The high helium abundance and charge states of the interplanetary CME and its material source on the Sun
arXiv:2008.08816 · doi:10.3847/2041-8213/abb083
Abstract
Identifying the source of the material within coronal mass ejections (CMEs) and understanding CME onset mechanisms are fundamental issues in solar and space physics. Parameters relating to plasma composition, such as charge states and He abundance (\ahe), may be different for plasmas originating from differing processes or regions on the Sun. Thus, it is crucial to examine the relationship between in-situ measurements of CME composition and activity on the Sun. We study the CME that erupted on 2014 September 10, in association with an X1.6 flare, by analyzing AIA imaging and IRIS spectroscopic observations and its in-situ signatures detected by Wind and ACE. We find that during the slow expansion and intensity increase of the sigmoid, plasma temperatures of 9 MK, and higher, first appear at the footpoints of the sigmoid, associated with chromospheric brightening. Then the high-temperature region extends along the sigmoid. IRIS observations confirm that this extension is caused by transportation of hot plasma upflow. Our results show that chromospheric material can be heated to 9 MK, and above, by chromospheric evaporation at the sigmoid footpoints before flare onset. The heated chromospheric material can transport into the sigmoidal structure and supply mass to the CME. The aforementioned CME mass supply scenario provides a reasonable explanation for the detection of high charge states and elevated \ahe\ in the associated ICME. The observations also demonstrate that the quasi-steady evolution in the precursor phase is dominated by magnetic reconnection between the rising flux rope and the overlying magnetic field structure.
10 pages, 5 figures, accepted for publication in ApJL
References in corpus (3)
- Observation of An Evolving Magnetic Flux Rope Prior To and During A Solar Eruption
- Thermal Diagnostics with the Atmospheric Imaging Assembly onboard the Solar Dynamics Observatory: A Validated Method for Differential Emission Measure Inversions
- Two-step evolution of a rising flux rope resulting in a confined solar flare
Cited by in corpus (6)
- Solar Cycle Dependence of ICME Composition
- Multi-Fluid Simulations of Upper Chromospheric Magnetic Reconnection with Helium-Hydrogen mixture
- Comparison of Helium Abundance between ICMEs and Solar Wind near 1 AU
- A holistic approach to understand Helium enrichment in Interplanetary coronal mass ejections: New insights
- Dropouts of Fully Stripped Ions in the Solar Wind: A Diagnostic for Wave Heating versus Reconnection
- The properties of small magnetic flux ropes inside the solar wind come from coronal holes, active regions, and quiet Sun