DocumentCode :
1431635
Title :
1.6- and 3.3-W power-amplifier modules at 24 GHz using waveguide-based power-combining structures
Author :
Jinho Jeon ; Kwon, Youngwoo ; Lee, Sunyoung ; Cheon, Changyul ; Sovero, Emilio A.
Author_Institution :
Sch. of Electr. Eng., Seoul Nat. Univ., South Korea
Volume :
48
Issue :
12
fYear :
2000
fDate :
12/1/2000 12:00:00 AM
Firstpage :
2700
Lastpage :
2708
Abstract :
Both 1.6- and 3.3-W power-amplifier (PA) modules were developed at 24 GHz using a waveguide-based power combiner. The combiner is based on a double antipodal finline-to-microstrip transition structure, which also serves as a two-way power combiner. The proposed 1×2 combining structure was analyzed and optimized by finite-element-method (FEM)-simulations and experiments. An optimized 1×2 power combiner showed a very low back-to-back insertion loss of 0.6 dB and return losses better than 17 dB over most of Ka-band. The resonant behavior of the combiner was also identified and analyzed using an FEM simulator. The two-way power-combining approach was extended to four-way (2×2) power combining by vertical stacking inside the waveguide. No degradation in the combining efficiency was observed during this process, demonstrating the scalability of the proposed approach. The implemented 1×2 power module that combines two 1-W monolithic-microwave integrated-circuit (MMIC) PAs showed an output power of 1.6 W and a combining efficiency of 83% around 24 GHz. The 2×2 PA module combining the four 1-W MMICs showed an output power of 3.3 W together with an almost identical combining efficiency. This paper demonstrates the potential of the proposed power combiner for high-power amplification at millimeter-wave frequencies
Keywords :
MIMIC; MMIC power amplifiers; fin lines; finite element analysis; losses; microstrip transitions; millimetre wave power amplifiers; power combiners; 0.6 dB; 1.6 W; 24 GHz; 3.3 W; 83 percent; FEM simulator; Ka-band; MMIC; back-to-back insertion loss; combining efficiency; double antipodal finline-to-microstrip transition structure; finite-element-method; high-power amplification; millimeter-wave frequencies; output power; power-amplifier modules; resonant behavior; return losses; vertical stacking; waveguide-based power-combining structures; Analytical models; Degradation; Finite element methods; Insertion loss; MMICs; Power combiners; Power generation; Resonance; Scalability; Stacking;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/22.899033
Filename :
899033
Link To Document :
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