双极电极植入式医疗器械干涉电压的测定

S. Hille, K. Eichhorn, K. Gonschorek
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引用次数: 6

摘要

研究了具有单极电极和双极电极的植入式医疗器械传感输入端外磁场与感应电压的耦合模型。因此,开发了一种分析模型,允许在10hz和30khz之间的低频磁场中测定起搏器的感应电压。左胸单极起搏器电极和双极起搏器电极的区别已经在这里做出。此外,还考虑了双极电极的不同位置。结果表明,在均匀磁场中,不同位置的双极电极会产生不同的感应电压。本课题的主要任务是确定电导率对双极电极干扰电压的影响。测量电路被放置在原始起搏器外壳中,因此仅通过模式切换就可以对双极和单极电极进行比较。磁场是由亥姆霍兹线圈产生的。亥姆霍兹线圈系统的一部分是一个充满生理盐水溶液的人体躯干模型,以模拟人体组织。测量结果表明电导率与感应电压之间存在相关性。广泛讨论的双极电极的安全系数可以通过上述测量计算出来。在这些实验中,假设的干扰电压在大约100 kHz时从双极到单极的转变明显较低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determination of the interference voltage in implantable medical devices with bipolar electrodes
This study investigates the coupling-model between external magnetic fields and induced voltages at the sensing input of the implantable medical devices with unipolar and bipolar electrodes. Therefore an analytical model has been developed allowing the determination of induced voltage into a pacemaker in a magnetic field with low frequencies between 10 Hz and 30 kHz. A distinction between left pectoral unipolar and bipolar pacemaker electrodes has been made here. Furthermore the different positions of a bipolar electrode were taken into consideration. It was found that depending on the position of the bipolar electrodes in a homogeneous magnetic field, major differences of induced voltage occur. The main task of this project is to ascertain the influence of electric conductivity on interference voltage in bipolar electrodes. The measurement circuit has been placed into an original pacemaker case and therefore allowed the comparison between bipolar and unipolar electrodes by only mode switching. The magnetic field has been generated by a Helmholtz coil. Part of the Helmholtz coil system was a model of a human torso filled with saline solution to simulate human tissue. The result of the measurements showed a dependency between electric conductivity and induced voltage. The extensively discussed security factor of bipolar electrodes could be calculated from the above-mentioned measurements. The assumed transition in interference voltage from bipolar to unipolar electrodes at about 100 kHz has been significantly lower in these experiments.
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