This paper presents a compact phased-array antenna for efficient and high-gain millimeter-wave-based 3D beam steering applications. The proposed antenna array consists of 2 × 2 unit cells and each unit cell is a sub-array comprising of 2 × 2 patch elements connected to microstrip lines that are co-fed by a single coaxial cable. Two 45° phase shifting lines are incorporated in each sub-array to facilitate the wide beamsteering range. The dimensions of the proposed phased array antenna are 24 × 24 × 0.324 mm 3 . Simulation results show that the proposed phased-array antenna has a resonating frequency at 58.4 GHz with an operational bandwidth from 50.1 GHz to 77.5 GHz along with a high gain of 26.8 dBi. The array exhibits a maximum beam steering range of 105° in the elevation plane and 195° in the azimuth plane with a gain variation less than 0.9 dBi.
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Mm-Wave Beam Steering Antenna Arrays Using Microfluidically Reconfigurable Beamforming Networks
A microfluidically reconfigurable beamforming network is introduced for beam steering mm-wave antenna arrays. The beamforming network consists of a selectively metallized plate (SMP) that is encapsulated within a microfluidic channel in close proximity to multiple microstrip lines. Metallization traces of the SMP capacitively loads the microstrip lines to realize multiple slow-wave phase shifters. Varying the position of SMP over the lines creates variable phase shifts of the device. Strategically designing the SMP traces on each microstrip line leads to progressive phase shifting, resulting in operation with a single actuator. The manuscript presents a circuit model to facilitate the design of the beamforming network and presents experimental verification with a four-element antenna array operating at 28.5 GHz. The array exhibits continuous beam steering capability within ±30◦ when its SMP is actuated within its -100 to +100 μm displacement range. The beam steering speed from −30◦ to +30◦ is 75 ms. The realized gain is 5.6 dBi at broadside and 6.8 dBi at 30◦ scan angle corresponding to a radiation efficiency of 64% (including all losses in the system). The device is expected to handle 10 W of continuous RF power.
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- Award ID(s):
- 1920926
- PAR ID:
- 10558821
- Publisher / Repository:
- IEEE
- Date Published:
- Journal Name:
- IEEE Journal of Microwaves
- Volume:
- 3
- Issue:
- 4
- ISSN:
- 2692-8388
- Page Range / eLocation ID:
- 1177 to 1186
- Subject(s) / Keyword(s):
- Beam steering phased antenna array microfluidics beamforming network phase shifter millimeter wave
- Format(s):
- Medium: X
- Sponsoring Org:
- National Science Foundation
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