...
首页> 外文期刊>Chinese Journal of Oceanology and Limnology >Wave breaking on turbulent energy budget in the ocean surface mixed layer
【24h】

Wave breaking on turbulent energy budget in the ocean surface mixed layer

机译:海浪在海洋表面混合层中扰动能量收支

获取原文
获取原文并翻译 | 示例
           

摘要

As an important physical process at the air-sea interface,wave movement and breaking have a significant effect on the ocean surface mixed layer (OSML).When breaking waves occur at the ocean surface,turbulent kinetic energy (TKE) is input downwards,and a sublayer is formed near the surface and turbulence vertical mixing is intensively enhanced.A one-dimensional ocean model including the Mellor-Yamada level 2.5 turbulence closure equations was employed in our research on variations in turbulent energy budget within OSML.The influence of wave breaking could be introduced into the model by modifying an existing surface boundary condition of the TKE equation and specifying its input.The vertical diffusion and dissipation of TKE were effectively enhanced in the sublayer when wave breaking was considered.Turbulent energy dissipated in the sublayer was about 92.0% of the total depth-integrated dissipated TKE,which is twice higher than that of non-wave breaking.The shear production of TKE decreased by 3.5% because the mean flow fields tended to be uniform due to wave-enhanced turbulent mixing.As a result,a new local equilibrium between diffusion and dissipation of TKE was reached in the wave-enhanced layer.Below the sublayer,the local equilibrium between shear production and dissipation of TKE agreed with the conclusion drawn from the classical law-of-the-wall (Craig and Banner,1994).
机译:作为海海界面的重要物理过程,波的运动和破碎对海洋表面混合层(OSML)有重要影响。当破碎波在海洋表面发生时,湍动能(TKE)被向下输入,我们在研究OSML内湍流能量收支的变化时,采用了包括Mellor-Yamada 2.5级湍流闭合方程的一维海洋模型,研究了湍流能量收支的变化。可以通过修改现有的TKE方程的表面边界条件并指定其输入将其引入模型中。考虑到波浪破碎后,TKE在子层中的垂直扩散和耗散得到了有效增强。在子层中耗散的湍流能量约为92.0深度积分消散的TKE的百分比,比非波浪破碎的TKE高两倍。增大3.5%是因为波浪增强的湍流混合导致平均流场趋于均匀。结果,波浪增强层中TKE的扩散和耗散之间达到了新的局部平衡。在子层下方,局部TKE的剪切力产生和耗散之间的平衡与经典的墙壁法则得出的结论是一致的(Craig和Banner,1994)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号