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A Novel Field-Circuit FEM Modeling and Channel Gain Estimation for Galvanic Coupling Real IBC Measurements

机译:电流耦合实际IBC测量的新型现场电路有限元建模和通道增益估计

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摘要

Existing research on human channel modeling of galvanic coupling intra-body communication (IBC) is primarily focused on the human body itself. Although galvanic coupling IBC is less disturbed by external influences during signal transmission, there are inevitable factors in real measurement scenarios such as the parasitic impedance of electrodes, impedance matching of the transceiver, etc. which might lead to deviations between the human model and the in vivo measurements. This paper proposes a field-circuit finite element method (FEM) model of galvanic coupling IBC in a real measurement environment to estimate the human channel gain. First an anisotropic concentric cylinder model of the electric field intra-body communication for human limbs was developed based on the galvanic method. Then the electric field model was combined with several impedance elements, which were equivalent in terms of parasitic impedance of the electrodes, input and output impedance of the transceiver, establishing a field-circuit FEM model. The results indicated that a circuit module equivalent to external factors can be added to the field-circuit model, which makes this model more complete, and the estimations based on the proposed field-circuit are in better agreement with the corresponding measurement results.
机译:电流耦合体内通信(IBC)的人类通道建模的现有研究主要集中于人体本身。尽管在信号传输过程中电流耦合IBC受外部影响的干扰较小,但在实际测量场景中仍存在不可避免的因素,例如电极的寄生阻抗,收发器的阻抗匹配等,这些因素可能导致人体模型与模型之间的偏差。体内测量。本文提出了一种在实际测量环境中电流耦合中型散货箱的场电路有限元方法(FEM)模型,以估计人体通道增益。首先,基于电流法建立了人体四肢电场体内通信的各向异性同心圆柱模型。然后,将电场模型与几个阻抗元件组合,在电极的寄生阻抗,收发器的输入和输出阻抗方面等效,从而建立了场电路FEM模型。结果表明,可以将等效于外部因素的电路模块添加到现场电路模型中,这使得该模型更加完整,并且基于所提出的现场电路的估计与相应的测量结果更加吻合。

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