Convex integration and phenomenologies in turbulence
Abstract
In this review article we discuss a number of recent results concerning wild weak solutions of the incompressible Euler and Navier-Stokes equations. These results build on the groundbreaking works of De Lellis and Sz\'ekelyhidi Jr., who extended Nash's fundamental ideas on C1 flexible isometric embeddings, into the realm of fluid dynamics. These techniques, which go under the umbrella name convex integration, have fundamental analogies the phenomenological theories of hydrodynamic turbulence. Mathematical problems arising in turbulence (such as the Onsager conjecture) have not only sparked new interest in convex integration, but certain experimentally observed features of turbulent flows (such as intermittency) have also informed new convex integration constructions. First, we give an elementary construction of nonconservative C0+x,t weak solutions of the Euler equations, first proven by De Lellis-Sz\'ekelyhidi Jr.. Second, we present Isett's recent resolution of the flexible side of the Onsager conjecture. Here, we in fact follow the joint work of De Lellis-Sz\'ekelyhidi Jr. and the authors of this paper, in which weak solutions of the Euler equations in the regularity class C 13-x,t are constructed, attaining any energy profile. Third, we give a concise proof of the authors' recent result, which proves the existence of infinitely many weak solutions of the Navier-Stokes in the regularity class C0t L2+x C0t W1,1+x. We conclude the article by mentioning a number of open problems at the intersection of convex integration and hydrodynamic turbulence.
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