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Diffusion Coefficients, Short-Term Cosmic Ray Modulation, and Convected Magnetic Structures
Author(s) -
J. J. Quenby,
T. Mulligan,
J. B. Blake,
D. Shaul
Publication year - 2013
Publication title -
advances in astronomy
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.364
H-Index - 34
eISSN - 1687-7977
pISSN - 1687-7969
DOI - 10.1155/2013/429303
Subject(s) - physics , cosmic ray , heliosphere , diffusion , ejecta , computational physics , interplanetary magnetic field , magnetic field , astrophysics , interplanetary medium , particle (ecology) , mechanics , solar wind , interplanetary spaceflight , oceanography , quantum mechanics , supernova , thermodynamics , geology
Three cases of large-amplitude, small spatial-scale interplanetary particle gradients observed by the anticoincidence shield (ACS) aboard the INTEGRAL spacecraft in 2006 are investigated. The high data rates provided by the INTEGRAL ACS allow an unprecedented ability to probe the fine structure of GCR propagation in the inner Heliosphere. For two of the three cases, calculating perpendicular and parallel cosmic ray diffusion coefficients based on both field and particle data results in parallel diffusion appearing to satisfy a convection gradient current balance, provided that the magnetic scattering of the particles can be described by quasi-linear theory. In the third case, perpendicular diffusion seems to dominate. The likelihood of magnetic flux rope topologies within solar ejecta affecting the local modulation is considered, and its importance in understanding the field-particle interaction for the astrophysics of nonthermal particle phenomena is discussed

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