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 is demonstrated to be sensitive to the background magnetic field, whereas the total evolution time Δt is sensitive to the magnitude of the anomalous resistivity. Moveover, we found a scaling law, which is described as ΔT/Δt∼nH−1.5B2.1η00.88. 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.
@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}
}