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Large-eddy simulation of the influence of a wavy lower boundary on the turbulence kinetic energy budget redistribution 被引量:1

Large-eddy simulation of the influence of a wavy lower boundary on the turbulence kinetic energy budget redistribution
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摘要 Oceanic turbulence plays an important role in coastal flow. However, as the effect of an uneven lower boundary on the adjacent turbulence is still not well understood, we explore the mechanics of nearshore turbulence with a turbulence-resolving numerical model known as a large-eddy-simulation model for an idealized scenario in a coastal region for which the lower boundary is a solid sinusoidal wave. The numerical simulation demonstrates how the mechanical energy of the current is transferred into local turbulence mixing, and shows the changes in turbulent intensity over the continuous phase change of the lower topography. The strongest turbulent kinetic energy is concentrated above the trough of the wavy surface. The turbulence mixing is mainly generated by the shear forces; the magnitude of shear production has a local maximum over the crest of the seabed topography, and there is an asymmetry in the shear production between the leeward and windward slopes. The numerical results are consistent with results from laboratory experiments. Our analysis provides an important insight into the mechanism of turbulent kinetic energy production and development. Oceanic turbulence plays an important role in coastal flow. However, as the effect of an uneven lower boundary on the adjacent turbulence is still not well understood, we explore the mechanics of nearshore turbulence with a turbulence-resolving numerical model known as a large-eddy-simulation model for an idealized scenario in a coastal region for which the lower boundary is a solid sinusoidal wave. The numerical simulation demonstrates how the mechanical energy of the current is transferred into local turbulence mixing, and shows the changes in turbulent intensity over the continuous phase change of the lower topography. The strongest turbulent kinetic energy is concentrated above the trough of the wavy surface. The turbulence mixing is mainly generated by the shear forces; the magnitude of shear production has a local maximum over the crest of the seabed topography, and there is an asymmetry in the shear production between the leeward and windward slopes. The numerical results are consistent with results from laboratory experiments. Our analysis provides an important insight into the mechanism of turbulent kinetic energy production and development.
作者 LU Zongze FAN Wei LI Shuang GE Jianzhong 陆宗泽;樊伟;李爽;葛建忠(Ocean College, Zhejiang University;State Key Laboratory of Estuarine and Coastal Research, East China Normal University)
出处 《Journal of Oceanology and Limnology》 SCIE CAS CSCD 2018年第4期1178-1188,共11页 海洋湖沼学报(英文)
基金 Supported by the National Key Research and Development Program of China(Nos.2016YFC1401404,2017YFA0604102) the National Natural Science Foundation of China(Nos.41506015,41576013) the Zhejiang Provincial Natural Science Foundation(No.LY16D060001) the Open Research Fund of the State Key Laboratory of Estuarine and Coastal Research(No.SKLEC-KF201406)
关键词 large-eddy simulation wavy lower boundary oceanic turbulence NEARSHORE 海洋湍流 海岸线 电流 力学
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