采用互补g型谐振腔的超紧凑等/不等半模衬底集成波导滤波功率分压器

IF 0.6 4区 工程技术 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Mostafa Danaeian
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引用次数: 0

摘要

摘要本文提出了三种结合半模衬底集成波导(HMSIW)平台和超材料单元电池的超紧凑等/不等滤波功率分压器(FPDs)。为了使所提出的等/不等fpd的总尺寸小型化,同时采用了倏逝模技术、半模技术和阶跃阻抗谐振器(SIR)技术。在改进的超材料单元胞中,即互补g形谐振器(CGR)单元胞中,用拟阶跃阻抗槽线代替圆形互补裂环谐振器(CSRR)单元胞中的传统槽线。因此,在相同物理尺寸的情况下,改性CGR单元电池的电尺寸比传统的圆形CSRR单元电池小。采用引入的CGR单元格和HMSIW结构,设计和仿真了三个任意功率分比的等/不等FPDs。为了说明所提出元件的性能,制作并测量了三个功率分配比分别为1:1,1:4和1:8的HMSIW fpd。仿真结果与实测结果吻合较好。结果表明,微型化系数约为0.64。关键词:紧凑尺寸任意功率分电偶极子瞬变模技术滤波功率分器半模衬底集成波导超材料公开声明作者未报告潜在利益冲突。作者的贡献smostafa Danaeian提出了这个想法,发展了这个理论并进行了计算。Mostafa Danaeian验证了分析方法,讨论了结果,并为最终手稿做出了贡献。数据和材料的可用性数据共享不适用于本文,因为本研究没有创建或分析新的数据。伦理审定本文真实完整地反映了作者本人的研究和分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Super-compact equal/unequal half-mode substrate integrated waveguide filtering power dividers using complementary G-shaped resonator
ABSTRACTIn this paper, three super-compact equal/unequal filtering power dividers (FPDs) by combining the half-mode substrate integrated waveguide (HMSIW) platform and the metamaterial unit cell are proposed. To miniaturized the total dimension of the proposed equal/unequal FPDs, the evanescent mode technique, the half-mode technique, and the stepped-impedance resonator (SIR) technique have been utilized, simultaneously. In the modified metamaterial unit cell, which is called the complementary G-shaped resonator (CGR) unit cell, the quasi stepped-impedance slot line is replaced instead of the conventional slot line in the circular complementary split-ring resonator (CSRR) unit cell. Accordingly, the electrical size of the modified CGR unit cell is smaller than the conventional circular CSRR unit cell with the same physical sizes. Employing the introduced CGR unit cell and HMSIW structure, three equal/unequal FPDs with arbitrary power-dividing ratios have been designed and simulated. To illustration the performance of the proposed components, three HMSIW FPDs with different power division ratios of 1:1, 1:4, and 1:8 have been fabricated and measured. A reasonable agreement between simulated and measured results has been achieved. The results demonstrate that a miniaturization factor of about 0.64 is achieved.KEYWORDS: Compact sizearbitrary power divisionelectric dipolesevanescent mode techniquefiltering power divider (FPD)half-mode substrate integrated waveguide (HMSIW)metamaterial Disclosure statementNo potential conflict of interest was reported by the author(s).Authors’ contributionsMostafa Danaeian conceived of the presented idea, developed the theory and performed the computations. Mostafa Danaeian verified the analytical methods and discussed the results and contributed to the final manuscript.Availability of data and materialsData sharing is not applicable to this article as no new data were created or analyzed in this study.Ethical ApprovalThe paper reflects the author's own research and analysis in a truthful and complete manner.
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来源期刊
Electromagnetics
Electromagnetics 工程技术-工程:电子与电气
CiteScore
1.60
自引率
12.50%
发文量
31
审稿时长
6 months
期刊介绍: Publishing eight times per year, Electromagnetics offers refereed papers that span the entire broad field of electromagnetics and serves as an exceptional reference source of permanent archival value. Included in this wide ranging scope of materials are developments in electromagnetic theory, high frequency techniques, antennas and randomes, arrays, numerical techniques, scattering and diffraction, materials, and printed circuits. The journal also serves as a forum for deliberations on innovations in the field. Additionally, special issues give more in-depth coverage to topics of immediate importance. All submitted manuscripts are subject to initial appraisal by the Editor, and, if found suitable for further consideration, to peer review by independent, anonymous expert referees. Submissions can be made via email or postal mail.
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