A feasibility study of applying thermal imaging to assist quality assurance of high-dose rate brachytherapy

Xiaofeng Zhu, Y. Lei, D. Zheng, Sicong Li, V. Verma, Mutian Zhang, Qinghui Zhang, Xiaoli Tang, J. Lian, Sha X. Chang, Haijun Song, Sumin Zhou, C. Enke
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Abstract

Aim: High-dose rate (HDR) brachytherapy poses a special challenge to radiation safety and quality assurance (QA) due to its high radioactivity, and it is thus critical to verify the HDR source location and its radioactive strength. This study explores a new application for thermal imaging, to visualize/locate the HDR source and measure radioactivity using temperature information. A potential application would relate to HDR QA and safety improvement. Methods: Heating effects by an HDR source were studied using finite element analysis (FEA). Thermal cameras were used to visualize an HDR source inside a plastic catheter made of polyvinylidene difluoride (PVDF). Using different source dwell times, relationships between the HDR source strength and heating effects were studied, thus establishing potential daily QA criteria using thermal imaging. Results: For an Ir-192 source with a source radioactivity of 10 Ci, the decay-induced heating power inside the source was about 13.3 mW. After the HDR source was extended into the PVDF applicator and reached thermal equilibrium, thermal imaging visualized the temperature gradient of 10 K/cm along the PVDF catheter surface, which agreed with FEA modeling. For the Ir-192 source strengths ranging from 16.9 to 41.1 kU, thermal imaging could verify source activity with a relative error of 6.3% with a dwell time of 10 s, and a relative error of 2.5% with 100 s. Conclusion: Thermal imaging could be a feasible tool to visualize HDR source dwell positions and verify source integrity. Potentially, patient safety and treatment quality may be improved by integrating thermal measurements into HDR QA procedures.
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应用热成像辅助高剂量率近距离放射治疗质量保证的可行性研究
目的:高剂量率(high -dose rate, HDR)近距离放射治疗因其高放射性,对放射安全和质量保证(QA)提出了特殊的挑战,因此对HDR源位置及其放射强度的验证至关重要。本研究探索了热成像的新应用,利用温度信息可视化/定位HDR源并测量放射性。潜在的应用将涉及HDR质量保证和安全改进。方法:采用有限元分析方法研究HDR源的加热效应。热成像仪用于观察聚偏二氟乙烯(PVDF)制成的塑料导管内的HDR源。使用不同的源停留时间,研究了HDR源强度与热效应之间的关系,从而建立了使用热成像的潜在日常QA标准。结果:对于放射性为10 Ci的Ir-192源,源内的衰变加热功率约为13.3 mW。HDR源伸入PVDF涂抹器内达到热平衡后,热成像显示沿PVDF导管表面的温度梯度为10 K/cm,与有限元模拟结果一致。对于Ir-192源强度范围为16.9 ~ 41.1 kU,当停留时间为10 s时,热成像验证源活度的相对误差为6.3%;当停留时间为100 s时,热成像验证源活度的相对误差为2.5%。结论:热成像可作为HDR源驻留位置可视化和源完整性验证的有效工具。通过将热测量整合到HDR QA程序中,可能会提高患者的安全性和治疗质量。
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