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电力线频率的磁场对起搏器的干扰。

Pacemaker interference by magnetic fields at power line frequencies.

作者信息

Dawson Trevor W, Caputa Kris, Stuchly Maria A, Shepard Richard B, Kavet Robert, Sastre Antonio

机构信息

Department of Electrical and Computer Engineering, University of Victoria, BC, Canada.

出版信息

IEEE Trans Biomed Eng. 2002 Mar;49(3):254-62. doi: 10.1109/10.983460.

Abstract

Human exposure to external 50/60-Hz electric and magnetic fields induces electric fields within the body. These induced fields can cause interference with implanted pacemakers. In the case of exposure to magnetic fields, the pacemaker leads are subject to induced electromotive forces, with current return paths being provided by the conducting body tissues. Modern computing resources used in conjunction with millimeter-scale human body conductivity models make numerical modeling a viable technique for examining any such interference. In this paper, an existing well-verified scalar-potential finite-difference frequency-domain code is modified to handle thin conducting wires embedded in the body. The effects of each wire can be included numerically by a simple modification to the existing code. Results are computed for two pacemaker lead insertion paths, terminating at either atrial or ventricular electrodes in the heart. Computations are performed for three orthogonal 60-Hz magnetic field orientations. Comparison with simplified estimates from Faraday's law applied directly to extracorporeal loops representing unipolar leads underscores problems associated with this simplified approach. Numerically estimated electromagnetic interference (EMI) levels under the worst case scenarios are about 40 microT for atrial electrodes, and 140 microT for ventricular electrodes. These methods could also be applied to studying EMI with other implanted devices such as cardiac defibrillators.

摘要

人体暴露于外部50/60赫兹的电场和磁场会在体内感应出电场。这些感应场会干扰植入的起搏器。在暴露于磁场的情况下,起搏器导线会受到感应电动势的影响,电流返回路径由导电的身体组织提供。结合毫米级人体电导率模型使用的现代计算资源使数值建模成为检查此类干扰的可行技术。在本文中,对现有的经过充分验证的标量势有限差分频域代码进行了修改,以处理嵌入体内的细导线。通过对现有代码进行简单修改,可以在数值上包含每根导线的影响。针对两种起搏器导线插入路径计算结果,路径终点为心脏中的心房或心室电极。针对三个正交的60赫兹磁场方向进行计算。与直接应用于代表单极导线的体外回路的法拉第定律的简化估计值进行比较,突出了这种简化方法存在的问题。在最坏情况下,数值估计的电磁干扰(EMI)水平对于心房电极约为40微特斯拉,对于心室电极约为140微特斯拉。这些方法也可应用于研究与其他植入设备(如心脏除颤器)相关的电磁干扰。

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