首页> 外文期刊>International journal of RF and microwave computer-aided engineering >Compact bio-inspired dual-band uniplanar electromagnetic bandgap-backed antenna for wearable applications
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Compact bio-inspired dual-band uniplanar electromagnetic bandgap-backed antenna for wearable applications

机译:紧凑型生物启发双频带Uniplanar电磁带式带式带式带式护板,用于可穿戴应用的备用天线

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A compact bio-inspired electromagnetic bandgap integrated wearable antenna (Bio-EBG-iwA) is proposed in this work. The Bio-EBG-iwA is based on the hybridization of semi-Vitis vinifera leaf-shaped patch, asymmetric feedline, reflected G-shaped slot, partial ground, and a stub on the ground plane. The antenna is built on the locally made textile material called Aso-oke (Alari) with permittivity and a loss tangent of 1.43 and 0.019, respectively. The dimension of the proposed antenna is 0:2 λ_g×0:1 λ_g×0:0089 λ_g (22mm×12mm×0.7 mm) at 2.45 GHz. Despite its compactness, the gain of -0.48 and 2.5 dBi are achieved at 2.45 and 5.7 GHz respectively without electromagnetic bandgap (EBG). A dual-band textile-based uniplanar compact electromagnetic bandgap (UC-EBG) is introduced to create isolation between the human tissue and the antenna. The dual-band UC-EBG is realized through the use of a modified slitted-square ring (MSSR) and the 90° rotated H-shaped patch on Aso-oke (Alari) with a thickness of 2.1 mm. The periodicity of the proposed UC-EBG is 34.5 mm. The antenna is placed on a 2×2 array of the proposed UC-EBG separated by a 3mm foam thickness. The radiation efficiency of 88.97% and 79.85% are achieved at 2.45 and 5.7 GHz respectively. The gain of the proposed UC-EBG integrated antenna increased from -0.48 and 2.5 dBi to 5.9 and 10.7 dBi at 2.45 and 5.7 GHz, respectively. The front-to-back ratio (FBR) of 26.3 dB is achieved with the use of UC-EBG. The use of UC-EBG results in a 98.31% and 99.4% reduction in average SAR at 2.45 and 5.7 GHz, respectively. The off-body and on-body performance analysis of the proposed UC-EBG integrated antenna show that the proposed EBG integrated antenna (Bio-EBGiwA) is a suitable candidate for wearable application. To the best of our knowledge, this is the most compact wearable antenna with suitable gain, radiation efficiency, and high FBR. In addition, our proposed UC-EBG shows that slitting is an effective way of miniaturizing the EBG structure.
机译:在这项工作中提出了一种紧凑的生物启发电磁带隙集成可穿戴天线(BIO-EBG-IWA)。生物EBG-IWA基于半血管叶片叶形贴片,不对称馈线,反射的G形槽,部分地和接地平面上的短截线的杂交。天线在局部制造的纺织材料上,分别具有介电常数和1.43和0.019的介电常数和1.43和0.019的损耗。所提出的天线的尺寸为0:2λ_g×0:1λ_g×0:0089λ_g(22mm×12mm×0.7mm),在2.45GHz。尽管它紧凑,但分别在2.45和5.7GHz的情况下实现-0.48和2.5 dBi的增益,没有电磁带隙(EBG)。引入了一种基于双带纺织品的ULIPLANAR紧凑型电磁带隙(UC-EBG)以在人体组织和天线之间产生隔离。通过使用改进的狭缝方环(MSSR)和90°旋转的H形贴片,在厚度为2.1mm的ASO-OKE(ALARI)上实现双带UC-EBG。所提出的UC-EBG的周期性为34.5毫米。将天线放置在所提出的UC-EBG的2×2阵列上,通过3mm泡沫厚度分开。辐射效率为88.97%和79.85%,分别以2.45和5.7GHz实现。所提出的UC-EBG集成天线的增益分别从-0.48和2.5 dBi增加到2.45和5.7GHz的5.9和10.7 dBi。使用UC-EBG实现26.3dB的前后比率(FBR)。 UC-EBG的使用分别在2.45和5.7GHz的平均SAR中降低了98.31%和99.4%。所提出的UC-EBG集成天线的偏压和体现分析表明,所提出的EBG集成天线(BIO-EBGIWA)是可穿戴应用的合适候选者。据我们所知,这是具有合适增益,辐射效率和高FBR的最紧凑的可穿戴天线。此外,我们提出的UC-EBG表明,切片是小型化eBG结构的有效方式。

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