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Evaluation of Propagation Characteristics Using the Human Body as an Antenna

机译:以人体为天线的传播特性评估

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摘要

In this paper, an inhomogeneous human body model was presented to investigate the propagation characteristics when the human body was used as an antenna to achieve signal transmission. Specifically, the channel gain of four scenarios, namely, (1) both TX electrode and RX electrode were placed in the air, (2) TX electrode was attached on the human body, and RX electrode was placed in the air, (3) TX electrode was placed in the air, and RX electrode was attached on the human body, (4) both the TX electrode and RX electrode were attached on the human body, were studied through numerical simulation in the frequency range 1 MHz to 90 MHz. Furthermore, the comparisons of input efficiency, accepted efficiency, total efficiency, absorption power of human body, and electric field distribution of different distances of four aforementioned scenarios were explored when the frequency was at 44 MHz. In addition, the influences of different human tissues, electrode position, and the distance between electrode and human body on the propagation characteristics were investigated respectively at 44 MHz. The results showed that the channel gain of Scenario 4 was the maximum when the frequency was from 1 MHz to 90 MHz. The propagation characteristics were almost independent of electrode position when the human body was using as an antenna. However, as the distance between TX electrode and human body increased, the channel gain decreased rapidly. The simulations were verified by experimental measurements. The results showed that the simulations were in agreement with the measurements.
机译:本文提出了一种不均匀的人体模型,以研究当人体作为天线实现信号传输时的传播特性。具体地,四种场景的信道增益,即(1)TX电极和RX电极都置于空中,(2)TX电极附着在人体上,RX电极置于空中,(3)将TX电极放置在空气中,将RX电极附着在人体上,(4)通过在1 MHz至90 MHz频率范围内的数值模拟研究TX电极和RX电极都附着在人体上。此外,在频率为44 MHz时,对上述四种情况的输入效率,接受效率,总效率,人体吸收功率以及不同距离的电场分布进行了比较。此外,还分别研究了在44 MHz下不同人体组织,电极位置以及电极与人体之间的距离对传播特性的影响。结果表明,当频率从1 MHz到90 MHz时,方案4的信道增益最大。当人体用作天线时,传播特性几乎与电极位置无关。但是,随着TX电极与人体之间距离的增加,通道增益迅速下降。通过实验测量验证了模拟。结果表明,仿真与测量结果吻合。

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