液体横流中气体射流的流动特性,特别强调涡流与空腔的相互作用

IF 2.5 3区 工程技术 Q2 MECHANICS
Yafei Lv , Biao Huang , Taotao Liu , Haipeng Wei
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引用次数: 0

摘要

本文的目的是研究气体射流与液体横流相互作用所产生的复杂三维涡结构。采用高速摄像技术记录了射流腔的演化模式。采用高精度数值方法,如Chorin投影法和流体体积法(VOF)来了解射流-自由流相互作用的复杂流动特征。结果表明,射流空腔可以观察到三个不同的区域,即透明空腔区(TCR)、过渡区(TR)和泡沫空腔区(FCR)。射流与液体横流的相互作用形成了多尺度涡结构,分别为对旋涡对(CVP)、上甲板对旋涡对(up-CVP)、马蹄涡、剪切层涡和细尺度涡。通过分析不同涡旋结构的空间分布和气液界面的波动,详细分析了多尺度涡旋结构与气液界面脉动的关系。此外,还比较分析了气体夹带系数对空腔流型和涡结构的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The flow characteristics for gas jet in liquid crossflow with special emphasis on the vortex-cavity interaction

The objective of this paper is to investigate the complex three-dimensional vortex structures created by the interaction of gas jet with liquid crossflow. A high-speed camera technique is used to record the evolution patterns of the jet cavity. High-precision numerical methods with the Chorin projection method and volume of fluid method (VOF) are employed to understand the complex flow features associated with jet–freestream interaction. The results present that three distinct regions of the jet cavity could be observed, referred to as the transparent cavity region (TCR), the transition region (TR), and the foam cavity region (FCR). The interaction between the flow of gas jet and liquid crossflow creates multiscale vortex structures, including the counter-rotating vortex pair (CVP), the upper-deck counter-rotating vortex pair (up-CVP), the horseshoe vortices, the shear layer vortices, and the fine-scale vortices, respectively. The relationship between multiscale vortex structures and the pulsation of the gas-liquid interface is analyzed in detail by analyzing the spatial distribution of different vortex structures and the fluctuations of the gas-liquid interface. In addition, the effect of the gas entrainment coefficient on cavity flow patterns and vortex structures is compared and analyzed.

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来源期刊
CiteScore
5.90
自引率
3.80%
发文量
127
审稿时长
58 days
期刊介绍: The European Journal of Mechanics - B/Fluids publishes papers in all fields of fluid mechanics. Although investigations in well-established areas are within the scope of the journal, recent developments and innovative ideas are particularly welcome. Theoretical, computational and experimental papers are equally welcome. Mathematical methods, be they deterministic or stochastic, analytical or numerical, will be accepted provided they serve to clarify some identifiable problems in fluid mechanics, and provided the significance of results is explained. Similarly, experimental papers must add physical insight in to the understanding of fluid mechanics.
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