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Statistical Study of the Non-Thermal Continuum Radiation Beaming Angle Measured By the High Frequency Receiver on Van Allen Probes-AThe nonthermal continuum (NTC) radiation beaming angle is computed over the entire Van Allen Probes-A mission when the spacecraft was in the dawn sector. The conditions in the dawn sector are favorable for the wave vector to lie near/in the spacecraft's spin plane allowing a favorable estimate of the beaming angle, and the dawn sector is also advantageous in that previous studies show NTC occurrence to peak in this sector. We found that scatter plots, over the entire mission, of beaming angle versus magnetic latitude form a distinct inverted-V pattern, with the apex at/near the magnetic equator. This pattern was sharpest for frequencies (f) ≲ 100 kHz. Using the NTC beaming formula from the linear mode conversion theory (LMCT), we show that such an inverted-V pattern is expected due to the large variation in the plasmapause location over the entire mission. The theoretical derived pattern qualitatively reproduces the observed pattern but not quantitatively. The lack of quantitative agreement is discussed and is attributed to several factors, one factor is off-centered emissions from the radio window. The qualitative agreement strongly supports LMCT as being the dominant mechanism generating NTC for f ≲ 100 kHz. For f ≳ 100 kHz, the inverted-V pattern becomes less distinct, and strong near-equatorial beaming is observed. After considering contamination of our selections by left-handed polarized AKR, our study suggests that besides LMCT another unidentified NTC generation mechanism becomes important for f ≳ 100 kHz.
Document ID
20230012908
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Scott A Boardsen
(University of Maryland, Baltimore County Baltimore, Maryland, United States)
E.-H. Kim ORCID
(Princeton Plasma Physics Laboratory Plainsboro Center, New Jersey, United States)
J. L. Green
(Space Science Endeavors)
C. Z. Cheng
(Princeton Plasma Physics Laboratory Plainsboro Center, New Jersey, United States)
I. H. Cairns ORCID
(University of Sydney Sydney, New South Wales, Australia)
J. R. Johnson ORCID
(Andrews University Berrien Springs, Michigan, United States)
Date Acquired
September 5, 2023
Publication Date
September 1, 2023
Publication Information
Publication: JGR: Space Physics
Publisher: American Geophysical Union
Volume: 128
Issue: 9
Issue Publication Date: September 1, 2023
e-ISSN: 2169-9402
Subject Category
Space Sciences (General)
Funding Number(s)
CONTRACT_GRANT: 80NSSC21M0180
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
Linear Mode Conversion Theory
Nonthermal Continuum Radiation
Terrestrial Myriametric Radiation
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