English

Finite time singularity formation for moving interface Euler equations

Analysis of PDEs 2017-09-04 v2

Abstract

This paper proposes a new general methodology for finite-time singularity formation for moving interface problems involving the incompressible Euler equations in the plane. The first problem considered is the two-phase Euler vortex sheets problem with surface tension for which is proved the finite time singularity of the natural norm of the problem for suitable initial data. This is in striking contrast with the case of finite time splash and splat singularity formation for the one phase Euler equations introduced in [4] and studied in a more general context in [8], for which the natural norm (in the one phase fluid) stays finite all the way until contact. The second problem considered involves the presence of a heavier rigid body moving in the perfect fluid. We first establish that the rigid body will hit the bottom of the fluid domain in finite time (in a more general context and very different methodology than first done for this problem in [19]). We next establish that a surface energy blows up, and characterize the acceleration of the rigid body at contact, depending on the nature of the contact zone: Acceleration opposes the motion at contact, and is either positive finite if the contact zone contains a curve, or infinite otherwise.

Keywords

Cite

@article{arxiv.1701.01699,
  title  = {Finite time singularity formation for moving interface Euler equations},
  author = {Daniel Coutand},
  journal= {arXiv preprint arXiv:1701.01699},
  year   = {2017}
}

Comments

Udpated version (updated references and corrections, and improved results)