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Effect of membrane capacitance on the induced electric field for the magnetic peripheral nerve stimulation

机译:膜电容对周围神经磁刺激的感应电场的影响

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Magnetic stimulation is an evolving, non-invasive neural stimulation technology used for clinical applications, including brain mapping, treatment of mood disorders, epilepsy, and chronic pain. Based on the induction principle, magnetic stimulation induces electric fields in the conductive tissue due to the time-varying current in the magnetic coil. It requires the magnetic coil to be in close proximity to the stimulation site to produce neural activation. The stimulation threshold of magnetic stimulation depends on the magnitude and the pulse width of the induced electric field. Traditionally, the efficacy of the magnetic stimulation is studied using analytical formulations based on the coil parameters and operating conditions (Roth, B. J. et. al., IEEE TBME 1990). Several studies were performed to include the tissue boundaries in the simulation model of the induced electric field (Nagarajan, S.S. et al., IEEE TBME 1996). However, these models were over simplified and do not include the tissue heterogeneity found in the nerve bundle.
机译:磁刺激是一种不断发展的,非侵入性的神经刺激技术,可用于临床应用,包括脑图绘制,情绪障碍,癫痫和慢性疼痛的治疗。基于感应原理,由于电磁线圈中的时变电流,磁刺激在导电组织中感应出电场。它要求电磁线圈紧靠刺激部位以产生神经激活。磁刺激的刺激阈值取决于感应电场的大小和脉冲宽度。传统上,使用基于线圈参数和工作条件的分析公式来研究磁刺激的功效(Roth,B.J。等人,IEEE TBME 1990)。进行了一些研究,以将组织边界包括在感应电场的模拟模型中(Nagarajan,S.S。等人,IEEE TBME 1996)。但是,这些模型过于简化,不包括神经束中发现的组织异质性。

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