MULTIFREQUENCY MILLIMETER-WAVE RADAR SYSTEM FOR ATMOSPHERIC SONDING: CALIBRATION, CONSISTENCY, AND DATA MERGE

Authors

DOI:

https://doi.org/10.18372/2310-5461.71.21436

Keywords:

multi-frequency millimeter-wave radar, atmospheric remote sensing, inter-instrument consistency, interband consistency, data fusion, Mie scattering, disdrometer, rain attenuation, K/Ka/W bands

Abstract

The growing use of K-, Ka-, and W-band millimeter-wave radars requires physically consistent multi-frequency calibration and inter-instrument agreement. This paper presents the principles of designing a multi-frequency radar system for atmospheric remote sensing that integrates K-, Ka-, and W-band channels within a unified and physically consistent measurement architecture. A methodology for inter-instrument and interband consistency is proposed based on multi-sensor data fusion. The approach employs rain events as natural distributed reference targets, with disdrometer-based reflectivity estimates computed from measured drop size distributions using Mie theory and T-matrix methods, together with attenuation correction for rain and atmospheric gases.

Algorithms for compensating fall-time delay, drop evaporation, and two-way path-integrated attenuation are implemented. The results demonstrate that after applying these corrections, physically consistent interband agreement is achieved, systematic inter-instrument reflectivity offsets are reduced, and correlation between radar and disdrometer observations improves across all three frequency bands. The long-term stability of interband relationships and consistency coefficients is also analyzed. The obtained results are relevant for aviation meteorology, climate research, and millimeter-wave propagation modeling in 5G/6G communication systems. The proposed integrated framework of “consistency – physical coherence – data fusion” provides a foundation for the development of next-generation multi-frequency atmospheric sensing platforms.

Author Biographies

Felix Yanovsky, National University "Kyiv Aviation Institute", Kyiv, Ukraine

Doctor of Technical Sciences, Professor

Oleksandr Pitertsev, National University "Kyiv Aviation Institute", Kyiv, Ukraine

PhD

Herman Russchenberg, Delft University of Technology (TU Delft), The Netherlands

PhD, Professor of Atmospheric Remote Sensing

Christine Unal, Delft University of Technology (TU Delft), The Netherlands

Researcher

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Published

2026-09-10

How to Cite

Yanovsky, F., Pitertsev, O., Russchenberg, H., & Unal, C. (2026). MULTIFREQUENCY MILLIMETER-WAVE RADAR SYSTEM FOR ATMOSPHERIC SONDING: CALIBRATION, CONSISTENCY, AND DATA MERGE. Science-Based Technologies, 71(3), 403–421. https://doi.org/10.18372/2310-5461.71.21436

Issue

Section

Information technology and electronics