Applied Electromagnetic Research Group, Department of Electrical Engineering, State University of Santa Catarina - UDESC, Paulo Malschitzki, 200 - Campus Universitário Prof. Avelino Marcante, Zona Industrial Norte, Joinville, SC, CEP - 89219-710, Brazil.
Department of Pharmacy, University of Joinville Region - UNIVILLE, Paulo Malschitzki, 10 - Zona Industrial Norte, Joinville, SC, CEP 89201-972, Brazil.
Ann Biomed Eng. 2021 Sep;49(9):2503-2512. doi: 10.1007/s10439-021-02816-w. Epub 2021 Jun 24.
Biological electroporation is a process of opening pores in the cell membrane when exposed to intense electric fields. This work provides results for validation of a dynamic model of electroporation on biological tissues. Computational simulations were carried out and results for the electrical current through the tissue and increase of the tissue temperature were compared to experimental results. Two calculation methods were used: Equivalent Circuit Method and Finite Element Method. With Equivalent Circuit Method the dielectric dispersion present in biological tissues was included. Liver, kidney and heart of rabbit were used in the experiments. Voltage pulse protocols and voltage ramps were applied using stainless steel needles electrodes. There is good agreement between the simulated and experimental results with mean errors below 15%, with the simulated results within the experimental standard deviation. Only for the protocol with fundamental frequency of 50 kHz, the simulation performed by the Finite Element Method using a commercial software did not correctly represent the current, with errors reaching 50%. The justification for the error found is due to the dielectric dispersion that was not included in this simulator.
生物电穿孔是在强电场作用下细胞膜穿孔的过程。本工作为生物组织电穿孔的动力学模型验证提供了结果。进行了计算模拟,并将组织内的电流和组织温度的升高与实验结果进行了比较。使用了两种计算方法:等效电路法和有限元法。等效电路法中包含了生物组织中的介电色散。实验中使用了兔肝、肾和心脏。使用不锈钢针电极施加电压脉冲和电压斜坡。模拟结果与实验结果吻合较好,平均误差低于 15%,且模拟结果在实验标准差范围内。仅在使用 50 kHz 基频的方案中,使用商业软件的有限元方法模拟未能正确表示电流,误差达到 50%。发现的误差的原因是该模拟器中未包含介电色散。