Published November 2011 | Version v1
Journal article

Weak solutions to Friedrichs systems with convex constraints

  • 1. UPMC Univ Paris 06, UMR 7598, LJLL, F-75005, Paris (France)
  • 2. Université Paris-Sud 11, Département de Mathématiques, CNRS UMR 8628, Bâtiment 425, 91405 Orsay Cedex (France)

Description

We are interested in a problem arising, for instance, in elastoplasticity modelling, which consists in a system of partial differential equations and a constraint specifying that the solution should remain, for every time and every position, in a certain set. This constraint is generally incompatible with the invariant domains of the original model, thus this problem has to be specified in mathematical terms. Here we follow the approach proposed in Després (2007 Arch. Ration. Mech. Anal. 186 275–308) that furnishes a weak formulation of the constrained problem à la Kruzhkov. More precisely, this paper deals with the study of the well-posedness of Friedrichs systems under convex constraints, in any space dimension. We prove that there exists a unique weak solution, continuous in time, square integrable in space, and with values in the constraints domain. This is done with the use of a discrete approximation scheme: we define a numerical approximate solution and prove, thanks to compactness properties, that it converges towards a solution to the constrained problem. Uniqueness is proven via energy (or entropy) estimates. Some numerical illustrations are provided

Availability note (English)

Available from http://dx.doi.org/10.1088/0951-7715/24/11/003

Additional details

Identifiers

DOI
10.1088/0951-7715/24/11/003;
PII
S0951-7715(11)80165-9;

Publishing Information

Journal Title
Nonlinearity (Print)
Journal Volume
24
Journal Issue
11
Journal Page Range
p. 3055-3081
ISSN
0951-7715