Noor Mohammed, R. W. Jackson, Jeremy Gummeson, S. Lee
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As a demonstrative example, the model approximates a typical human forearm (from wrist to elbow) and allows for investigation of the transmission loss between a skin-coupled power transmitter and a receiver in the electro-quasistatic domain. The computed transmission loss from the proposed model is further validated against experimental measurements obtained from five healthy human subjects using a wearable 40 MHz radio frequency (RF) transmitter and an isolated power receiver system in a laboratory environment. The preliminary experimental data show an approximate 40 dB transmission loss within 10 cm body channel length for the parallel plate electrode configuration with dimensions of 30 mm ×40 mm. 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引用次数: 0
摘要
在过去的几年中,电容式体内能量传输(C-IBPT)技术作为支持无电池身体传感器网络的潜在解决方案,在该领域受到了极大的关注,该技术通过电容链路将人体作为无线能量传输介质。然而,尽管C-IBPT系统的电路建模对于支持无电池身体传感器的可靠运行非常重要,但在该领域的研究还远远不够。本文提出了估算C-IBPT系统路径损耗和电极间电容的有限元模型和等效线性电路模型。作为演示示例,该模型近似于典型的人类前臂(从手腕到肘部),并允许在准静电域调查皮肤耦合功率发射器和接收器之间的传输损耗。通过在实验室环境中使用可穿戴式40 MHz射频(RF)发射机和隔离电源接收器系统,对5名健康受试者进行实验测量,进一步验证了所提出模型计算的传输损耗。初步实验数据表明,尺寸为30 mm ×40 mm的平行板电极配置在10 cm体通道长度内的传输损耗约为40 dB。仿真结果表明,在10 cm的体通道上,传输损耗为35 dB,耦合电容为13.5 fF。
Wireless Intra-Body Power Transfer via Capacitively Coupled Link
Over the past couple of years, the Capacitive Intra-Body Power Transfer (C-IBPT) technology, which uses the human body as a wireless power transfer medium via capacitive links, has received tremendous attention in the field as a potential solution to support a network of battery-free body sensors. However, circuit modeling of C-IBPT systems, despite its importance in supporting the reliable operation of battery-free body sensors, has been significantly understudied in the field. This paper proposes a finite element model (FEM) and equivalent linear circuit models to estimate path loss and inter-electrode capacitance of a C-IBPT system. As a demonstrative example, the model approximates a typical human forearm (from wrist to elbow) and allows for investigation of the transmission loss between a skin-coupled power transmitter and a receiver in the electro-quasistatic domain. The computed transmission loss from the proposed model is further validated against experimental measurements obtained from five healthy human subjects using a wearable 40 MHz radio frequency (RF) transmitter and an isolated power receiver system in a laboratory environment. The preliminary experimental data show an approximate 40 dB transmission loss within 10 cm body channel length for the parallel plate electrode configuration with dimensions of 30 mm ×40 mm. The simulation finding shows a lower transmission loss of 35 dB and 13.5 fF coupling capacitance across a 10 cm body channel.