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矩形孔口处的不对称气泡形成

Asymmetric Bubble Formation at Rectangular Orifices.

作者信息

Zhou Yujia, Ji Bingqiang, Yan Xiao, Jin Puhang, Li Jiaqi, Miljkovic Nenad

机构信息

Mechanical Science and Engineering, University of Illinois at Urbana Champaign, Urbana, Illinois 61801, United States.

International Institute for Carbon Neutral Energy Research (WPI-I2CNER), Kyushu University, 744 Moto-oka, Nishi-ku, Fukuoka 819-0395, Japan.

出版信息

Langmuir. 2021 Apr 13;37(14):4302-4307. doi: 10.1021/acs.langmuir.1c00287. Epub 2021 Apr 2.

Abstract

Bubble formation in liquids is frequently observed in nature and applied in various industrial processes. These include pool and flow boiling for thermal management systems, where bubbles may form asymmetrically at narrow slits and in convective flows. While previous studies have focused on symmetric bubble formation at circular orifices, the dynamics of asymmetric bubble formation remains poorly understood. Here, we experimentally investigate bubble formation at rectangular orifices and examine the effects of the orifice size and aspect ratio and the gas flow rate on the bubble size. The asymmetric bubble shape evolution at the rectangular orifice is analyzed, and we find that the size of the bubble neck is controlled either by the orifice size or by the capillary length. Based on these findings, we develop a static force balance model to predict the bubble size in the quasi-static regime, where the roles of Bond number and aspect ratio are identified. The bubble size evolution in the dynamic regime is further understood by introducing a Weber number that evaluates the effect of the virtual mass force induced by gas flow. Our study provides physical understanding of the dynamics of asymmetric bubble formation and guidance to predict the bubble size at asymmetric orifices.

摘要

液体中的气泡形成在自然界中经常可以观察到,并应用于各种工业过程。这些过程包括热管理系统中的池沸腾和流动沸腾,在这些过程中,气泡可能在狭窄缝隙处和对流中不对称地形成。虽然先前的研究主要集中在圆形孔口处的对称气泡形成,但不对称气泡形成的动力学仍知之甚少。在这里,我们通过实验研究矩形孔口处的气泡形成,并研究孔口尺寸、纵横比和气体流速对气泡尺寸的影响。分析了矩形孔口处不对称气泡形状的演变,我们发现气泡颈部的尺寸由孔口尺寸或毛细管长度控制。基于这些发现,我们建立了一个静力平衡模型来预测准静态状态下的气泡尺寸,确定了邦德数和纵横比的作用。通过引入一个评估气流诱导的虚拟质量力影响的韦伯数,进一步理解了动态状态下的气泡尺寸演变。我们的研究为不对称气泡形成的动力学提供了物理理解,并为预测不对称孔口处的气泡尺寸提供了指导。

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