Anisotropic characteristics of the Kraichnan direct cascade in two-dimensional hydrodynamic turbulence
arXiv:1510.09052 · doi:10.1134/S0021364015230083
Abstract
Statistical characteristics of the Kraichnan direct cascade for two-dimensional hydrodynamic turbulence are numerically studied (with spatial resolution ) in the presence of pumping and viscous-like damping. It is shown that quasi-shocks of vorticity and their Fourier partnerships in the form of jets introduce an essential influence in turbulence leading to strong angular dependencies for correlation functions. The energy distribution as a function of modulus for each angle in the inertial interval has the Kraichnan behavior, , and simultaneously a strong dependence on angles. However, angle average provides with a high accuracy the Kraichnan turbulence spectrum where is enstrophy flux and the Kraichnan constant , in correspondence with the previous simulations. Familiar situation takes place for third-order velocity structure function which, as for the isotropic turbulence, gives the same scaling with respect to separation length and , , but the mean over angles and time differs from its isotropic value.
6 pages, 7 figures
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