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Ka‐band coupled‐resonator bandpass filter based on printed ridge gap waveguide for millimetre‐wave application
by
Hu, Xiaojun
, Xu, Feng
in
Antenna arrays
/ Bandpass filters
/ Bandwidths
/ Communications systems
/ Computer simulation
/ Dielectric loss
/ Filters and other networks
/ Frequency response
/ Insertion loss
/ Passive filters and other passive networks
/ Resonators
/ Wave propagation
/ Waveguide and microwave transmission line components
/ Waveguides
/ Waveguides and microwave transmission lines
2021
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Ka‐band coupled‐resonator bandpass filter based on printed ridge gap waveguide for millimetre‐wave application
by
Hu, Xiaojun
, Xu, Feng
in
Antenna arrays
/ Bandpass filters
/ Bandwidths
/ Communications systems
/ Computer simulation
/ Dielectric loss
/ Filters and other networks
/ Frequency response
/ Insertion loss
/ Passive filters and other passive networks
/ Resonators
/ Wave propagation
/ Waveguide and microwave transmission line components
/ Waveguides
/ Waveguides and microwave transmission lines
2021
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Do you wish to request the book?
Ka‐band coupled‐resonator bandpass filter based on printed ridge gap waveguide for millimetre‐wave application
by
Hu, Xiaojun
, Xu, Feng
in
Antenna arrays
/ Bandpass filters
/ Bandwidths
/ Communications systems
/ Computer simulation
/ Dielectric loss
/ Filters and other networks
/ Frequency response
/ Insertion loss
/ Passive filters and other passive networks
/ Resonators
/ Wave propagation
/ Waveguide and microwave transmission line components
/ Waveguides
/ Waveguides and microwave transmission lines
2021
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Ka‐band coupled‐resonator bandpass filter based on printed ridge gap waveguide for millimetre‐wave application
Journal Article
Ka‐band coupled‐resonator bandpass filter based on printed ridge gap waveguide for millimetre‐wave application
2021
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Overview
A low‐loss Ka‐band coupled‐resonator bandpass filter based on the printed ridge gap waveguide (PRGW) technology is presented for millimetre‐wave communication applications. The PRGW is employed to allow electromagnetic‐wave propagation in the air gap in order to avoid dielectric loss and improve transmission performance which is suitable for millimetre‐wave applications. The bandpass filter is implemented with two transmission zeros which are easily obtained by adjusting the stub length of two T‐shape stub‐loaded resonators (SLR). From its simulation frequency response, the filter has an insertion loss of 0.8 dB, a return loss less than −20 dB during the passband and high selectivity in cut‐off frequency. The prototype of the proposed filter is fabricated and tested and a good agreement can be observed between the measured and simulated results.
Publisher
John Wiley & Sons, Inc,Wiley
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