Title :
Theory and Design of Intrinsically Switched Multiplexers With Optimum Phase Linearity
Author :
Guyette, Andrew C.
Author_Institution :
Naval Res. Lab., Washington, DC, USA
Abstract :
This paper presents the theory, design, and implementation of a new class of component called an intrinsically switched multiplexer, which is comprised of a number of contiguous bandpass filter channels that can be independently switched on and off with very low architecture-related insertion loss and flat group delay across adjacent switched-on channels. Coupled-resonator filter topologies are identified that allow for optimum performance of contiguous bandpass channel filters through the crossover frequencies, and a new intrinsically switched coupling section that provides for low on-state insertion loss and high broadband off-state isolation is presented. In addition, it is shown that the channel filters can be combined in a scalable fashion with the use of lossy manifolds. A three-channel eight-state intrinsically switched multiplexer microstrip prototype was designed, built, and tested and gives 6.7 dB of passband insertion loss and 0.15-ns p-p group delay ripple over 72% of the passband.
Keywords :
band-pass filters; microstrip filters; multiplexing equipment; adjacent switched-on channels; architecture-related insertion loss; contiguous bandpass channel filters; coupled-resonator filter topologies; flat group delay; gain 6.7 dB; high broadband off-state isolation; intrinsically switched coupling section; low on-state insertion loss; optimum phase linearity; p-p group delay ripple; passband insertion loss; three-channel eight-state intrinsic switched multiplexer microstrip prototype; time 0.15 ns; Arrays; Couplings; Insertion loss; Manifolds; Multiplexing; Switches; Topology; Filters; microstrip filters; resonator filters; tunable circuits and devices;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2013.2274963