Ridged Waveguide Magic Tees Based on 3-D Printing Technology

被引:13
|
作者
Wu, Jie [1 ]
Wang, Cong [1 ,2 ]
Guo, Yongxin [1 ]
机构
[1] Natl Univ Singapore, Dept Elect & Comp Engn, Singapore 117576, Singapore
[2] Natl Univ Singapore, Ctr Adv Microelect Devices, Suzhou Res Inst, Suzhou 215123, Peoples R China
基金
美国国家科学基金会; 新加坡国家研究基金会;
关键词
Printing; Microwave theory and techniques; Power transmission lines; Impedance matching; Bandwidth; Fabrication; Couplings; High isolation; magic tee; ridged waveguide; 3-D printing; waveguide component; ANTENNAS; COMPACT;
D O I
10.1109/TMTT.2020.3006570
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this article, full-metal ridged waveguide magic tees are designed and fabricated based on 3-D printing technology. Two kinds of prototypes with different structures and performances are proposed and compared. First, a wideband design based on double-ridged waveguide (DRWG) transmission lines was proposed, and it achieved a measured operational bandwidth of 27%. However, this component has to be split into two parts that are printed separately and then assembled together by screws because the overhang structure cannot satisfy the 3-D printing rules. To overcome this problem, a novel magic tee based on pyramidal ridged waveguide (PRWG) is proposed. In spite of a narrower bandwidth of 8.6%, this design requires a simpler fabrication method and has a lower profile. To the best of our knowledge, the PRWG prototype is the first full-metal magic tee that is fabricated as a whole part without involving any assembling or tuning and, thus, saves processing time and manual work.
引用
收藏
页码:4267 / 4275
页数:9
相关论文
共 50 条
  • [21] A Compact Ka-band Waveguide Orthomode Transducer Fabricated by 3-D Printing
    Shang, Xiaobang
    Klasmann, Paul
    Lancaster, Michael J.
    2016 46TH EUROPEAN MICROWAVE CONFERENCE (EUMC), 2016, : 361 - 364
  • [22] Automated Hybrid 3-D Printing of 3-D Meandering Interconnects
    Robles, Ubaldo
    Kudzal, Andelle
    Rumpf, Raymond C.
    IEEE TRANSACTIONS ON COMPONENTS PACKAGING AND MANUFACTURING TECHNOLOGY, 2019, 9 (06): : 1184 - 1189
  • [23] 3-D PRINTING Light beams 3-D print in a flash
    Halford, Bethany
    CHEMICAL & ENGINEERING NEWS, 2021, 99 (01) : 8 - 8
  • [24] An Improved Fabrication Technique for the 3-D Frequency Selective Surface based on Water Transfer Printing Technology
    Maxime Harnois
    Mohamed Himdi
    Wai Yan Yong
    Sharul Kamal Abdul Rahim
    Karim Tekkouk
    Nicolas Cheval
    Scientific Reports, 10
  • [25] High-resolution PLA-based composite scaffolds via 3-D printing technology
    Serra, T.
    Planell, J. A.
    Navarro, M.
    ACTA BIOMATERIALIA, 2013, 9 (03) : 5521 - 5530
  • [26] An Improved Fabrication Technique for the 3-D Frequency Selective Surface based on Water Transfer Printing Technology
    Harnois, Maxime
    Himdi, Mohamed
    Yong, Wai Yan
    Rahim, Sharul Kamal Abdul
    Tekkouk, Karim
    Cheval, Nicolas
    SCIENTIFIC REPORTS, 2020, 10 (01)
  • [27] 3-D Printing and Development of Fluoropolymer Based Reactive Inks
    Ruz-Nuglo, Fidel D.
    Groven, Lori J.
    ADVANCED ENGINEERING MATERIALS, 2018, 20 (02)
  • [28] 3-D printed triple-band metasurface filter based on groove gap waveguide technology
    Gao, Qiyue
    Zhou, Xin
    Huang, Nengcai
    MATERIALS & DESIGN, 2024, 244
  • [29] Compact filters based on dual-mode gap waveguide cavities and 3D printing technology
    Shu, Minjie
    Wu, Wenxuan
    Yang, Qian
    Chen, Jianzhong
    Guo, Cheng
    Zhang, Anxue
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2023, 65 (03) : 727 - 732
  • [30] Internet of nuclear things: Managing the proliferation risks of 3-D printing technology
    Hoffman, Wyatt
    Volpe, Tristan A.
    BULLETIN OF THE ATOMIC SCIENTISTS, 2018, 74 (02) : 102 - 113