English

When Do Riemann Solutions Consist of Rarefactions, Jumps, and Constants?

Analysis of PDEs 2026-05-22 v1

Abstract

A solution of a Riemann problem for a strictly hyperbolic system of conservation laws is traditionally expected to consist of rarefaction waves, jump discontinuities, and constant states. In this paper, we investigate whether a Riemann solution has this structure when the solution is only assumed to be measurable and essentially bounded. To discriminate continuous and discontinuous features in an LL^\infty solution, we introduce one-sided accumulation sets based on local essential images. Supposing that throughout a bounded open interval a solution is continuous in the essential image (ess-im) sense, we prove that it is a rarefaction wave if it is resonant (the characteristic speed equals x/tx/t), and otherwise it is constant. Although an ess-im discontinuity might not be a jump discontinuity, we show that all ess-im accumulation states lie on a common Hugoniot locus and have the same speed. Anomalies are possible if there are limit points of ess-im discontinuities, but if the set of ess-im discontinuities is finite, then an LL^\infty Riemann solution has bounded variation and is composed of finitely many rarefaction waves, jump discontinuities, and constant states.

Keywords

Cite

@article{arxiv.2605.21881,
  title  = {When Do Riemann Solutions Consist of Rarefactions, Jumps, and Constants?},
  author = {Bradley J. Plohr and Stephen Schecter and Dan Marchesin},
  journal= {arXiv preprint arXiv:2605.21881},
  year   = {2026}
}

Comments

29 pages, 1 figure