Centre for Medical Radiation Physics, University of Wollongong Australia, Wollongong, NSW, 2522, Australia.
Department of Physical Sciences and Mathematics, College of Arts and Sciences, University of the Philippines Manila, 1000, Metro Manila, Philippines.
Biomed Phys Eng Express. 2024 Aug 29;10(5). doi: 10.1088/2057-1976/ad6f13.
. This study aims to design and fabricate a 3D printed heterogeneous paediatric head phantom and to customize a thorax phantom for radiotherapy dosimetry.. This study designed, fabricated, and tested 3D printed radiotherapy phantoms that can simulate soft tissue, lung, brain, and bone. Various polymers were considered in designing the phantoms. Polylactic acid+, nylon, and plaster were used in simulating different tissue equivalence. Dimensional accuracy, and CT number were investigated. The phantoms were subjected to a complete radiotherapy clinical workflow. Several treatment plans were delivered in both the head and the thorax phantom from a simple single 6 MV beam, parallel opposed beams, and five-field intensity modulated radiotherapy (IMRT) beams. Dose measurements using an ionization chamber and radiochromic films were compared with the calculated doses of the Varian Eclipse treatment planning system (TPS).. The fabricated heterogeneous phantoms represent paediatric human head and adult thorax based on its radiation attenuation and anatomy. The measured CT number ranges are within -786.23 ± 10.55, 0.98 ± 3.86, 129.51 ± 12.83, and 651.14 ± 47.76 HU for lung, water/brain, soft tissue, and bone, respectively. It has a good radiological imaging visual similarity relative to a real human head and thorax depicting soft tissue, lung, bone, and brain. The accumulated dose readings for both conformal radiotherapy and IMRT match with the TPS calculated dose within ±2% and ±4% for head and thorax phantom, respectively. The mean pass rate for all the plans delivered are above 90% for gamma analysis criterion of 3%/3 mm.. The fabricated heterogeneous paediatric head and thorax phantoms are useful in Linac end-to-end radiotherapy quality assurance based on its CT image and measured radiation dose. The manufacturing and dosimetry workflow of this study can be utilized by other institutions for dosimetry and trainings.
. 本研究旨在设计和制造 3D 打印异质儿科头部体模,并为放射治疗剂量学定制一个胸部体模。. 本研究设计、制造和测试了可模拟软组织、肺、脑和骨的 3D 打印放射治疗体模。在设计体模时考虑了各种聚合物。聚乳酸+、尼龙和石膏用于模拟不同的组织等效性。研究了尺寸精度和 CT 数。体模经过完整的放射治疗临床工作流程。在头部和胸部体模中,从简单的单一 6 MV 射束、平行对射束和五野强度调制放射治疗(IMRT)射束中,分别提供了几个治疗计划。使用电离室和光致变色胶片进行剂量测量,并与瓦里安 Eclipse 治疗计划系统(TPS)的计算剂量进行比较。. 所制造的异质体模基于其辐射衰减和解剖结构代表儿科人体头部和成人胸部。测量的 CT 数范围分别为-786.23±10.55、0.98±3.86、129.51±12.83 和 651.14±47.76 HU,用于肺、水/脑、软组织和骨。与真实人体头部和胸部的软组织、肺、骨和脑的影像学视觉相似性良好。两种治疗方式的累积剂量读数与 TPS 计算剂量均吻合,头部和胸部体模的吻合度分别在±2%和±4%以内。根据 3%/3mm 的伽马分析标准,所有计划的通过率均在 90%以上。. 制造的异质儿科头部和胸部体模在基于其 CT 图像和测量辐射剂量的直线加速器端到端放射治疗质量保证方面是有用的。本研究的制造和剂量学工作流程可以为其他机构的剂量学和培训提供参考。