Formation and thermodynamic evolution of plasmoids in active region jets

Author:

Mulay Sargam M1ORCID,Tripathi Durgesh2,Mason Helen3,Del Zanna Giulio3ORCID,Archontis Vasilis45

Affiliation:

1. School of Physics & Astronomy, University of Glasgow , Glasgow G12 8QQ, UK

2. Inter-University Centre for Astronomy and Astrophysics , Post Bag-4, Ganeshkhind, Pune 411007, Maharashtra, India

3. DAMTP, Centre for Mathematical Sciences, University of Cambridge , Wilberforce Road, Cambridge CB3 0WA, UK

4. School of Mathematics and Statistics, University of St Andrews , North Haugh, St Andrews, Fife KY16 9SS, UK

5. Section of Astrogeophysics, Department of Physics, Laboratory of Astronomy, University of Ioannina , 45110 Ioannina, Greece

Abstract

ABSTRACT We have carried out a comprehensive study of the temperature structure of plasmoids, which successively occurred in recurrent active region jets. The multithermal plasmoids were seen to be travelling along the multithreaded spire as well as at the footpoint region in the EUV/UV images recorded by the Atmospheric Imaging Assembly (AIA). The differential emission measure (DEM) analysis was performed using EUV AIA images, and the high-temperature part of the DEM was constrained by combining X-ray images from the X-ray telescope (XRT/Hinode). We observed a systematic rise and fall in brightness, electron number densities and the peak temperatures of the spire plasmoid during its propagation along the jet. The plasmoids at the footpoint (FPs) (1.0–2.5 MK) and plasmoids at the spire (SPs) (1.0–2.24 MK) were found to have similar peak temperatures, whereas the FPs have higher DEM weighted temperatures (2.2–5.7 MK) than the SPs (1.3–3.0 MK). A lower limit to the electron number densities of plasmoids – SPs (FPs) were obtained that ranged between 3.4–6.1 × 108 (3.3–5.9 × 108) cm−3 whereas for the spire, it ranged from 2.6–3.2 × 108 cm−3. Our analysis shows that the emission of these plasmoids starts close to the base of the jet(s), where we believe that a strong current interface is formed. This suggests that the blobs are plasmoids induced by a tearing-mode instability.

Funder

University of Glasgow

Science and Technology Facilities Council

ERC

NASA

George Mason University

University of Michigan

University of Cambridge

ISAS

JAXA

NAOJ

ESA

NSC

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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