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血管段阻抗响应随电极配置变化的有限元模拟。

Finite Element Simulation of the Impedance Response of a Vascular Segment as a Function of Changes in Electrode Configuration.

作者信息

Amini M, Kalvøy H, Martinsen Ø G

机构信息

Department of Physics, University of Oslo, Oslo, Norway.

Department of Clinical and Biomedical Engineering, Rikshospitalet, Oslo University Hospital, Oslo, Norway.

出版信息

J Electr Bioimpedance. 2020 Dec 31;11(1):112-131. doi: 10.2478/joeb-2020-0017. eCollection 2020 Jan.

Abstract

Monitoring a biological tissue as a three dimensional (3D) model is of high importance. Both the measurement technique and the measuring electrode play substantial roles in providing accurate 3D measurements. Bioimpedance spectroscopy has proven to be a noninvasive method providing the possibility of monitoring a 3D construct in a real time manner. On the other hand, advances in electrode fabrication has made it possible to use flexible electrodes with different configurations, which makes 3D measurements possible. However, designing an experimental measurement set-up for monitoring a 3D construct can be costly and time consuming and would require many tissue models. Finite element modeling methods provide a simple alternative for studying the performance of the electrode and the measurement set-up before starting with the experimental measurements. Therefore, in this study we employed the COMSOL Multiphysics finite element modeling method for simulating the effects of changing the electrode configuration on the impedance spectroscopy measurements of a venous segment. For this purpose, the simulations were performed for models with different electrode configurations. The simulation results provided us with the possibility of finding the optimal electrode configuration including the geometry, number and dimensions of the electrodes, which can be later employed in the experimental measurement set-up.

摘要

将生物组织作为三维(3D)模型进行监测至关重要。测量技术和测量电极在提供准确的3D测量方面都起着重要作用。生物阻抗光谱已被证明是一种非侵入性方法,能够实时监测3D结构。另一方面,电极制造技术的进步使得使用具有不同配置的柔性电极成为可能,这使得3D测量成为现实。然而,设计用于监测3D结构的实验测量装置可能成本高昂且耗时,并且需要许多组织模型。有限元建模方法为在开始实验测量之前研究电极和测量装置的性能提供了一种简单的替代方法。因此,在本研究中,我们采用COMSOL Multiphysics有限元建模方法来模拟改变电极配置对静脉段阻抗光谱测量的影响。为此,对具有不同电极配置的模型进行了模拟。模拟结果为我们提供了找到最佳电极配置的可能性,包括电极的几何形状、数量和尺寸,这些可随后用于实验测量装置中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8ec/7851985/b983729cc753/joeb-11-112-g001.jpg

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