人体电导率对嵌入式正模螺旋天线输入电阻增加的影响分析

IF 4.8 2区 计算机科学 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Antennas and Wireless Propagation Letters Pub Date : 2024-12-11 DOI:10.1109/LAWP.2024.3516129
Norsiha Zainudin;Norhudah Seman;Yoshihide Yamada;Rasyidah Hanan Mohd Baharin;Kamilia Kamardin;Tarik Abdul Latef
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引用次数: 0

摘要

正模螺旋天线(NMHA)作为人体传感器广泛应用于人体保健领域。由于其体积小巧,效率高,因此对与5G/6G技术的集成越来越感兴趣。人体的电导率对天线的输入电阻和辐射功率等电性能影响很大。以前,输入电阻的增加与NMHA电流的减少有关。然而,电导率对电力吸收的影响是至关重要的,在以往的研究中尚未得到澄清。本文通过对402 MHz NMHA自谐振条件下的电磁仿真,阐明了天线输入功率与周围功率之间的关系。值得注意的是,天线表面的坡印亭矢量随着电导率的增加而减小。在自谐振情况下,由坡印亭矢量表示的辐射功率对应于天线输入功率。通过分析输入功率和输入电阻之间的关系,得出了输入电阻对人体胃、皮肤和脂肪电导率的依赖关系。所提出的方法与先前得到的结果很好地吻合。此外,还提供了胃和脂肪体NMHA的测量结果来验证仿真结果。
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Analysis of Input Resistance Increase by Human Body Conductivity at Embedded Normal-Mode Helical Antenna
A normal-mode helical antenna (NMHA) is widely used as a human body sensor for human health care applications. It is gaining interest in integration with 5G/6G technologies due to its compact size and high efficiency. The conductivity of the human body significantly affects the antenna's electrical performances, such as input resistance and radiation power. Previously, the increase in input resistance was related to a reduction in the NMHA electric current. However, the effect of electric power absorption by conductivity is crucial and has not been clarified in previous research. This letter clarifies the relationship between antenna input power and the surrounding power through electromagnetic simulations in the self-resonant condition of NMHA at 402 MHz. Notably, the Poynting vector on the antenna surface decreases as conductivity increases. In the case of self-resonant, the radiation power represented by the Poynting vector corresponds to the antenna input power. The dependence of input resistance on conductivity in the human stomach, skin, and fat is obtained by analyzing the relationship between input power and input resistance. The proposed method aligns well with previously obtained results. Moreover, measurement results of NMHA in the stomach and fat phantom are provided to validate the simulation results.
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来源期刊
CiteScore
8.00
自引率
9.50%
发文量
529
审稿时长
1.0 months
期刊介绍: IEEE Antennas and Wireless Propagation Letters (AWP Letters) is devoted to the rapid electronic publication of short manuscripts in the technical areas of Antennas and Wireless Propagation. These are areas of competence for the IEEE Antennas and Propagation Society (AP-S). AWPL aims to be one of the "fastest" journals among IEEE publications. This means that for papers that are eventually accepted, it is intended that an author may expect his or her paper to appear in IEEE Xplore, on average, around two months after submission.
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