TY - JOUR
T1 - SLM Printed Millimeter-Wave Multibeam Antenna Array Based on Filtering Butler Matrix
AU - Li, Jianxing
AU - Wu, Sifan
AU - Cao, Yuanxi
AU - Chen, Xiaoming
AU - Li, Yujian
AU - Zhang, Xiu Yin
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2024/4/1
Y1 - 2024/4/1
N2 - In this communication, a 3-D-printed filtering Butler matrix-based 1×4 multibeam antenna array is investigated in the Ka-band. The Butler matrix consists of all-resonator 180° filtering hybrids, 90° couplers, and phase shifters, providing incremental phase gradients along with a bandpass characteristic. Four wideband horns are employed as the radiator array. The proposed design eliminates the requirement of crossovers and connectors between the Butler matrix and radiators, resulting in a much compact structure. The 1×4 multibeam filtering antenna array prototype is monolithically fabricated using selective laser melting (SLM) 3-D printing technology. The prototype achieves an impedance bandwidth (return loss > 10 dB) of 28.1-29.8 GHz, a gain of up to 16.2 dBi, and stable radiation beams at 0°, ±23°, and ±46°. Meanwhile, beyond the operating bandwidth, the realized gain experiences a suppression of more than 30 dB. The proposed filtering Butler matrix-fed multibeam array, characterized by its high efficiency, large power capacity, and excellent frequency selectivity performance, demonstrates potential applications in millimeter-wave (mm-Wave) communication systems.
AB - In this communication, a 3-D-printed filtering Butler matrix-based 1×4 multibeam antenna array is investigated in the Ka-band. The Butler matrix consists of all-resonator 180° filtering hybrids, 90° couplers, and phase shifters, providing incremental phase gradients along with a bandpass characteristic. Four wideband horns are employed as the radiator array. The proposed design eliminates the requirement of crossovers and connectors between the Butler matrix and radiators, resulting in a much compact structure. The 1×4 multibeam filtering antenna array prototype is monolithically fabricated using selective laser melting (SLM) 3-D printing technology. The prototype achieves an impedance bandwidth (return loss > 10 dB) of 28.1-29.8 GHz, a gain of up to 16.2 dBi, and stable radiation beams at 0°, ±23°, and ±46°. Meanwhile, beyond the operating bandwidth, the realized gain experiences a suppression of more than 30 dB. The proposed filtering Butler matrix-fed multibeam array, characterized by its high efficiency, large power capacity, and excellent frequency selectivity performance, demonstrates potential applications in millimeter-wave (mm-Wave) communication systems.
KW - Butler matrix
KW - filtering antenna
KW - multibeam antenna
KW - selective laser melting (SLM)
UR - https://www.scopus.com/pages/publications/85187393567
U2 - 10.1109/TAP.2024.3372774
DO - 10.1109/TAP.2024.3372774
M3 - 文章
AN - SCOPUS:85187393567
SN - 0018-926X
VL - 72
SP - 3813
EP - 3818
JO - IEEE Transactions on Antennas and Propagation
JF - IEEE Transactions on Antennas and Propagation
IS - 4
ER -