Direct numerical simulations of the turbulence evolution in a uniformly sheared and stably stratified flow

被引:127
|
作者
Jacobitz, FG [1 ]
Sarkar, S [1 ]
VanAtta, CW [1 ]
机构
[1] SCRIPPS INST OCEANOG,LA JOLLA,CA
关键词
D O I
10.1017/S0022112097005478
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Direct numerical simulations (DNS) are performed to investigate the evolution of turbulence in a uniformly sheared and stably stratified flow. The spatial discretization is accomplished by a spectral collocation method, and the solution is advanced in time with a third-order Runge-Kutta scheme. The turbulence evolution is found to depend strongly on at least three parameters: the gradient Richardson number Ri, the initial value of the Taylor microscale Reynolds number Re-lambda, and the initial value of the shear number SK/epsilon. The effect of each parameter is individually studied while the remaining parameters are kept constant. The evolution of the turbulent kinetic energy K is found to follow approximately an exponential law. The shear number SK/epsilon, whose effect has not been investigated in previous studies, was found to have a strong non-monotone influence on the turbulence evolution. Larger values of the shear number do not necessarily lead to a larger value of the eventual growth rate of the turbulent kinetic energy. Variation of the Reynolds number Re-lambda indicated that the turbulence growth rate tends to become insensitive to Ren at the higher end of the Re-lambda range studied here. The dependence of the critical Richardson number Ri(cr), which separates asymptotic growth of the turbulent kinetic energy K from asymptotic decay, on the initial values of the Reynolds number Re-lambda and the shear number SK/epsilon was also obtained. It was found that the critical Richardson number varied over the range 0.04 < Ri(cr) < 0.17 in our DNS due to its strong dependence on Reynolds and shear numbers.
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页码:231 / 261
页数:31
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