金属支气管假体附近的微波热消融:数值模型与实验

L. Capineri, M. Dimitri, G. B. Gentili
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引用次数: 1

摘要

微波消融过程现在广泛用于微创干预肝、肾、肺和其他器官使用腹腔镜方法。有广泛的科学文献关注这些过程的结果和临床期望,在体外和体内组织的数值模拟或试验的帮助下详细描述了方法的各个方面。一个尚未探索的方面是微波天线和附近金属植入物之间的电磁(EM)相互作用,这可能会干扰设备的辐射机制。一个例子是围绕或侵入金属支气管假体的肺肿瘤组织的经支气管热消融。本文旨在填补这一空白,提出:•应用程序-假肢相互作用的电磁分析;•瞬态热模拟;•数值结果与离体模型实验结果的比较。仿真首先分析了微波(MW)施药器与直径12mm的金属网格管状支气管支架之间的电磁相互作用。结果表明,当放置器靠近支架甚至在支架内部时,其操作不会受到很大的干扰;实际上,在任何情况下,涂敷器的反射系数都保持在−10 dB以下。热瞬态分析表明,通过施加50w的输入MW功率60秒(3 kJ的能量)获得的加热曲线符合临床需要,即在不损害周围健康组织的情况下获得非常局部的热消融。利用新鲜离体猪腰制成的模型进行的实验证实了EM和热模拟的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microwave Thermal Ablation Near Metallic Bronchial Prostheses: Numerical Models and Experiments
The microwave ablation processes are now extensively used for minimally-invasive interventions on the liver, kidney, lung and other organs using a laparoscopic approach. There is a wide scientific literature focused on the results and clinical expectations of these processes, describing in detail all aspects of the methodology with the aid of numerical simulations or trials on ex-vivo and in-vivo tissues. One aspect not yet explored concerns the electromagnetic (EM) interaction between a microwave antenna and nearby metallic implants that could interfere with the device's radiation mechanism. An example is the transbronchial thermal ablation of the lung tumor tissue that surrounds or invades a metallic bronchial prosthesis. The paper aims to fill this gap by presenting: •the electromagnetic analysis of the applicator-prosthesis interaction; •the transient thermal simulation; •the comparison between the numerical results and those obtained from experiments on an ex-vivo phantom. Simulations firstly analyse the EM interaction of a microwave (MW) applicator with a 12 mm diameter tubular bronchial stent made of a metallic grid. The results show that when the applicator is located in close proximity of the stent or even internally to it, its operation is not substantially perturbed; in fact the reflection coefficient of the applicator is kept below −10 dB in any case. The thermal transient analysis shows that the heating profiles obtained by applying 50 W of input MW power for 60 seconds (3 kJ of energy) are compatible with the clinical needs of obtaining very localized thermal ablations without damaging the surrounding healthy tissues. The experiments performed using a phantom made of fresh ex vivo porcine loin confirm the EM and thermal simulation results.
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