Characteristics of the Dissimilar Turbulent Transport Processes of Heat and Momentum During Wind-Wave Dynamical Interactions

IF 3.3 2区 地球科学 Q1 OCEANOGRAPHY Journal of Geophysical Research-Oceans Pub Date : 2024-11-26 DOI:10.1029/2024JC021320
Jinlong Zhang, Yuhong Dong, Lian Shen
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Abstract

Heat and momentum transport processes are studied through direct numerical simulations of air-water two-phase flows with surface waves under wave-wind couplings. Three wave age cases, sea state changing from wind sea to swell, are analyzed to investigate the roles of surface waves in the turbulent transport of heat and momentum, which are examined by decomposing the statistics into the plane-averaged, wave-coherent, and turbulent-induced components. Under wind sea conditions, a dissimilarity in turbulent transfer between heat and momentum is observed in the near-surface region. This discrepancy arises from the enhanced countergradient heat transport on the leeward side, which is caused by wave-coherent structures. The surface waves induce phase-dependent variations in the temperature and flow structures, reducing the scale of temperature structure. This reduction further results in a weaker contribution of ejections and sweeps to heat transfer. In contrast, momentum transport is predominantly downgradient on the leeward side due to the large-scale flow structure. This difference in coherent structures leads to the dissimilar transport between heat and momentum. Under lower-frequency swell conditions, surface waves induce an upward momentum that enhances the vortical structures near the wave surface. The transfer efficiency of turbulent momentum and heat gradually reaches equilibrium, after which both transport processes become more analogous.

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风-波动力相互作用过程中热量和动量的不同湍流传输过程的特征
通过直接数值模拟波风耦合条件下带有表面波的空气-水两相流动,研究了热量和动量的传输过程。分析了三种波龄情况(海况从风海到涌浪),研究了面波在热量和动量湍流输运中的作用,并将统计量分解为平面平均、波相干和湍流诱导三个部分。在风海条件下,近表面区域热量和动量的湍流传输存在差异。这种差异来自于波相干结构导致的背风面逆梯度热传输增强。表面波会引起温度和流动结构的相变,从而减小温度结构的尺度。这种减少进一步导致喷射和横扫对热量传输的贡献减弱。相反,由于大尺度的流动结构,背风面的动量传输主要是向下的。这种相干结构的差异导致了热量和动量的不同传输。在低频涌浪条件下,表面波会产生向上的动量,从而增强波面附近的涡旋结构。湍流动量和热量的传输效率逐渐达到平衡,之后这两种传输过程变得更加相似。
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来源期刊
Journal of Geophysical Research-Oceans
Journal of Geophysical Research-Oceans Earth and Planetary Sciences-Oceanography
CiteScore
7.00
自引率
13.90%
发文量
429
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