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Thermal and turbulence characteristics of fast and slow coronal mass ejections at 1 AU

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dc.contributor.author Khuntia, Soumyaranjan
dc.contributor.author Mishra, Wageesh
dc.date.accessioned 2026-01-01T04:39:18Z
dc.date.available 2026-01-01T04:39:18Z
dc.date.issued 2025-12
dc.identifier.citation Journal of Astrophysics and Astronomy, Vol. 46, No. 2, 70 en_US
dc.identifier.issn 0973-7758
dc.identifier.uri http://hdl.handle.net/2248/8840
dc.description Restricted Access en_US
dc.description The original publication is available at springerlink.com
dc.description.abstract Understanding thermal and turbulence properties of interplanetary coronal mass ejections (ICMEs) is essential for analysing their evolution and interactions with the surrounding medium. This study explores these characteristics across different regions of two distinct ICMEs observed at 1 AU, utilizing in situ measurements from the Wind spacecraft. Polytropic indices (e for electrons and p for protons) reveal significant deviations from adiabatic expansion, suggesting sustained heating mechanisms within the ICMEs even at 1 AU. Effective polytropic index (eff) of the magnetic ejecta (ME) in both ICME1 and ICME2 is found to be near-isothermal (eff = 0.88 and 0.76), aligning with measurements near the Sun, highlighting consistent heating across heliospheric distances. Spectral analysis at the inertial scale reveals Kolmogorov-like turbulence in the fast ICME1’s ME, while ME of the slower ICME2 exhibits less-developed turbulence with a shallower spectral index (αB). Turbulence analysis in the dissipation scale indicates that the ME of slower ICME2 is less affected by the ambient medium than the faster ICME2. The MEs of both ICMEs show magnetic compressibility much smaller than unity (CB < 1), suggesting dominant Alfvénic fluctuations in the MEs. Notably, the partial variance of increments (PVI) method identifies more intermittent structures, such as current sheets and reconnection sites, in sheath and post-ICME regions. Higher PVI values correlate with regions of increased electron and proton temperatures (for the sheath region) as well as higher CB values, highlighting their role in local energy dissipation. These results enchance the importance of ongoing heating and turbulence processes in shaping the evolution of ICMEs. en_US
dc.language.iso en en_US
dc.publisher Springer Nature en_US
dc.relation.uri https://doi.org/10.1007/s12036-025-10085-5
dc.rights © Indian Academy of Sciences
dc.subject Sun: coronal mass ejections (CMEs) en_US
dc.subject Sun: heliosphere en_US
dc.subject Sun: solar-terrestrial relations en_US
dc.title Thermal and turbulence characteristics of fast and slow coronal mass ejections at 1 AU en_US
dc.type Article en_US


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