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An Onsager Singularity Theorem for Leray Solutions of Incompressible Navier-Stokes

Published 14 Oct 2017 in math.AP, math-ph, math.MP, and physics.flu-dyn | (1710.05205v3)

Abstract: We study in the inviscid limit the global energy dissipation of Leray solutions of incompressible Navier-Stokes on the torus ${\mathbb T}d$, assuming that the solutions have norms for Besov space $B{\sigma,\infty}_3({\mathbb T}d),$ $\sigma\in (0,1],$ that are bounded in the $L3$-sense in time, uniformly in viscosity. We establish an upper bound on energy dissipation of the form $O(\nu{(3\sigma-1)/(\sigma+1)}),$ vanishing as $\nu\to0$ if $\sigma>1/3.$ A consequence is that Onsager-type "quasi-singularities" are required in the Leray solutions, even if the total energy dissipation vanishes in the limit $\nu\to 0$, as long as it does so sufficiently slowly. We also give two sufficient conditions which guarantee the existence of limiting weak Euler solutions $u$ which satisfy a local energy balance with possible anomalous dissipation due to inertial-range energy cascade in the Leray solutions. For $\sigma\in (1/3,1)$ the anomalous dissipation vanishes and the weak Euler solutions may be spatially "rough" but conserve energy.

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