IEEE Trans Biomed Eng. 2022 Dec;69(12):3635-3644. doi: 10.1109/TBME.2022.3174959. Epub 2022 Nov 23.
With the advent of wearables, Human Body Communication (HBC) has emerged as a physically secure and power-efficient alternative to the otherwise ubiquitous Wireless Body Area Network (WBAN). Whereas the most investigated HBC modalities have been Electric and Electro-quasistatic (EQS) Capacitive and Galvanic, recently Magnetic HBC (M-HBC) has been proposed as a viable alternative. Previous works have investigated M-HBC through application points-of-view, without exploring its fundamental working principle. In this paper, a ground up analysis is performed to study the possible effects and contributions of the human body channel in M-HBC over 1kHz to 10 GHz, by electromagnetic simulations and supporting experiments. The results show that while M-HBC can be successfully operated as a body area network, the human body itself plays a minimal or negligible role in its functionality. For Magneto-quasistatic (MQS) HBC (frequencies less than ∼30 MHz), the body is transparent to the quasistatic magnetic field. Conversely for higher frequencies, the conductivity of human tissues attenuates Magnetic HBC fields due to induced Eddy currents, preventing the body to support efficient waveguide modes. With this conceptual understanding developed, different modes of operations of MQS HBC are outlined for both high impedance capacitive and 50Ω termination cases, and their performances are compared with EQS HBC for similar sized devices, over varying distances between TX and RX. The resulting report presents a fundamental understanding towards M-HBC operation and its contrast with EQS HBC, aiding HBC device designers to make educated design decisions, depending on application scenarios.
随着可穿戴设备的出现,人体通信(HBC)作为一种物理安全且节能的替代方案,已经取代了无处不在的无线体域网(WBAN)。虽然最受研究的 HBC 模态是电动和静电(EQS)电容式和电流式,但最近已经提出了磁体 HBC(M-HBC)作为一种可行的替代方案。以前的工作已经从应用角度研究了 M-HBC,而没有探索其基本工作原理。在本文中,通过电磁模拟和支持实验,从基础上分析了 1kHz 至 10GHz 范围内人体通道在 M-HBC 中的可能影响和贡献。结果表明,虽然 M-HBC 可以作为体域网成功运行,但人体本身在其功能中发挥的作用最小或可以忽略不计。对于磁准静态(MQS)HBC(频率小于约 30MHz),人体对准静态磁场是透明的。相反,对于更高的频率,由于感应涡流,人体组织的电导率会衰减磁 HBC 场,从而阻止人体支持有效的波导模式。有了这种概念上的理解,就可以为高阻抗电容和 50Ω 端接情况概述 MQS HBC 的不同操作模式,并将它们与类似尺寸设备的 EQS HBC 的性能进行比较,TX 和 RX 之间的距离不同。最终的报告提出了对 M-HBC 操作及其与 EQS HBC 的对比的基本理解,帮助 HBC 设备设计人员根据应用场景做出明智的设计决策。