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January 18, 2026International Journal of Microwave and Wireless Technologies0 citationsOpen Access

Detailed analysis of Fresnel-based lens antennas with reduced antenna reflections for millimeter wave radars

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NMNiklas MuckermannRSRobin SchmitzJBJan Barowski

Key Points

  • This work aims to improve Fresnel lens antennas by minimizing reflections and optimizing design parameters.
  • Investigated design modifications to Fresnel-based lens antennas.
  • Analyzed effects of Fresnel steps and manufacturing tolerances on performance.
  • Conducted measurements to validate design efficacy.
  • Reduced internal reflections by over 13 dB.
  • Increased measurement range for Tank Level Probing Radar applications.
  • Achieved size and weight reductions of 41% and 34%, respectively.

Abstract

Abstract Dielectric lens antennas provide significant advantages for various radar-based applications. While an ellipsoidal geometry is often utilized due to its beneficial antenna characteristics and its point-like feed into the lens, its length and antenna reflections are drawbacks for some applications. In this work, we investigate the design of a Fresnel-based lens antenna to overcome these limitations. A quasioptical design is presented, highlighting its ability to reduce internal reflections of lens antennas. Additionally, the effects of the number of Fresnel steps and manufacturing tolerances are analyzed. Measurements validate the design and demonstrate the reduction of internal reflections by more than 13 dB, leading to an increased measurement range in a Tank Level Probing Radar scenario and a size and weight reduction of 41% and 34%, respectively.

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Cite This Study

Muckermann et al. (2026) studied this question.

synapsesocial.com/papers/696c77d4eb60fb80d1396013https://doi.org/10.1017/s1759078725102687
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