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Thermal-electric finite element analysis and experimental validation of bipolar electrosurgical cautery

机译:双极电灼的热电有限元分析及实验验证

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摘要

Cautery is a process to coagulate tissues and seal blood vessels using heat. In this study, finite element modeling (FEM) was performed to analyze temperature distribution in biological tissue subject to a bipolar electrosurgical technique. FEM can provide detailed insight into the tissue heat transfer to reduce the collateral thermal damage and improve the safety of cautery surgical procedures. A coupled thermal-electric FEM module was applied with temperature-dependent electrical and thermal properties for the tissue. Tissue temperature was measured using microthermistors at different locations during the electrosurgical experiments and compared to FEM results with good agreement. The temperature- and compression-dependent electrical conductivity has a significant effect on temperature profiles. In comparison, the temperature-dependent thermal conductivity does not impact heat transfer as much as the temperature-dependent electrical conductivity. Detailed results of temperature distribution were obtained from the model. The. FEM results show that the temperature distribution. can be changed with different electrode geometries. A flat electrode was modeled that focuses the current density at the midline of the instrument profile resulting in higher peak temperature than that of the grooved electrode (105 versus 96 degrees C).
机译:谨慎是利用热量使组织凝结并密封血管的过程。在这项研究中,进行了有限元建模(FEM)以分析受双极电外科技术作用的生物组织中的温度分布。 FEM可以提供有关组织传热的详细信息,以减少附带的热损伤并提高电灼手术程序的安全性。将耦合的热电FEM模块应用于组织,该模块具有随温度变化的电学和热学性质。在电外科实验期间,使用微热敏电阻在不同位置测量组织温度,并与FEM结果进行比较,结果吻合良好。与温度和压缩有关的电导率对温度分布有显着影响。相比之下,与温度相关的电导率与温度相关的导热率对传热的影响不大。从模型中可以获得温度分布的详细结果。的。有限元结果表明温度分布。可以根据不同的电极几何形状进行更改。对扁平电极进行了建模,该电流将电流密度集中在仪器轮廓的中线,从而导致峰值温度高于带槽电极的峰值温度(105对96摄氏度)。

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