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Simulation of Underwater Explosions Initiated by High-Pressure Gas Bubbles of Various Initial Shapes

机译:各种初始形状的高压气泡引发的水下爆炸的模拟

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UNDerwater EXplosions (UNDEXs) are widely used in many areas of applied engineering including oil production and warship protection. However, the three-dimensional computations of UNDEXs, especially for explosives with complex initial shapes are still lacking, which is mainly due to the difficulty in capturing the multi-medium interface with high pressure ratio. In this study, we conducted a series of three-dimensional numerical simulations of UNDEXs with different initial shapes of a high-pressure gas bubble surrounded with water, to investigate the dynamics of the explosion caused by the shape change of the gas bubble. The movement of the interface was traced with the level-set method, and the conditions at the gas–water interface were treated using the Real Ghost Fluid Method (RGFM). As a result, the temporal evolution of the pressure field during the explosion and the pressure exerted at the boundaries of the computational domain in each simulation scenario were obtained. It was found that an initial shock wave is generated by the explosion and transmitted in the water, leading to an increase of the pressure and density. Meanwhile, inside the gas bubble, a rarefaction wave is formed, causing a pressure drop of the explosive gas. The results also show that if the initial shape of the bubble filled with the explosive gas is simple (e.g., spherical, cylindrical, cuboidal), the peak pressure of the shock wave is dominated by the cross-sectional area of the initial bubble along each direction. In addition, the duration of the high pressure phase of the shock wave is dictated by the thickness of the bubble. Moreover, the simulation of a bubble with an initially bullet-like shape revealed that this specific shape enables a concentration of the energy in a well-defined direction. The peak of the pressure generated by the gas bubble of this more complex shape is approximately twice than that of the other scenarios. However, the high pressure was found to drop more rapidly than that of the other cases, which might be attributed to the comparably small thickness of the initial bubble.
机译:水下勘探(UNDEXs)被广泛应用于应用工程的许多领域,包括石油生产和军舰保护。但是,UNDEX的三维计算仍然缺乏,特别是对于具有复杂初始形状的炸药而言,这主要是由于难以捕获具有高压力比的多介质界面。在这项研究中,我们对被水包围的高压气泡的不同初始形状进行了一系列UNDEX的三维数值模拟,以研究由气泡形状变化引起的爆炸动力学。界面的运动用水平设定法追踪,气-水界面的条件用真正的幽灵流体法(RGFM)处理。结果,获得了爆炸期间压力场的时间演变以及在每种模拟情况下施加在计算域边界上的压力。发现爆炸引起初始冲击波并在水中传播,导致压力和密度增加。同时,在气泡内部,形成稀疏波,引起爆炸性气体的压降。结果还表明,如果充满爆炸性气体的气泡的初始形状是简单的(例如球形,圆柱形,长方体),则冲击波的峰值压力将由沿每个气泡的初始气泡的横截面积决定。方向。另外,冲击波的高压阶段的持续时间由气泡的厚度决定。此外,对具有初始子弹形形状的气泡的仿真显示,这种特定形状可以使能量沿明确定义的方向集中。这种更复杂形状的气泡所产生的压力峰值大约是其他情况的两倍。但是,发现高压下降的速度比其他情况要快,这可能是由于初始气泡的厚度相对较小。

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