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DIRECT SIMULATION OF SCALAR TRANSFER ACROSS WAVY GAS-LIQUID INTERFACES

机译:直接模拟波浪状气液界面上的标量传递

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Direct numerical simulation techniques (DNS) have been developed for investigations of transport processes between turbulent gas and liquid streams separated by a wavy interface. The results indicate qualitative similarity between turbulence structures, in the vicinity of a continuous interface, to those in wall turbulence―if the shear rates correspond. There are detailed differences, however, primarily on the liquid side. The liquid-side tangential velocity fluctuations peak right at the interface, whereas on the gas side they peak a small distance away―much like in wall turbulence. The interfacial shear stress pattern correlates with gas-side sweeps and ejections, whereas it does not correlate with liquid-side structures. Heat and mass transfer mechanisms are primarily controlled by the sweeps on each side. Simple parameterizations of the scalar transfer velocity are developed based on these mechanisms and compare well with experiments and DNS. Capillary waves appear to have little effect on scalar transfer.
机译:已经开发了直接数值模拟技术(DNS),用于研究湍流气体和由波浪形界面分隔的液体流之间的传输过程。结果表明,如果剪切速率相对应,在连续界面附近的湍流结构与壁湍流之间的定性相似。但是,有详细的区别,主要是在液体方面。液体侧切向速度波动恰好在界面处达到峰值,而在气体侧它们则在相距很小的距离处达到峰值,就像壁湍流一样。界面剪切应力模式与气体侧扫掠和喷射相关,而与液体侧结构不相关。传热和传质机制主要由两侧的扫掠控制。基于这些机制开发了标量传输速度的简单参数化,并与实验和DNS进行了比较。毛细管波似乎对标量传递几乎没有影响。

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