Design and fabrication of antennas using 3D printing

被引:0
|
作者
Bjorgaard J. [1 ]
Hoyack M. [2 ]
Huber E. [3 ]
Mirzaee M. [4 ]
Chang Y.-H. [5 ]
Noghanian S. [4 ]
机构
[1] Department of Electrical Engineering, University of North Dakota
[2] Department of Technology, Illinois State University
关键词
Electric impedance - Conductive materials - Microwave antennas - Directive antennas - Fabrication - Natural frequencies - Antenna arrays - Dielectric materials - 3D printers - Spiral antennas;
D O I
10.2528/pierc18011013
中图分类号
学科分类号
摘要
Due to a recent growth in three-dimension (3D) printing technology, engineers can fabricate affordable and versatile antennas; however, lossy conductive materials, inadequate antenna terminations, and simplistic designs which do not adequately utilize the available volume continue to limit the capabilities of 3D printed antennas. In this work, the dielectric constants of three polylactic acid (PLA) materials, dielectric PLA, magnetic PLA and conductive PLA, were measured using the coaxial transmission line method, and the results were compared with measurements using the commercially available coaxial probe method. Based on published dielectric constants for solid non-printed PLA, a variety of antenna designs were simulated and fabricated. Each of these antenna designs addressed a certain shortcoming faced by 3D printed antennas. The antennas were designed with a target resonant frequency of 2.45 GHz, an impedance bandwidth of at least 500 MHz, and a gain greater than 1.5 dBi. The three antennas presented here are a fractal bow-tie antenna (FBTA), a spiral antenna, and a Yagi-Uda antenna. © 2018, Electromagnetics Academy. All rights reserved.
引用
收藏
页码:119 / 134
页数:15
相关论文
共 50 条
  • [21] Design and Fabrication of Kidney Phantoms for Internal Radiation Dosimetry Using 3D Printing Technology
    Tran-Gia, Johannes
    Schloegl, Susanne
    Lassmann, Michael
    JOURNAL OF NUCLEAR MEDICINE, 2016, 57 (12) : 1998 - 2005
  • [22] Design and fabrication of a personalized anthropomorphic phantom using 3D printing and tissue equivalent materials
    Zhang, Fuquan
    Zhang, Haozhao
    Zhao, Huihui
    He, Zhengzhong
    Shi, Liting
    He, Yaoyao
    Ju, Nan
    Rong, Yi
    Qiu, Jianfeng
    QUANTITATIVE IMAGING IN MEDICINE AND SURGERY, 2019, 9 (01) : 94 - 100
  • [23] Design and fabrication of customized brain slice matrices using CAD and 3D printing technology
    Yamazaki, Yosuke
    Yuguchi, Maki
    Honjo, Bin
    Isokawa, Keitaro
    PLOS ONE, 2025, 20 (01):
  • [24] 3D Printing, Inkjet Printing and Embroidery Techniques for Wearable Antennas
    Whittow, William G.
    2016 10TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION (EUCAP), 2016,
  • [25] 3D printing technology for RF and THz antennas
    Liang, Min
    Wu, Junqiang
    Yu, Xiaoju
    Xin, Hao
    2016 INTERNATIONAL SYMPOSIUM ON ANTENNAS AND PROPAGATION (ISAP), 2016, : 536 - 537
  • [26] 3D Printing Electrically Small Spherical Antennas
    Kim, Oleksiy S.
    2013 IEEE ANTENNAS AND PROPAGATION SOCIETY INTERNATIONAL SYMPOSIUM (APSURSI), 2013, : 776 - +
  • [27] MULLITE CERAMIC FABRICATION BY 3D PRINTING
    Lee, Ruey-Tsung
    Cheng, Wei-Seng
    Lee, Ching-Sheng
    Lin, Fang-Fei
    Liu, Fwu-Hsing
    PROCEEDINGS OF THE 7TH INTERNATIONAL CONFERENCE ON MECHANICS AND MATERIALS IN DESIGN (M2D2017), 2017, : 779 - 784
  • [28] Recent Research Trend in Microneedle Fabrication Using 3D Printing
    Choo, Sangmin
    Jung, Jae Hwan
    APPLIED CHEMISTRY FOR ENGINEERING, 2021, 32 (04): : 379 - 384
  • [29] Fabrication of Sophisticated Microstructures using Weak Support in 3D Printing
    Yu, Zhongwei
    Deng, Xinghong
    Shao, Guangbin
    Li, Longqiu
    MACROMOLECULAR MATERIALS AND ENGINEERING, 2022, 307 (02)
  • [30] Fabrication of Engineered Vascular Flaps using 3D Printing Technologies
    Machour, Majd
    Szklanny, Ariel A.
    Levenberg, Shulamit
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2022, (183):