Please use this identifier to cite or link to this item: http://library.iigm.res.in:8080/xmlui/handle/123456789/755
Title: Quantitative understanding of Forbush decrease drivers based on shock-only and CME-only models using global signature of February 14, 1978 event
Authors: Raghav, Anil
Bhaskar, Ankush
Lotekar, Ajay
Vichare, Geeta
Yadav, Virendra
Keywords: Magnetohydrodynamics
Cosmic ray experiments
Solar physics
Forbush decrease
Coronal mass ejections
FD models
Issue Date: 2014
Citation: Journal of Cosmology and Astroparticle Physics, v.2014, 2014, doi: 10.1088/1475-7516/2014/10/074
Abstract: We have studied the Forbush decrease (FD) event that occurred on February 14, 1978 using 43 neutron monitor observatories to understand the global signature of FD. We have studied rigidity dependence of shock amplitude and total FD amplitude. We have found almost the same power law index for both shock phase amplitude and total FD amplitude. Local time variation of shock phase amplitude and maximum depression time of FD have been investigated which indicate possible effect of shock/CME orientation. We have analyzed rigidity dependence of time constants of two phase recovery. Time constants of slow component of recovery phase show rigidity dependence and imply possible effect of diffusion. Solar wind speed was observed to be well correlated with slow component of FD recovery phase. This indicates solar wind speed as possible driver of recovery phase. To investigate the contribution of interplanetary drivers, shock and CME in FD, we have used shock-only and CME-only models. We have applied these models separately to shock phase and main phase amplitudes respectively. This confirms presently accepted physical scenario that the first step of FD is due to propagating shock barrier and second step is due to flux rope of CME/magnetic cloud.
URI: http://localhost:8080/xmlui/handle/123456789/755
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