Energy spectrum of two-dimensional isotropic rapidly rotating turbulence
arXiv:2408.15106
Abstract
We study a two-dimensional isotropic rotating system and obtain both theoretically and numerically a energy spectrum under the rapidly rotating condition (), which was initially obtained by Zeman (1994) and Zhou (1995). In rotating turbulence, the energy spectrum was proposed under the assumption of isotropy, however, the direction selectivity of rotation breaks isotropy, making this spectrum not easily observable. To fill the gap between theoretical assumptions and realizability, we study the turbulence of inertial waves in an artificial two-dimensional isotropic rotating turbulence system. In the limit of a small Rossby number, we asymptotically derive a nonlinear amplitude equation for inertial waves, which gives the spectrum using a strong turbulence argument. This scaling is justified by numerical simulations of both the amplitude equation and the original system.