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Ion-scale Electromagnetic Waves in the Inner Heliosphere

2019/12/05 by Trevor A. Bowen, Trevor Bowen, Alfred Mallet +48 · 128 citations
Physics and Astronomy · #Amplitude #Astro and Planetary Science #Computational physics #Heliosphere #Ionosphere and magnetosphere dynamics #Longitudinal wave #Magnetic field #Mechanical wave #Optics #Physics #Solar and Space Plasma Dynamics #Solar wind #Wave propagation #astro-ph.SR #physics.space-ph

paper · pdf · doi:10.3847/1538-4365/ab6c65

published in The Astrophysical Journal Supplement Series 246(2), 66 (Institute of Physics)

arxiv created 2019/12/05 · openalex publication_date 2020/02/01 · arxiv updated 2020/02/19 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

Abstract Understanding the physical processes in the solar wind and corona that actively contribute to heating, acceleration, and dissipation is a primary objective of NASA’s Parker Solar Probe ( PSP ) mission. Observations of circularly polarized electromagnetic waves at ion scales suggest that cyclotron resonance and wave–particle interactions are dynamically relevant in the inner heliosphere. A wavelet-based statistical study of circularly polarized events in the first perihelion encounter of PSP demonstrates that transverse electromagnetic waves at ion resonant scales are observed in 30–50% of radial field intervals. Average wave amplitudes of approximately 4 nT are measured, while the mean duration of wave events is on the order of 20 s; however, long-duration wave events can exist without interruption on hour-long timescales. Determination of wave vectors suggests propagation parallel/antiparallel to the mean magnetic field. Though ion-scale waves are preferentially observed during intervals with a radial mean magnetic field, we show that measurement constraints, associated with single spacecraft sampling of quasi-parallel waves superposed with anisotropic turbulence, render the measured coherent ion-wave spectrum unobservable when the mean magnetic field is oblique to the solar wind flow; these results imply that the occurrence of coherent ion-scale waves is not limited to a radial field configuration. The lack of radial scaling of characteristic wave amplitudes and duration suggests that the waves are generated in situ through plasma instabilities. Additionally, observations of proton distribution functions indicate that temperature anisotropy may drive the observed ion-scale waves.

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