Suppr超能文献

一种集成 AMC 的可穿戴背腔式 SIW 天线的设计与比吸收率分析

Design and SAR Analysis of an AMC-Integrated Wearable Cavity-Backed SIW Antenna.

作者信息

Thangavelu Yathavi, Thangaraju Balakumaran, Maheswar Rajagopal

机构信息

Department of ECE, Coimbatore Institute of Technology, Coimbatore 641 014, India.

Department of ECE, Centre for IoT and AI (CITI), KPR Institute of Engineering and Technology, Coimbatore 641 407, India.

出版信息

Micromachines (Basel). 2024 Dec 23;15(12):1530. doi: 10.3390/mi15121530.

Abstract

Wearable communication technologies necessitate antenna designs that harmonize ergonomic compatibility, reliable performance, and minimal interaction with human tissues. However, high specific absorption rate (SAR) levels, limited radiation efficiency, and challenges in integration with flexible materials have significantly constrained widespread deployment. To address these limitations, this manuscript introduces a novel wearable cavity-backed substrate-integrated waveguide (SIW) antenna augmented with artificial magnetic conductor (AMC) structures. The proposed architecture is meticulously engineered using diverse textile substrates, including cotton, jeans, and jute, to synergistically integrate SIW and AMC technologies, mitigating body-induced performance degradation while ensuring safety and high radiation efficiency. The proposed design demonstrates significant performance enhancements, achieving SAR reductions to 0.672 W/kg on the spine and 0.341 W/kg on the forelimb for the cotton substrate. Furthermore, the AMC-backed implementation attains ultra-low reflection coefficients, as low as -26.56 dB, alongside a gain improvement of up to 1.37 dB, culminating in a total gain of 7.09 dBi. The impedance bandwidth exceeds the ISM band specifications, spanning 150 MHz (2.3-2.45 GHz). The design maintains remarkable resilience and operational stability under varying conditions, including dynamic bending and proximity to human body models. By substantially suppressing back radiation, enhancing directional gain, and preserving impedance matching, the AMC integration optimally adapts the antenna to body-centric communication scenarios. This study uniquely investigates the dielectric and mechanical properties of textile substrates within the AMC-SIW configuration, emphasizing their practicality for wearable applications. This research sets a precedent for wearable antenna innovation, achieving an unprecedented balance of flexibility, safety, and electromagnetic performance while establishing a foundation for next-generation wearable systems.

摘要

可穿戴通信技术需要天线设计,以实现人体工程学兼容性、可靠性能以及与人体组织的最小相互作用。然而,高比吸收率(SAR)水平、有限的辐射效率以及与柔性材料集成方面的挑战,严重限制了其广泛应用。为解决这些限制,本文介绍了一种新型的可穿戴背腔基片集成波导(SIW)天线,该天线采用了人工磁导体(AMC)结构。所提出的架构经过精心设计,使用了包括棉花、牛仔布和黄麻在内的多种纺织基板,以协同集成SIW和AMC技术,减轻人体对性能的影响,同时确保安全性和高辐射效率。所提出的设计展示了显著的性能提升,对于棉花基板,脊柱处的SAR降低至0.672W/kg,前肢处的SAR降低至0.341W/kg。此外,采用AMC背衬的实现方式获得了极低的反射系数,低至-26.56dB,增益提高了1.37dB,总增益达到7.09dBi。阻抗带宽超过了ISM频段规范,覆盖150MHz(2.3-2.45GHz)。该设计在包括动态弯曲和靠近人体模型等不同条件下保持了显著的弹性和运行稳定性。通过大幅抑制后向辐射、增强定向增益以及保持阻抗匹配,AMC集成使天线能够最佳地适应以人体为中心的通信场景。本研究独特地研究了AMC-SIW配置中纺织基板的介电和机械性能,强调了它们在可穿戴应用中的实用性。这项研究为可穿戴天线创新树立了先例,在灵活性、安全性和电磁性能方面实现了前所未有的平衡,同时为下一代可穿戴系统奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1386/11676499/c2267c83664b/micromachines-15-01530-g003.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验