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Using a Conformal Water Bolus to Adjust Heating Patterns of Microwave Waveguide Applicators

机译:用共形水丸调节微波波导管的加热方式

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摘要

Background: Hyperthermia, i.e., raising tissue temperature to 40-45°C for 60 min, has been demonstrated to increase the effectiveness of radiation and chemotherapy for cancer. Although multi-element conformal heat applicators are under development to provide more adjustable heating of contoured anatomy, to date the most often used applicator to heat superficial disease is the simple microwave waveguide. With only a single power input, the operator must be resourceful to adjust heat treatment to accommodate variable size and shape tumors spreading across contoured anatomy. Methods: We used multiphysics simulation software that couples electromagnetic, thermal and fluid dynamics physics to simulate heating patterns in superficial tumors from commercially available microwave waveguide applicators. Temperature distributions were calculated inside homogenous muscle and layered skin-fat-muscle-tumor-bone tissue loads for a typical range of applicator coupling configurations and size of waterbolus. Variable thickness waterbolus was simulated as necessary to accommodate contoured anatomy. Physical models of several treatment configurations were constructed for comparison of simulation results with experimental specific absorption rate (SAR) measurements in homogenous muscle phantom. Results: Accuracy of the simulation model was confirmed with experimental SAR measurements of three unique applicator setups. Simulations demonstrated the ability to generate a wide range of power deposition patterns with commercially available waveguide antennas by controllably varying size and thickness of the waterbolus layer. Conclusion: Heating characteristics of 915 MHz waveguide antennas can be varied over a wide range by controlled adjustment of microwave power, coupling configuration, and waterbolus lateral size and thickness. The uniformity of thermal dose delivered to superficial tumors can be improved by cyclic switching of waterbolus thickness during treatment to proactively shift heat peaks and nulls around under the aperture, thereby reducing patient pain while increasing minimum thermal dose by end of treatment. © (2017) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE).
机译:背景:热疗,即将组织温度升高至40-45°C 60分钟,已被证明可以提高放射线和化学疗法对癌症的疗效。尽管正在开发多元素保形敷贴器以提供更多可调节的轮廓解剖学加热,但迄今为止,用于加热浅表疾病的最常用敷贴器是简单的微波波导。仅使用单个电源输入,操作员必须有足够的资源来调整热处理,以适应散布在整个轮廓解剖结构上的各种尺寸和形状的肿瘤。方法:我们使用了多物理场仿真软件,该软件结合了电磁,热学和流体动力学物理学,可以通过商用微波波导施加器来模拟浅表肿瘤的加热方式。对于均匀范围的涂抹器耦合配置和水团大小,计算出均质肌肉和皮肤脂肪,肌肉,肿瘤,骨骼的分层组织内的温度分布。根据需要模拟可变厚度的水团,以适应轮廓化的解剖结构。构建了几种处理配置的物理模型,用于将模拟结果与均质肌肉体模中的实验比吸收率(SAR)测量结果进行比较。结果:仿真模型的准确性已通过三种独特涂药器设置的实验SAR测量得到证实。仿真证明了通过可控地改变水团层的大小和厚度,可以利用市售波导天线生成各种功率沉积图案的能力。结论:915 MHz波导天线的加热特性可以通过控制微波功率,耦合配置以及水包横向尺寸和厚度来在很宽的范围内变化。可以通过在治疗过程中水丸厚度的循环切换来主动转移热峰值和孔周围的零点,从而改善传递到浅表肿瘤的热剂量的均匀性,从而减轻患者的痛苦,同时在治疗结束时增加最小热剂量。 ©(2017)版权所有光电仪器工程师协会(SPIE)。

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