Energy dissipation and resolution of steep gradients in one-dimensional Burgers flows
arXiv:0912.2007 · doi:10.1063/1.3327284
Abstract
Travelling-wave solutions of the inviscid Burgers equation having smooth initial wave profiles of suitable shapes are known to develop shocks (infinite gradients) in finite times. Such singular solutions are characterized by energy spectra that scale with the wave number as . **** In this study, we carry out an analysis which verifies the dynamical features described above and derive upper bounds for and . It is found that satisfies $ε\le ν^{2α-1}\norm{u_*}_\infty^{2(1-α)} \norm{(-Δ)^{α/2}u_*}^2$, where and is the velocity field at . Given in the limit , this implies that the energy spectrum remains no steeper than in that limit. For the critical scaling, the bound for reduces to $ε\le\sqrt{3}k_0\norm{u_0}_\infty\norm{u_0}^2$, where marks the lower end of the inertial range and . This implies $N\le\sqrt{3}L\norm{u_0}_\infty/ν$, where is the domain size, which is shown to coincide with a rigorous estimate for the number of degrees of freedom defined in terms of local Lyapunov exponents. We demonstrate both analytically and numerically an instance where the scaling is uniquely realizable. The numerics also return and , consistent with analytic values derived from the corresponding limiting weak solution.
6--7 journal pages, 5 figures, submitted to Physics of Fluids
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