Ma Jingsen, Hsiao Chao-Tsung, Chahine Georges L
Dynaflow, Inc., 10621-J Iron Bridge Road, Jessup, MD, USA.
Dynaflow, Inc., 10621-J Iron Bridge Road, Jessup, MD, USA.
Ultrason Sonochem. 2018 Jan;40(Pt A):944-954. doi: 10.1016/j.ultsonch.2017.08.033. Epub 2017 Aug 31.
The dynamics of a bubble cloud excited by a sinusoidal pressure field near a rigid wall is studied using a novel Eulerian/Lagrangian two-phase flow model. The effects of key parameters such as the amplitude and frequency of the excitation pressure, the cloud and bubble sizes, the void fraction, and the initial standoff distance on the bubbles' collective behavior and the resulting pressure loads on the nearby wall are investigated. The study shows that nonlinear bubble cloud dynamics becomes more pronounced and results in higher pressure loading at the wall as the excitation pressure amplitude increases. The strongest collective bubble behavior occurs at a preferred resonance frequency. At this resonance frequency, pressure peaks orders of magnitudes higher than the excitation pressure result from the bubble interaction when the amplitude of the pressure excitation is high. The numerically obtained resonance frequency is significantly different from the reported natural frequency of a spherical cloud derived from linear theory, which assumes small amplitude oscillations in an unbounded medium. At high amplitudes of the excitation, the resonance frequency decreases almost linearly with the ratio of excitation pressure amplitude to ambient pressure until the ratio is larger than one.
利用一种新颖的欧拉/拉格朗日两相流模型,研究了刚性壁附近由正弦压力场激发的气泡云的动力学特性。研究了诸如激发压力的振幅和频率、云团和气泡尺寸、空隙率以及气泡与附近壁面的初始间隔距离等关键参数对气泡集体行为以及在附近壁面上产生的压力载荷的影响。研究表明,随着激发压力振幅的增加,非线性气泡云动力学变得更加显著,并导致壁面上的压力载荷更高。最强的气泡集体行为发生在一个优选的共振频率处。在这个共振频率下,当压力激发的振幅较高时,气泡相互作用会导致压力峰值比激发压力高出几个数量级。数值计算得到的共振频率与从线性理论推导的球形云团的报道固有频率有显著差异,线性理论假设在无界介质中存在小振幅振荡。在高激发振幅下,共振频率几乎随激发压力振幅与环境压力之比线性降低,直到该比值大于1。