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首页> 外文期刊>Journal of Computational and Applied Research in Mechanical Engineering (JCARME) >Numerical investigation of vertical and horizontal baffle effects on liquid sloshing in a rectangular tank using an improved incompressible smoothed particle hydrodynamics method
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Numerical investigation of vertical and horizontal baffle effects on liquid sloshing in a rectangular tank using an improved incompressible smoothed particle hydrodynamics method

机译:用改进的不可压缩平滑粒子流体动力学法测定矩形箱中液体晃动垂直和水平挡板效应的数值研究

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Liquid sloshing is a common phenomenon in the transporting of liquid tanks. Liquid waves lead to fluctuating forces on the tank wall. If these fluctuations are not predicted or controlled, they can lead to large forces and momentum. Baffles can control liquid sloshing fluctuations. One numerical method, widely used to model the liquid sloshing phenomena is Smoothed Particle Hydrodynamics (SPH). Because of its Lagrangian nature, SPH is suitable for simulating free surface flow. In the present study, a relatively accurate Incompressible SPH (ISPH) method improved by kernel gradient correction tensors, particle shifting algorithms, turbulence viscosity calculations, and free surface particle detectors is applied for the free surface flow modeling. In comparison to the other SPH Simulations and experimental data, these results show that the present algorithm is effective for simulating free surface problems. The present algorithm has been applied to simulate liquid sloshing phenomena, while the aim of this study is the investigation of vertical and horizontal baffle effects on the control and damping of liquid sloshing. Results show that for vertical baffles, baffle size has a major role in sloshing fluctuation damping. For horizontal baffles, also including size, the baffle base position has a significant role in liquid sloshing fluctuation damping. When horizontal baffle is near the free surface, sloshing fluctuation-damping increases.
机译:液体晃动是运输液体罐中的常见现象。液体波导致罐壁上的力量波动。如果没有预测或控制这些波动,它们会导致大的力量和势头。挡板可以控制液体晃动波动。一种数值方法,广泛用于模拟液体晃动现象是平滑的粒子流体动力学(SPH)。由于其拉格朗日性质,SPH适用于模拟自由表面流动。在本研究中,通过核梯度校正张量,颗粒移位算法,湍流粘度计算和自由表面粒度检测器改善了一种相对准确的不可压缩的SPH(ISWH)方法,用于自由表面流动建模。与其他SPH仿真和实验数据相比,这些结果表明,本算法对于模拟自由表面问题是有效的。本算法已经应用于模拟液体晃动现象,而本研究的目的是对垂直和水平挡板对液体晃动的控制和阻尼的影响。结果表明,对于垂直挡板,挡板尺寸在晃动波动阻尼方面具有重要作用。对于水平挡板,还包括尺寸,挡板基位位置在液体晃动波动阻尼中具有重要作用。当水平挡板接近自由表面时,晃动波动阻尼增加。

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