TY - GEN
T1 - Design Guidelines Using Groove Gap-Waveguide Technology for Realizing a Millimeter-Wave 4×4 Butler Beamforming Matrix for Space Multiplexing
AU - Alibakhshikenari, Mohammad
AU - Virdee, Bal
AU - Zakeri, Hassan
AU - Limiti, Ernesto
AU - Saber, Takfarinas
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - This paper presents a practical design guideline for implementing a 4×4 Butler Beamforming Matrix (BBM) using Groove Gap-Waveguide (GGW) technology to enable multi-beam functionality. The proposed BBM consists of 3-dB hybrid directional couplers, crossovers, phase shifters, and phase compensators. A GGW-inspired unit-cell is optimized to provide a wide stopband spanning 22-40GHz. This unit-cell is employed to realize the BBM's structural components, ensuring broadband operation across 30-40GHz and achieving the required phase shifts for multi-beam capability. By integrating these components according to the proposed architecture, a compact and efficient 4×4 BBM suitable for antenna arrays in space multiplexing systems is realized. This design approach can be extended to other beamforming networks such as Nolen and larger-scale Butler matrices. Key advantages include a straightforward design process, wideband operation, low-loss, low-profile, ease of fabrication, and cost-effectiveness, making it well-suited for applications in satellite communications, space multiplexing, and radar tracking systems at millimeter-wave frequencies.
AB - This paper presents a practical design guideline for implementing a 4×4 Butler Beamforming Matrix (BBM) using Groove Gap-Waveguide (GGW) technology to enable multi-beam functionality. The proposed BBM consists of 3-dB hybrid directional couplers, crossovers, phase shifters, and phase compensators. A GGW-inspired unit-cell is optimized to provide a wide stopband spanning 22-40GHz. This unit-cell is employed to realize the BBM's structural components, ensuring broadband operation across 30-40GHz and achieving the required phase shifts for multi-beam capability. By integrating these components according to the proposed architecture, a compact and efficient 4×4 BBM suitable for antenna arrays in space multiplexing systems is realized. This design approach can be extended to other beamforming networks such as Nolen and larger-scale Butler matrices. Key advantages include a straightforward design process, wideband operation, low-loss, low-profile, ease of fabrication, and cost-effectiveness, making it well-suited for applications in satellite communications, space multiplexing, and radar tracking systems at millimeter-wave frequencies.
KW - 4×4 Butler Beamforming Matrix (BBM)
KW - groove gap-waveguide (GGW) technology
KW - Ka-band
KW - millimeter-wave (mm-wave)
KW - space multiplexing
UR - http://hdl.handle.net/10379/19525
UR - https://www.scopus.com/pages/publications/105033953289
U2 - 10.13025/30314
DO - 10.13025/30314
M3 - Conference Publication
T3 - Asia-Pacific Microwave Conference Proceedings, APMC
BT - APMC 2025 - 2025 Asia-Pacific Microwave Conference
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2025 Asia-Pacific Microwave Conference, APMC 2025
Y2 - 2 December 2025 through 5 December 2025
ER -