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June 3, 20260 citations

Analysis of wave processes using beam-driven Langmuir/Z-mode waveforms generated in particle-in-cell simulations

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FPF. J. Polanco-RodríguezCKC. KrafftPSP. Savoini

Key Points

  • The study aims to analyze the roles of nonlinear decay and linear transformations of Langmuir waves in solar radio bursts.
  • Utilized two-dimensional particle-in-cell simulations to explore wave processes.
  • Employed large ensembles of virtual satellites for waveform recording in randomly inhomogeneous plasmas.
  • Conducted statistical analysis to correlate findings with spacecraft observations.
  • Quantified decay occurrence rates under varying plasma conditions.
  • Showed that plasma density turbulence significantly influences wave interactions and transformations.
  • Established a connection between simulation outcomes and in situ solar wind measurements.

Abstract

During Type III solar radio bursts, beam-driven Langmuir/ (upper-hybrid) wave turbulence is converted into electromagnetic emissions at the fundamental plasma frequency and its harmonics, through a chain of various linear and nonlinear wave processes. In this work, we mainly investigate the relative roles and interplay of two key mechanisms: the nonlinear decay of Langmuir/ waves and their linear transformations on random density fluctuations and, in particular, their mode conversion at a constant frequency into electromagnetic waves. Using two-dimensional particle-in-cell simulations, we employed a detailed diagnostic approach based on large ensembles of virtual satellites that record local waveforms, enabling a detailed temporal and spatial characterization of wave processes in randomly inhomogeneous plasmas. This method allows for a robust statistical analysis and direct comparison with spacecraft observations. The study focuses on the dependence of wave dynamics on the average level of density fluctuations and the plasma magnetization. Our results quantify the occurrence rate of decay under varying physical conditions and demonstrate how developed plasma density turbulence can significantly alter the balance between nonlinear wave-wave interactions and linear wave transformations. These findings provide new insights into the mechanisms responsible for electromagnetic emissions during type III radio bursts and strengthen the connection between numerical simulations and in situ solar wind measurements, offering a valuable framework for the interpretation of future space-based waveform observations.

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Cite This Study

Polanco-Rodríguez et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc730dee9eb8c0dce8136https://doi.org/10.1051/0004-6361/202659416/pdf
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Also Consider

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

  1. 1Plasma Instability in Front of Ejected Energetic Electrons and Type III Solar Radio Bursts2025
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  5. 5Simulation of Type III Solar Radio Bursts2005