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Whether the global existence and uniqueness of strong solutions of n-dimensional incompressible magnetohydrodynamic (MHD for short) equations with only kinematic viscosity or magnetic diffusion holds true or not remains an outstanding open problem. In recent years, more attention has been paid to the case when the magnetic field close to an equilibrium state (the background magnetic field for short). Specifically, when the background magnetic field satisfies the Diophantine condition (see (1. 2) for details), Chen, Zhang and Zhou Sci. China Math. 41 (2022), pp. 1-10 first studied the perturbation system and established the decay estimates and stability of its solutions in 3D periodic domain T³, which was then improved to H^ (3r+5+ (3+2) ) (T²) for 2D periodic domain T² by Zhai J. Differ. Equ. 374 (2023), pp. 267-278. In this paper, we seek to find the optimal decay estimates and improve the space where the global stability is taking place. Through deeply exploring and fully utilizing the structure of perturbation system, we discover a new dissipative mechanism, which enables us to establish the decay estimates in Sobolev space with much lower regularity. Based on the above discovery, we greatly reduce the initial regularity requirement of aforementioned two works from H^ (4r+7) (T³) and H^ (3r+5+ (3+2) ) (T²) to H^ (3r+3) ^+ (Tⁿ) for r>n-1, >0 and >0 when n=3 and n=2 respectively. Additionally, we first present the linear stability result via the method of spectral analysis in this paper. From which, the decay estimates obtained for the nonlinear system can be seen as sharp in the sense that they are in line with those for the linearized system.
Xie et al. (Tue,) studied this question.