Development of microfluidically reconfigurable antenna using additive manufacturing

被引:1
作者
Patel, Priyanka [1 ]
Subramanian, Karthikeyan Sholampettai [1 ]
机构
[1] Natl Inst Technol, ECE Dept, Tiruchirappalli, Tamil Nadu, India
关键词
Additive manufacturing; Frequency reconfigurable; Fused deposition modeling (FDM); Polylactic acid (PLA); MONOPOLE ANTENNA; FREQUENCY;
D O I
10.1016/j.aeue.2024.155290
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
This research presents a microfluidically reconfigurable additively manufactured antenna. The proposed configuration demonstrates the applicability of additive manufacturing (AM) for fabricating intricate and lightweight structures. Additionally, it established the feasibility of microfluidic technology for achieving continuous frequency reconfigurability. The proposed antenna utilizes the dielectric fluid for reconfiguration, facilitated by pumping it in and out of microfluidic structures using a syringe pump. The incorporation of dielectric fluid in the channels alters the effective dielectric constant of the substrate and causes perturbations in the electric field distributions around the metallic patch. To validate the proposed idea, a prototype of the microfluidically reconfigurable 3D -printed antenna is designed, fabricated, and tested. The operating frequency is reconfigured from 2.38 to 3.49 GHz with a tuning range of 1.11 GHz, and the radiation pattern remains stable across considered cases. It is observed that measured results are in good agreement with simulated values. The prototype of the antenna design is fabricated using a single machining process, eliminating the need for traditional machining. The proposed antenna's configuration is advantageous for various applications such as IEEE802.11b/g/n, IEEE802.15.1, and IEEE802.16.
引用
收藏
页数:9
相关论文
共 32 条
[1]  
Al Ahmad M, 2021, Compact single-varactor diode frequency-reconfigurable microstrip patch antenna
[2]   Aperture-Coupled Liquid Metal Tunable Dipole [J].
Banting, Hayden ;
Saavedra, Carlos E. .
2020 IEEE INTERNATIONAL SYMPOSIUM ON ANTENNAS AND PROPAGATION AND NORTH AMERICAN RADIO SCIENCE MEETING, 2020, :605-606
[3]   Frequency Reconfigurable Antenna Designs Using PIN Diode for Wireless Communication Applications [J].
Boufrioua, Amel .
WIRELESS PERSONAL COMMUNICATIONS, 2020, 110 (04) :1879-1885
[4]   3-D Printed Metal-Pipe Rectangular Waveguides [J].
D'Auria, Mario ;
Otter, William J. ;
Hazell, Jonathan ;
Gillatt, Brendan T. W. ;
Long-Collins, Callum ;
Ridler, Nick M. ;
Lucyszyn, Stepan .
IEEE TRANSACTIONS ON COMPONENTS PACKAGING AND MANUFACTURING TECHNOLOGY, 2015, 5 (09) :1339-1349
[5]  
Dang JH, 2015, Liquid-metal frequency-reconfigurable slot antenna using air-bubble actuation
[6]   Frequency tunable microstrip patch antenna using RF MEMS technology [J].
Erdil, Emre ;
Topalli, Kagan ;
Unlu, Mehmet ;
Civi, Ozlem Aydin ;
Akin, Tayfun .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2007, 55 (04) :1193-1196
[7]   Broadband liquid antenna [J].
Fayad, H ;
Record, P .
ELECTRONICS LETTERS, 2006, 42 (03) :133-134
[8]  
Fenn AJ, 3D Printed Conformal Array Antenna: Simulations and Measurements
[9]   Confirming Self-Regulation Construct Items for Students Learning Statics [J].
Haron, Habibah Norehan ;
Hussain, Noor Hamizah ;
Salim, Kamilah Radin ;
Ali, Rosmah ;
Harun, Hafizah .
2014 INTERNATIONAL CONFERENCE ON TEACHING AND LEARNING IN COMPUTING AND ENGINEERING (LATICE), 2014, :158-162
[10]   Angular Momentum Multiplexing via a Shared Aperture Patch Antenna [J].
He, Xiaoyuan ;
Deng, Li ;
Feng, Botao ;
Chung, Kwok L. ;
Yin, Liang ;
Chen, Lijie .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2023, 71 (07) :5532-5541