# Very fast helicity injection leading to critically stable state and   large eruptive activity in solar active region NOAA 12673

**Authors:** P. Vemareddy

arXiv: 1901.09358 · 2019-03-06

## TL;DR

This study investigates how rapid helicity injection and magnetic shear in solar active region NOAA 12673 lead to the formation of a flux rope, reaching a critically stable state that results in significant eruptive solar activity.

## Contribution

It provides a detailed analysis of the magnetic field evolution, helicity injection, and stability conditions leading to eruptions in AR 12673, highlighting the role of fast flux emergence and sheared arcade stress.

## Key findings

- Helicity injection correlates with flux rope formation and eruption.
- The sheared arcade reaches a critically stable state before eruption.
- Magnetic field models reproduce sigmoidal structures and flux rope features.

## Abstract

Using the photospheric magnetic and coronal observations of Solar Dynamics Observatory, we studied the build-up and eruption of coronal non-potential magnetic structure in emerging active region (AR) 12673. The velocity field derived from tracked vector-magnetograms indicates persistent shear and converging motions of flux regions about the polarity inversion line (PIL). A major helicity injection occurs during rapid flux emergence consistent with the very fast flux emergence phase. While this helicity flux builds-up the sigmoid by September 4, the helicity injection by the continued shear and converging motions in the later evolution contributes to sigmoid sustenance and its core field twist as a manifestation of the flux rope which erupts after exceeding critical value of twist. Moreover, the total length of sheared PIL segments correlates with the non-neutralized current and maintains a higher value in both the polarity regions as a signature of eruptive capability of the AR according to the flux rope models. The modelled magnetic field qualitatively reproduces the sigmoidal structure capturing major features like twisted core flux as flux rope, and hook-shaped parts connecting at the middle of the PIL. Study of quasi-separatrix-layers reveals that the sheared arcade, enclosing the flux rope, is stressed to a critically stable state and its coronal height becomes doubled from September 4-6. While demonstrating the fast injection of helicity per unit flux as the crucial factor for severe space-weather events, this study explains the formation of the flux rope and recurrent eruptive nature of the AR by the critically stable state of sheared arcade early on September 6.

## Full text

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## Figures

9 figures with captions in the complete paper: https://tomesphere.com/paper/1901.09358/full.md

## References

111 references — full list in the complete paper: https://tomesphere.com/paper/1901.09358/full.md

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Source: https://tomesphere.com/paper/1901.09358