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Numerical simulation of liquid sloshing phenomena in partially filled containers

机译:部分填充容器中液体晃荡现象的数值模拟

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In the simulation of the dynamic load excited by sloshing in a partially filled tank, appropriate boundary conditions need imposing to calculate the impact pressure. Traditionally, a thin artificial buffer zone is adopted near the tank ceiling and a linear combination of free surface dynamic and rigid wall boundary conditions are imposed inside the buffer zone. This investigation demonstrates that no special treatment is needed to describe the free surface, because a two-fluid approach based on a level set method is used to solve the Reynolds-averaged Navier-Stokes (RANS) equations in both water and air regions and the interface is treated as a variation of the fluid properties. All the boundary conditions adopted are those usually accepted in solutions of Navier-Stokes or Euler equations. Sloshing in a rectangular tank excited by a horizontal harmonic motion is assessed numerically at different filling levels and excitation frequencies. The dependency of numerical solution on grid resolution, time step size and the interface thickness are investigated. Further, numerical tests are conducted for a rectangular tank with both 45° and 60° chamfered ceiling corners subject to a harmonic rolling motion. The comparison of computed results with experimental data show the developed numerical method is capable of the simulation of dynamic pressure loads exerted on the tank walls and ceiling excited by fluid sloshing.
机译:在模拟由于部分装满的油箱中晃荡而激发的动载荷时,需要施加适当的边界条件来计算冲击压力。传统上,在罐顶附近采用薄的人造缓冲区,并在缓冲区内部施加自由表面动态和刚性壁边界条件的线性组合。这项研究表明不需要描述自由表面的特殊处理,因为基于水平集方法的双流体方法可用于求解水和空气区域中的雷诺平均Navier-Stokes(RANS)方程以及界面被视为流体性质的变化。所有采用的边界条件都是通常在Navier-Stokes或Euler方程的解中接受的条件。在不同的填充液位和激发频率下,对通过水平谐波运动激发的矩形罐中的晃动进行数值评估。研究了数值解对网格分辨率,时间步长和界面厚度的依赖性。此外,还对带有45°和60°倒角顶角的矩形罐进行谐波滚动运动进行了数值测试。计算结果与实验数据的比较表明,所开发的数值方法能够模拟流体晃动激发施加在罐壁和顶板上的动压力载荷。

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