Chorus Wave Properties From Van Allen Probes: Quantifying the Impact of the Sheath Corrected Electric Field

Author:

Hartley D. P.1ORCID,Christopher I. W.1ORCID,Kletzing C. A.1ORCID,Kurth W. S.1ORCID,Santolik O.23ORCID,Kolmasova I.23ORCID,Argall M. R.4ORCID,Ahmadi N.5ORCID

Affiliation:

1. Department of Physics and Astronomy University of Iowa Iowa City IA USA

2. Department of Space Physics Institute of Atmospheric Physics Prague Czech Republic

3. Faculty of Mathematics and Physics Charles University Prague Czech Republic

4. Space Science Center Institute for the Study of Earth, Oceans, and Space University of New Hampshire Durham NH USA

5. Laboratory for Atmospheric and Space Physics University of Colorado Boulder Boulder CO USA

Abstract

AbstractA sheath impedance model has recently been developed to describe how the variable coupling impedance between the Van Allen Probes instrumentation and the ambient plasma affects both the amplitude and phase of electric field wave measurements. Here, the impact of this sheath correction on measured chorus wave properties, including electric field wave power and the Poynting vector, is directly quantified. It is found that the sheath‐corrected electric field wave power is typically between two and nine times larger than the uncorrected measurement, depending on wave frequency. The sheath correction typically increases the Poynting flux by a factor of ∼2, and causes the polar angle of the Poynting vector to switch hemisphere from parallel to anti‐parallel propagation in ∼2% of cases. The uncorrected data exhibit significant deviations from the theoretically predicted relationship between the wave vector and the Poynting vector whereas this relationship is well‐reproduced with the sheath‐corrected observations.

Funder

National Aeronautics and Space Administration

Horizon 2020 Framework Programme

Publisher

American Geophysical Union (AGU)

Subject

General Earth and Planetary Sciences,Geophysics

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