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首页> 外文期刊>Physics of fluids >Acoustic saturation in bubbly cavitating flow adjacent to an oscillating wall
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Acoustic saturation in bubbly cavitating flow adjacent to an oscillating wall

机译:邻近振动壁的气泡空化流中的声饱和

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Bubbly cavitating flow generated by the normal oscillation of a wall bounding a semi-infinite domain of fluid is computed using a continuum two-phase flow model. Bubble dynamics are computed, on the microscale, using the Rayleigh-Plesset equation. A Lagrangian finite volume scheme and implicit adaptive time marching are employed to accurately resolve bubbly shock waves and other steep gradients in the flow. The one-dimensional, unsteady computations show that when the wall oscillation frequency is much smaller than the bubble natural frequency, the power radiated away from the wall is limited by an acoustic saturation effect (the radiated power becomes independent of the amplitude of vibration), which is similar to that found in a pure gas. That is, for large enough vibration amplitude, nonlinear steepening of the generated waves leads to shocking of the wave train, and the dissipation associated with the jump conditions across each shock limits the radiated power. In the model, damping of the bubble volume oscillations is restricted to a simple "effective" viscosity. For wall oscillation frequency less than the bubble natural frequency, the saturation amplitude of the radiated field is nearly independent of any specific damping mechanism. Finally, implications for noise radiation from cavitating flows are discussed. (C) 2000 American Institute of Physics. [S1070-6631(00)00511-0]. [References: 40]
机译:使用连续两相流模型计算由界定流体的半无限区域的壁的正常振动产生的气泡空化流。使用Rayleigh-Plesset方程在微观尺度上计算气泡动力学。拉格朗日有限体积方案和隐式自适应时间行进被用来准确地解决气泡冲击波和流动中的其他陡峭梯度。一维非定常计算表明,当壁的振荡频率远小于气泡固有频率时,从壁辐射出的功率会受到声饱和效应的限制(辐射的功率与振动幅度无关),与纯净气体中的相似。即,对于足够大的振动幅度,所产生的波的非线性变陡导致波列的冲击,并且与每次冲击的跳跃条件相关的耗散限制了辐射功率。在模型中,气泡体积振荡的阻尼被限制为简单的“有效”粘度。对于壁振动频率小于气泡固有频率的情况,辐射场的饱和幅度几乎与任何特定的阻尼机制无关。最后,讨论了空化流对噪声辐射的影响。 (C)2000美国物理研究所。 [S1070-6631(00)00511-0]。 [参考:40]

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