Coupled electrical-thermal model for monopolar and bipolar radiofrequency liver tumor ablation

Frederik Soetaert, G. Crevecoeur, L. Dupré
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引用次数: 1

Abstract

Radiofrequency ablation (RFA) is an alternative cancer treatment that applies radiofrequency electric fields to biological tissues. The subsequent electrical currents induce Joule heating and inflict local thermal damage to the biological tissue. Previous clinical studies demonstrate the possibilities and benefits of applying RFA for the treatment of liver tumors. Currently, most clinical studies focus on monopolar RFA, consisting of a single electrode and a grounding pad, and its therapeutical outcome. This study however focuses on a bipolar configuration where two needle electrodes are inserted at a certain potential difference. In order to assess the temperature elevations in biological tissues, we have developed a computational model. A mathematical model based on Laplace's equation (with appropriate boundary conditions) is used to model the electromagnetic phenomena and is coupled to the bioheat transfer equation. This study compares a monopolar RFA with a bipolar configuration. We investigate the spatio-temporal temperature variations using detailed numerical three-dimensional finite element simulations in biological tissues, corresponding to liver tissue. Results show that the ablated region in between the two needles of the bipolar configuration can be enlarged compared to a monopolar RFA configuration.
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单极和双极射频肝肿瘤消融的电-热耦合模型
射频消融(RFA)是一种将射频电场应用于生物组织的替代癌症治疗方法。随后的电流诱导焦耳加热并对生物组织造成局部热损伤。以往的临床研究证明了应用射频消融术治疗肝脏肿瘤的可能性和益处。目前,大多数临床研究集中在单极射频消融(由单个电极和接地垫组成)及其治疗效果上。然而,这项研究的重点是双极配置,其中两个针电极插入在一定的电位差。为了评估生物组织中的温度升高,我们开发了一个计算模型。采用基于拉普拉斯方程的数学模型(具有适当的边界条件)来模拟电磁现象,并与生物传热方程耦合。本研究比较了单极RFA与双极配置。我们使用详细的三维数值有限元模拟研究了生物组织(如肝组织)的时空温度变化。结果表明,与单极RFA结构相比,双极RFA结构的两针之间的烧蚀区域可以扩大。
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