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May 20, 20260 citationsOpen Access

Technique for treating discrete received power in radio measurements from the RAD1 receiver on board WIND

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SWS.J. WalkerCJC M JackmanAFA.R. Fogg

Key Points

  • The study aims to improve the analysis of radio emissions by reconstructing missing frequency information in measurements from the RAD1 receiver.
  • Developed a method to exploit the instrument's native sampling cadence of approximately 3 seconds.
  • Applied the method to one solar Type III radio burst and two auroral kilometric radiation events.
  • Compared results with traditional frequency sweep approaches that average received power over longer timescales.
  • Reconstructed power analysis revealed previously unresolved substructures in auroral kilometric radiation behavior.
  • Method demonstrated increased temporal variability in power analysis and improved peak timing during solar radio bursts.
  • Findings suggest enhanced clarity in visualizing overlapping radio emissions compared to traditional methods.

Abstract

The radio instruments within the WIND WAVES suite are widely used to observe terrestrial radio emissions, such as Auroral Kilometric Radiation (AKR), and solar radio bursts. However, instruments like radio receiver band 1 (RAD1) cannot observe multiple frequency channels simultaneously. Common observational modes sweep only a subset of available channels, and even full sweeps leave gaps between channels, resulting in ≈255 kHz of unsampled frequency space. Consequently, visualising and analysing received power as a continuous function of time and frequency requires methods to address these gaps. We present a simple approach that reconstructs missing frequency information by exploiting the instrument's native sampling cadence (≈ 3 s). Previous studies typically average the received power over a full frequency sweep (≈ 183 s), whereas our method retains variability on timescales constrained by the minimum interval between successive observations of the same frequency channel (≈ 44 s). We apply this method to one solar Type III radio burst and two AKR events, comparing results with traditional approaches. Our method suggests previously unresolved substructures in AKR, consistent with a potentially bursty extension of the source region along magnetic field lines, and enables clearer separation of partially overlapping solar radio bursts. Integrated power analysis across selected frequency ranges indicates increased temporal variability and improved peak timing, demonstrating the method's advantages beyond visualisation.

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Cite This Study

Walker et al. (2026) studied this question.

synapsesocial.com/papers/6a0d4f4cf03e14405aa9a868https://doi.org/10.25935/prex-ztza
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Features of Auroral Kilometric Radiation in the Solar Wind2026
  2. 2Dual-Channel Broadband Decimeter-Wave Solar Radio Spectrometer System Based on SDR2026
  3. 3Development of a 90–600 MHz Meter-wave Solar Radio Spectrometer2024 · 12 citations
  4. 4Frequency Extensions of Auroral Kilometric Radiation: The Key to Unlocking Earth's Radio Response to Substorms2026
  5. 5A Framework for Multitype Solar Radio Burst Detection and Automated Parameter Extraction2026