A locally quadratic Glimm functional and sharp convergence rate of the Glimm scheme for nonlinear hyperbolic systems
Abstract
Consider the Cauchy problem for a strictly hyperbolic, N× N quasilinear system in one space dimension ut+A(u) ux=0, u(0,x)= u(x), (1) where u A(u) is a smooth matrix-valued map, and the initial data u is assumed to have small total variation. We investigate the rate of convergence of approximate solutions of (1) constructed by the Glimm scheme, under the assumption that, letting λk(u), rk(u) denote the k-th eigenvalue and a corresponding eigenvector of A(u), respectively, for each k-th characteristic family the linearly degenerate manifold Mk \u∈ : ∇λk(u)· rk(u)=0\ is either the whole space, or it is empty, or it consists of a finite number of smooth, N-1-dimensional, connected, manifolds that are transversal to the characteristic vector field rk. We introduce a Glimm type functional which is the sum of the cubic interaction potential defined in sie, and of a quadratic term that takes into account interactions of waves of the same family with strength smaller than some fixed threshold parameter. Relying on an adapted wave tracing method, and on the decrease amount of such a functional, we obtain the same type of error estimates valid for Glimm approximate solutions of hyperbolic systems satisfying the classical Lax assumptions of genuine nonlinearity or linear degeneracy of the characteristic families.
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