SH046-08
Evolution of coronal mass ejections and the corresponding Forbush decreases: modelling vs. multi-spacecraft observations

Tuesday, 15 December 2020: 10:43
Virtual
Mateja Dumbovic1, Bojan Vrsnak1, Jingnan Guo2, Bernd Heber3, Karin Dissauer4, Fernando Carcaboso-Morales5, Manuela Temmer4, Astrid Veronig4,6, Tatiana Podladchikova7, Christian Moestl8, Tanja Amerstorfer8 and Anamarija Kirin9, (1)University of Zagreb, Hvar Observatory, Faculty of Geodesy, Zagreb, Croatia, (2)University of Science and Technology of China, Hefei, China, (3)University of Kiel, Kiel, Germany, (4)University of Graz, Institute of Physics, Graz, Austria, (5)University of Alcala, Alcala de Henares, Spain, (6)Kanzelhöhe Observatory for Solar and Environmental Research, University of Graz, Graz, Austria, (7)Skolkovo Institute of Science and Technology, Skolkovo, Russia, (8)Austrian Academy of Sciences, Space Research Institute, Graz, Austria, (9)Karlovac University of Applied Sciences, Karlovac, Croatia
Abstract:
One of the very common in situ signatures of interplanetary coronal mass ejections (ICMEs), as well as other interplanetary transients, are Forbush decreases (FDs), i.e. short-term reductions in the galactic cosmic ray (GCR) flux. A two-step FD is often regarded as a textbook example, which presumably owes its specific morphology to the fact that the measuring instrument passed through the ICME head-on, encountering first the shock front (if developed), then the sheath and finally the CME magnetic structure. The interaction of GCRs and the shock/sheath region, as well as the CME magnetic structure, occurs all the way from Sun to Earth, therefore, FDs are expected to reflect the evolutionary properties of CMEs and their sheaths. We apply modelling to different ICME regions in order to obtain a generic two-step FD profile, which qualitatively agrees with our current observation-based understanding of FDs. We next adapt the models for energy dependence to enable comparison with different GCR measurement instruments (as they measure in different particle energy ranges). We test these modelling efforts against a set of multi-spacecraft observations of the same event, using the Forbush decrease model for the expanding flux rope (ForbMod). We find a reasonable agreement of the ForbMod model for the GCR depression in the CME magnetic structure with multi-spacecraft measurements, indicating that modelled FDs reflect well the CME evolution.