Predicting the collapse direction of large-scale pulsating bubbles based on Kelvin impulse theory

IF 4.3 2区 工程技术 Q1 ENGINEERING, OCEAN Applied Ocean Research Pub Date : 2024-11-28 DOI:10.1016/j.apor.2024.104339
Shi-Min Li , Nai-Zheng Tan , Hao Chen , Wen-Chao Zhang
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Abstract

Predicting the collapse direction of large-scale pulsating bubbles is crucial for evaluating the safety performance of marine vessels in ocean applications involving underwater explosions and high-pressure bubble detection. This study develops a rapid forecasting method for large-scale pulsating bubbles under the influence of hybrid boundaries (free surface, bottom, and sidewall) based on the Kelvin impulse theory. The boundary element method was used to simulate bubble jets and clarify the applicability of the analytical solution in predicting the direction of large-scale bubbles. The analytical solution of the Kelvin impulse underestimates the buoyancy effects of bubbles near the bottom. However, near the free surface, the strong interaction between the bubble and free surface strengthens the downward movement of the bubble, resulting in an analytical solution with improved accuracy. A buoyancy correction factor was introduced to rectify inaccuracies in the analytical solution near the bottom. The correction factor was obtained under the condition of a vertically neutral collapse for the bubbles. Comparison of the simulation results with theoretical values across various buoyancy parameters indicate that the modified analytical solution can effectively predict the direction of bubble collapse across most parameter domains. The modification method for analytical solution proposed in this study may serve as a reference for practical operations aimed at protecting marine vessels near underwater explosions or marine seismic sources.
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基于开尔文脉冲理论的大尺度脉动气泡坍缩方向预测
在水下爆炸和高压气泡探测等海洋应用中,预测大尺度脉动气泡的破裂方向是评估船舶安全性能的关键。本文提出了一种基于开尔文脉冲理论的混合边界(自由面、底、侧壁)影响下的大尺度脉动气泡快速预测方法。采用边界元法对气泡射流进行了数值模拟,验证了解析解在预测大尺度气泡方向上的适用性。开尔文冲量的解析解低估了底部气泡的浮力效应。然而,在自由表面附近,气泡与自由表面之间的强相互作用加强了气泡的向下运动,从而提高了解析解的精度。引入浮力校正因子来校正底部附近解析解的误差。在气泡垂直中性塌陷的条件下,得到了修正系数。将不同浮力参数下的模拟结果与理论值进行了比较,结果表明,改进的解析解可以有效地预测气泡在大多数参数域上的破裂方向。本文提出的解析解修正方法可为水下爆炸或海洋震源附近船舶防护的实际操作提供参考。
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来源期刊
Applied Ocean Research
Applied Ocean Research 地学-工程:大洋
CiteScore
8.70
自引率
7.00%
发文量
316
审稿时长
59 days
期刊介绍: The aim of Applied Ocean Research is to encourage the submission of papers that advance the state of knowledge in a range of topics relevant to ocean engineering.
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