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Whistler Waves Associated with Weak Interplanetary ShocksWe analyze the properties of 98 weak interplanetary shocks measured by the dual STEREO spacecraft over approximately 3 years during the past solar minimum. We study the occurrence of whistler waves associated with these shocks, which on average are high beta shocks (0.2 < Beta < 10). We have compared the waves properties upstream and downstream of the shocks. In the upstream region the waves are mainly circularly polarized, and in most of the cases (approx. 75%) they propagate almost parallel to the ambient magnetic field (<30 deg.). In contrast, the propagation angle with respect to the shock normal varies in a broad range of values (20 deg. to 90 deg.), suggesting that they are not phase standing. We find that the whistler waves can extend up to 100,000 km in the upstream region but in most cases (88%) are contained in a distance within 30,000 km from the shock. This corresponds to a larger region with upstream whistlers associated with IP shocks than previously reported in the literature. The maximum amplitudes of the waves are observed next to the shock interface, and they decrease as the distance to the shock increases. In most cases the wave propagation direction becomes more aligned with the magnetic field as the distance to the shock increases. These two facts suggest that most of the waves in the upstream region are Landau damping as they move away from the shock. From the analysis we also conclude that it is likely that the generation mechanism of the upstream whistler waves is taking place at the shock interface. In the downstream region, the waves are irregularly polarized, and the fluctuations are very compressive; that is, the compressive component of the wave clearly dominates over the transverse one. The majority of waves in the downstream region (95%) propagate at oblique angles with respect to the ambient magnetic field (>60 deg.). The wave propagation with respect to the shock-normal direction has no preferred direction and varies similarly to the upstream case. It is possible that downstream fluctuations are generated by ion relaxation as suggested in previous hybrid simulation shocks.
Document ID
20140006630
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Velez, J. C. Ramirez
(Universidad Nacional Autonoma de Mexico Ensenada, Mexico)
Blanco-Cano, X.
(Universidad Nacional Autonoma de Mexico Mexico City, Mexico)
Aguilar-Rodriguez, E.
(Universidad Nacional Autonoma de Mexico Morelia, Mexico)
Russell, C. T.
(California Univ. Los Angeles, CA, United States)
Kajdic, P.
(Universidad Nacional Autonoma de Mexico Mexico City, Mexico)
Jian,, L. K.
(Maryland Univ. College Park, MD, United States)
Luhmann, J. G.
(California Univ. Berkeley, CA, United States)
Date Acquired
June 3, 2014
Publication Date
November 1, 2012
Publication Information
Publication: Journal of Geophysical Research
Volume: 117
Issue: A11
Subject Category
Geophysics
Report/Patent Number
GSFC-E-DAA-TN9492
Report Number: GSFC-E-DAA-TN9492
Funding Number(s)
CONTRACT_GRANT: NAS5-03131
CONTRACT_GRANT: CONACyT 101625
CONTRACT_GRANT: PAPIT IN-110511-3
CONTRACT_GRANT: PAPIIT IN1009112
CONTRACT_GRANT: DGAPA 110511-3
CONTRACT_GRANT: NNG08EK33C
CONTRACT_GRANT: CONACyT 81154
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
Whistler waves
solar wind
interplanetary shock
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