Digital Manufacturing of Pathologically-Complex 3D Printed Antennas

被引:25
作者
Johnson, Kerry [1 ]
Zemba, Michael [2 ]
Conner, Brett P. [1 ]
Walker, Jason [1 ]
Burden, Edward [1 ]
Rogers, Kirk [3 ]
Cwiok, Kevin R. [4 ]
MacDonald, Eric [1 ]
Cortes, Pedro [1 ]
机构
[1] Youngstown State Univ, Adv Mfg Res Ctr, Youngstown, OH 44555 USA
[2] NASA, Glenn Res Ctr, Cleveland, OH 44135 USA
[3] M&P Grav Works LLC, North Lima, OH USA
[4] Keselowski Adv Mfg, Statesville, NC 28677 USA
基金
美国国家科学基金会;
关键词
3D printing; 3D printed antennas; 3D Hilbert curve; additive manufacturing; antenna radiation pattern; binder jetting; dipole antennas; fractal antenna; multifrequency antennas; powder-bed fusion; ultra high frequency; UHF; vat photopolymerization; FRACTAL ANTENNA; DESIGN; MONOPOLE;
D O I
10.1109/ACCESS.2019.2906868
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In the last decade, the proliferation of new 3D printing technologies has enabled the fabrication of complex geometries in manifold materials for novel applications. One discipline that has been explored extensively in the context of additive manufacturing is electromagnetic devices such as antennas. Difficultto-fabricate geometries are now possible and can deliver new antenna functionality and extend performance (e.g., lower frequency resonance in small volumes, wider bandwidth, narrow-beam directionality, and so on). Coupled with accurate 3D electromagnetic simulations, a new paradigm is emerging for antenna design and manufacture. Starting from a seed geometry, the state space can now be explored to identify new combinations and permutations of electromagnetically-beneficial shapes through multiple simulation iterations. Subsequently, the identified structures can be further validated and improved through rapid manufacturing using 3D printing for hardware evaluation in an anechoic chamber. However, to fully benefit from this emerging paradigm, an up-to-date survey of the most recent metal processes is required. This survey would determine which processes are well suited for building the next generation of antennas. For this purpose, a variety of metal 3D printing was employed to fabricate benchmark antennas with pathological geometries, including thin walls, overhanging features, and large aspect ratios. This survey can inform designers about potential structures to serve in novel antennas. A total of five processes have been preliminarily explored including selective laser melting, binder jetting, and plated vat photopolymerization, all of which delivered different advantages and disadvantages in terms of mechanical and electromagnetic performance.
引用
收藏
页码:39378 / 39389
页数:12
相关论文
共 81 条
[1]   Conformal Printing of Electrically Small Antennas on Three-Dimensional Surfaces [J].
Adams, Jacob J. ;
Duoss, Eric B. ;
Malkowski, Thomas F. ;
Motala, Michael J. ;
Ahn, Bok Yeop ;
Nuzzo, Ralph G. ;
Bernhard, Jennifer T. ;
Lewis, Jennifer A. .
ADVANCED MATERIALS, 2011, 23 (11) :1335-1340
[2]   Omnidirectional Printing of Flexible, Stretchable, and Spanning Silver Microelectrodes [J].
Ahn, Bok Y. ;
Duoss, Eric B. ;
Motala, Michael J. ;
Guo, Xiaoying ;
Park, Sang-Il ;
Xiong, Yujie ;
Yoon, Jongseung ;
Nuzzo, Ralph G. ;
Rogers, John A. ;
Lewis, Jennifer A. .
SCIENCE, 2009, 323 (5921) :1590-1593
[3]   Planar and Three-Dimensional Printing of Conductive Inks [J].
Ahn, Bok Yeop ;
Walker, Steven B. ;
Slimmer, Scott C. ;
Russo, Analisa ;
Gupta, Ashley ;
Kranz, Steve ;
Duoss, Eric B. ;
Malkowski, Thomas F. ;
Lewis, Jennifer A. .
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2011, (58)
[4]  
[Anonymous], 2016, 2016 10 EUR C ANT PR
[5]  
[Anonymous], ANTENNAS PROPAG
[6]  
[Anonymous], 2014, WAMICON 2014
[7]  
[Anonymous], 2013, 2013 IEEE MTT S INT
[8]  
Arnal Nicholas, 2015, 2015 IEEE MTT-S International Microwave Symposium (IMS2015), P1, DOI 10.1109/MWSYM.2015.7167154
[9]   A New Super Wideband Fractal Microstrip Antenna [J].
Azari, Abolfazl .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2011, 59 (05) :1724-1727
[10]  
Bahr RA, 2017, IEEE MTT S INT MICR, P1583, DOI 10.1109/MWSYM.2017.8058934