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Effects of time varying currents and magnetic fields in the frequency range of 1 kHz to 1 MHz to the human body - a simulation study

机译:时变电流和磁场在1 kHz到1 MHz频率范围内对人体的影响-仿真研究

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Exposure to time-varying magnetic fields evokes two effects in biological tissue: Firstly, an electric field is induced that generates eddy currents in conductive tissues, and, secondly, power deposit might increase local temperatures. Field effects of frequencies up to 1 kHz and above 1 MHz are well known. The intermediate frequency range lacks intensive research. Only little attention has been paid so far. Yet due to recent innovations in medical diagnostics and therapies like Magnetic Particle Imaging or RF-Hyperthermia, the need arises to investigate the frequency range from 1kHz to 1 MHz. This work presents results of numerical field calculations of a human body model placed within simple coil configurations. Induced current densities, generated by alternating coil currents, are simulated. The effect of current densities are demonstrated and evaluated on schematic cell models of excitable tissue. In order to generate an action potential at the cell membrane, a difference in electric potential from intra- to extracellular space must be present. It can be shown that in case of sufficient field strength, stimulation of nerves and muscles is possible up to a frequency of 100 kHz. The aim of this paper is to transfer simulation results from the macroscopic model to the microscopic model in order to estimate field effects of big field generating coils.
机译:暴露于随时间变化的磁场会在生物组织中产生两种效应:首先,感应出在导电组织中产生涡流的电场;其次,功率沉积可能会提高局部温度。频率高达1 kHz且高于1 MHz的场效应是众所周知的。中频范围缺乏深入的研究。到目前为止,只得到了很少的关注。然而,由于最近在医学诊断和治疗方面的创新,例如电磁粒子成像或射频热疗,因此有必要研究1kHz至1 MHz的频率范围。这项工作介绍了放置在简单线圈配置中的人体模型的数值场计算结果。模拟了由交流线圈电流产生的感应电流密度。电流密度的影响已在可兴奋组织的示意性细胞模型上得到证明和评估。为了在细胞膜上产生动作电位,必须存在从细胞内到细胞外空间的电位差。可以证明,在足够的场强的情况下,神经和肌肉的刺激可能达到100 kHz的频率。本文的目的是将仿真结果从宏观模型转移到微观模型,以估计大磁场产生线圈的磁场效应。

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