measured off‐axis ratio (OAR) for several small field static multi‐leaf collimators field sizes (0.5–3?cm) and compared them to OAR data obtained for commissioning of stereotactic radiotherapy. Results We identified the printing capability and the limitations of a low‐cost off‐the‐shelf 3D printer for rapid prototyping of detector arrays. The design of the array with sub‐millimeter size features conformed to the 3D printing capabilities. IV‐curve for the array showed a strong polarity effect (8%) due to the design. Results for the parallel plate and the array compared well with A12 chamber: monitor unit (MU) dependence for the array was within a few % and the response to different energy beam lines was within 1%. Off‐axis dose profiles measured with the array were comparable to dose profiles obtained in water tank and stereotactic diode after accounting for the size of the chambers. Dose error was within 2% at the center of the profile and slightly larger at the penumbra. Conclusions Rapid prototyping of ion chambers by means of low‐cost 3D printing is feasible with certain limitations in the design and spatial accuracy of the printed details.
机译:目的探索3D打印用于快速开发原型薄板低Z /密度电离室阵列,可用于放射治疗剂量测定和质量保证(QA)的定制需求。我们使用搁板的3D印刷设备设计和制造平行板电离室和电离室阵列的材料和方法。检测器的导电部件由导电聚乳酸(CPLA)制成,并由丙烯腈丁二烯苯乙烯(ABS)制成绝缘组分。我们在5Ωmm深度的3℃下使用95Ωcmsd,在95°CM SSD处使用Varian Truebeam LinaC的探测器响应。我们测量了电流 - 电压(IV)曲线,对不同的能量束线(2.5mV,6mV,6mV FFF)进行各种剂量速率,并将其与商业exradin A12电离室的反应进行比较。我们测量了几种小型场静态多叶准直器(0.5-3Ωcm)的轴上比率(OAR),并将其与用于调试立体定向放射治疗的OAR数据进行比较。结果我们确定了用于探测器阵列的快速原型设计的低成本现成3D打印机的打印能力和限制。具有子毫米尺寸特征的阵列的设计符合3D打印能力。阵列的IV曲线由于设计而显示出强烈的极性效果(8%)。平行板和阵列的结果与A12腔室相比:监测单元(MU)对阵列的依赖性在几倍之内,对不同能量束线的响应在1%之内。用阵列测量的轴轴剂量曲线与在储存舱的水箱和立体定向二极管中获得的剂量曲线相当。剂量误差在轮廓中心的2%内,Penumbra略大。结论通过低成本3D打印通过低成本3D打印快速原型设计是印刷细节的设计和空间精度的某些限制。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号