The Systematic Design of Non-commensurate Impedance Matching Tapers for Ultra Wideband Gradient-Index (GRIN) Lens Antennas
Wei wang, Nicolas Garcia, Jonathan Chisum

TL;DR
This paper introduces a systematic design method for wideband impedance matching tapers in inhomogeneous media, specifically for gradient-index lens antennas, improving bandwidth and efficiency predictions.
Contribution
A new algorithm for designing non-commensurate line tapers with predictable frequency response and practical fabrication considerations is proposed.
Findings
Designed a Klopfenstein taper with >15 dB return loss from 8-78 GHz.
Fabricated and measured taper performance consistent with simulations.
Proposed an efficiency formula for aperture efficiency prediction.
Abstract
We propose a general method for designing wideband matching tapers in inhomogeneous media where phase velocity is coupled to the taper impedance profile. Such tapers are used to match wideband gradient index (GRIN) lens antennas. To simplify fabrication tapers are often constrained to physically uniform layers wherein commensurate line theory cannot predict the frequency response. Therefore, we present a new design algorithm which derives an effective permittivity to equalize the electrical length of commensurate and non-commensurate line tapers. The algorithm provides a systematic design method with predictable frequency response for non-commensurate line tapers. Nevertheless, there are several unavoidable nonidealities present in such discretized tapers which we discuss and provide recommendations for mitigation. The algorithm is used to design a Klopfenstein taper…
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Taxonomy
TopicsMicrowave Engineering and Waveguides · Antenna Design and Analysis · Advanced Antenna and Metasurface Technologies
