English

Multi-stage reconnection powering a solar coronal jet

Solar and Stellar Astrophysics 2023-02-15 v1

Abstract

Coronal jets are short-lived eruptive features commonly observed in polar coronal holes and are thought to play a key role in the transfer of mass and energy into the solar corona. We describe unique contemporaneous observations of a coronal blowout jet seen by the Extreme Ultraviolet Imager onboard the Solar Orbiter spacecraft (SO/EUI) and the Atmospheric Imaging Assembly onboard the Solar Dynamics Observatory (SDO/AIA). The coronal jet erupted from the south polar coronal hole, and was observed with high spatial and temporal resolution by both instruments. This enabled identification of the different stages of a breakout reconnection process producing the observed jet. We find bulk plasma flow kinematics of ~100-200 km/s across the lifetime of its observed propagation, with a distinct kink in the jet where it impacted and was subsequently guided by a nearby polar plume. We also identify a faint faster feature ahead of the bulk plasma motion propagating with a velocity of ~715 km/s which we attribute to untwisting of newly reconnected field lines during the eruption. A Differential Emission Measure (DEM) analysis using the SDO/AIA observations revealed a very weak jet signal, indicating that the erupting material was likely much cooler than the coronal passbands used to derive the DEM. This is consistent with the very bright appearance of the jet in the Lyman-α\alpha passband observed by SO/EUI. The DEM was used to estimate the radiative thermal energy of the source region of the coronal jet, finding a value of 2×1024\sim2\times10^{24} ergs, comparable to the energy of a nanoflare.

Keywords

Cite

@article{arxiv.2301.02034,
  title  = {Multi-stage reconnection powering a solar coronal jet},
  author = {David M. Long and Lakshmi Pradeep Chitta and Deborah Baker and Iain G. Hannah and Nawin Ngampoopun and David Berghmans and Andrei N. Zhukov and Luca Teriaca},
  journal= {arXiv preprint arXiv:2301.02034},
  year   = {2023}
}

Comments

12 pages, 6 figures, accepted for publication in The Astrophysical Journal

R2 v1 2026-06-28T08:03:41.238Z