English

Numerical Simulations of Chromospheric Microflares

Solar and Stellar Astrophysics 2015-03-17 v1

Abstract

With gravity, ionization, and radiation being considered, we perform 2.5D compressible resistive MHD simulations of chromospheric magnetic reconnection using the CIP-MOCCT scheme. The temperature distribution of the quiet-Sun atmospheric model VALC and the helium abundance (10%) are adopted. Our 2.5D MHD simulation reproduces qualitatively the temperature enhancement observed in chromospheric microflares. The temperature enhancement ΔT\Delta T is demonstrated to be sensitive to the background magnetic field, whereas the total evolution time Δt\Delta t is sensitive to the magnitude of the anomalous resistivity. Moveover, we found a scaling law, which is described as ΔT/ΔtnH1.5B2.1η00.88\Delta T/\Delta t \sim {n_H}^{-1.5} B^{2.1} {\eta_0}^{0.88}. Our results also indicate that the velocity of the upward jet is much greater than that of the downward jet and the X-point may move up or down.

Keywords

Cite

@article{arxiv.1012.0661,
  title  = {Numerical Simulations of Chromospheric Microflares},
  author = {R. L. Jiang and C. Fang and P. F. Chen},
  journal= {arXiv preprint arXiv:1012.0661},
  year   = {2015}
}

Comments

31 pages; 9 figures; published in ApJ

R2 v1 2026-06-21T16:52:54.620Z