密闭空间内双圆柱附近气泡崩塌行为研究

IF 2.5 3区 工程技术
Shao-wu Ma, Jun-wei Shen, Jia-ze Ying, Shu-rui Zhang, Yu-ning Zhang, Yu-ning Zhang
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引用次数: 0

摘要

本文研究了密闭空间内双圆柱体附近的气泡崩塌特性。首先,利用高速摄影实验探讨了气泡位置和圆柱间距对气泡形态的影响。随后,根据圆定理定性分析了液体速度场,并与实验气泡界面运动进行了比较。最后,利用开尔文冲量理论对不同圆柱间距下的开尔文冲量变化进行了分析,结果与气泡质心运动具有较好的一致性。主要结论如下:(1)气泡两侧均存在高速区。在气泡和圆柱体之间观察到低速区。随着圆柱间距和气泡横坐标的增大,高速区液速减小,低速区液速增大。(2)气泡横截面圆度、界面位移、横截面积等特性受圆柱间距和气泡横坐标的显著影响。(3)随着气泡横坐标的增大,开尔文脉冲强度先快速上升,后逐渐下降至一个固定值。随着圆柱间距的增大,开尔文脉冲强度减小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on the bubble collapse behaviors near dual cylinders within confined spaces

This paper investigates the bubble collapse characteristics near dual cylinders within confined spaces. Firstly, the impacts on the bubble morphology, with respect to the bubble positions and the cylinder spacings, are explored using high-speed photography experiments. Subsequently, based on the circle theorem, the liquid velocity field is qualitatively analyzed and compared with the experimental bubble interface motion. Finally, employing the Kelvin impulse theory, an analysis of the variation in Kelvin impulse at various cylinder spacings is conducted, which shows good consistency with the bubble centroid movement. The main conclusions are summarized as follows: (1) High-velocity regions are observed on both sides of the bubble. Low-velocity regions are observed between the bubble and cylinders. As the cylinder spacing and the bubble abscissa increase, the liquid velocity in the high-velocity regions decreases, and the low-velocity regions expands. (2) The characteristics of the bubble cross-sectional roundness, interface displacement, and cross-sectional area are significantly affected by the cylinder spacing and the bubble abscissa. (3) As the bubble abscissa increases, the Kelvin impulse intensity initially rises rapidly and subsequently declines gradually to a fixed value. As the cylinder spacings increases, the Kelvin impulse intensity decreases.

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来源期刊
自引率
12.00%
发文量
2374
审稿时长
4.6 months
期刊介绍: Journal of Hydrodynamics is devoted to the publication of original theoretical, computational and experimental contributions to the all aspects of hydrodynamics. It covers advances in the naval architecture and ocean engineering, marine and ocean engineering, environmental engineering, water conservancy and hydropower engineering, energy exploration, chemical engineering, biological and biomedical engineering etc.
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