Institute of Applied Mechanics, Clausthal University of Technology, Adolph-Roemer Str. 2A, 38678 Clausthal-Zellerfeld, Germany.
Ultrason Sonochem. 2014 Jan;21(1):154-61. doi: 10.1016/j.ultsonch.2013.05.002. Epub 2013 May 25.
Unsteady numerical computations are performed to investigate the flow field, wave propagation and the structure of bubbles in sonochemical reactors. The turbulent flow field is simulated using a two-equation Reynolds-Averaged Navier-Stokes (RANS) model. The distribution of the acoustic pressure is solved based on the Helmholtz equation using a finite volume method (FVM). The radial dynamics of a single bubble are considered by applying the Keller-Miksis equation to consider the compressibility of the liquid to the first order of acoustical Mach number. To investigate the structure of bubbles, a one-way coupling Euler-Lagrange approach is used to simulate the bulk medium and the bubbles as the dispersed phase. Drag, gravity, buoyancy, added mass, volume change and first Bjerknes forces are considered and their orders of magnitude are compared. To verify the implemented numerical algorithms, results for one- and two-dimensional simplified test cases are compared with analytical solutions. The results show good agreement with experimental results for the relationship between the acoustic pressure amplitude and the volume fraction of the bubbles. The two-dimensional axi-symmetric results are in good agreement with experimentally observed structure of bubbles close to sonotrode.
采用非定常数值计算方法研究了声化学反应器中的流场、波传播和气泡结构。采用双方程雷诺平均纳维-斯托克斯(RANS)模型模拟湍流流场。采用有限体积法(FVM)基于亥姆霍兹方程求解声压分布。通过应用凯勒-米克西方程将液体的可压缩性考虑到第一声学马赫数阶,来考虑单个气泡的径向动力学。为了研究气泡的结构,采用单向耦合欧拉-拉格朗日方法将主体介质和气泡作为离散相进行模拟。考虑了阻力、重力、浮力、附加质量、体积变化和第一 Bjerknes 力,并比较了它们的量级。为了验证所实现的数值算法,将一维和二维简化测试案例的结果与解析解进行了比较。结果表明,在声压幅度与气泡体积分数之间的关系方面,与实验结果吻合良好。二维轴对称结果与接近超声换能器的气泡的实验观察到的结构吻合较好。