Global well-posedness and decay rates of strong solutions to the incompressible Vlasov-MHD system
arXiv:2408.14145 · doi:10.1007/s10955-026-03660-9
Abstract
In this paper, we study the global well-posedness and decay rates of strong solutions to an incompressible Vlasov-MHD model arising in magnetized plasmas. This model is consist of the Vlasov equation and the incompressible magnetohydrodynamic equations which interacts together via the Lorentz forces. It is readily to verify that it has two equilibria and , where is the global maxwellian. For each equilibrium, assuming that the norm of the initial data is sufficient small and has a compact support in the position and the velocity , we construct the global well-posedness and decay rates of strong solutions near the equilibrium in the whole space . And the solution decays polynomially. The global existence result still holds for the torus case without the compact support assumption in . In addition, the decay rates are exponential. Lack of dissipation structure in the Vlasov equation and the strong trilinear coupling term in the model are two main impediments in obtaining our results. To surround these difficulties, we assume that has a compact support and utilize the method of characteristics to calculate the size of the supports of . Thus, we overcome the difficulty in estimating the integration and obtain the global existence of strong solutions by taking advantage of a refined energy method. Moreover, by making full use of the Fourier techniques, we obtain the optimal time decay rate of the gradient of the solutions. This is the first result on strong solutions to the Vlasov-MHD model containing nonlinear Lorentz forces.
34 pages