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首页> 外文期刊>European Journal of Mechanics, B. Fluids >Three-dimensional dynamic liquid slosh in partially-filled horizontal tanks subject to simultaneous longitudinal and lateral excitations
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Three-dimensional dynamic liquid slosh in partially-filled horizontal tanks subject to simultaneous longitudinal and lateral excitations

机译:局部充满水平罐中的三维动态液体晃动,同时受到纵向和横向激励

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摘要

Three-dimensional liquid slosh in a horizontal cylindrical tank is analyzed assuming inviscid, incompressible and irrotational flows under simultaneous application of longitudinal and lateral accelerations, idealizing a braking-in-a-turn maneuver in a road tanker. The spectral problem of liquid slosh within the partially-filled tank of arbitrary cross-section and finite length is initially formulated using the higher order boundary element method (BEM). The three-dimensional Laplace equation is subsequently reduced to a two-dimensional Helmholtz equation using the separation of variables, which significantly reduces the computing demand. The computing time is further reduced by reducing the generalized eigenvalue problem to a standard one considering only the velocity potential on the half free-surface length. The resulting natural slosh frequencies and modes are implemented in a linear multimodal method to obtain generalized coordinates of the free-surface in a partly-filled circular cross-section tank. The slosh forces and moments are subsequently formulated in terms of generalized coordinates and hydrodynamic coefficients considering the damping due to liquid viscosity in the boundary layer. It is shown that the proposed BEM integrating the multimodal method yields computationally efficient solution of the three-dimensional liquid slosh within moving horizontal tanks. The validity of the model is demonstrated using reported analytical and experimental results. The range of applicability of the linear theory for predicting three-dimensional transient slosh is further discussed through comparisons with nonlinear simulation results obtained from a commercial CFD code. The results suggest that the linear theory can predict the slosh forces and moments with reasonably good accuracy when the steady-magnitudes of the lateral and longitudinal accelerations are less than 0.3 g and 0.2 g, respectively, for a tank with aspect ratio in the order of 2.4. (C) 2015 Elsevier Masson SAS. All rights reserved.
机译:在水平和水平方向同时施加纵向加速度和横向加速度的情况下,假设卧式圆柱罐中的三维液体晃荡情况进行了分析,假设它们是不粘流体,不可压缩流体和无旋转流体,从而使公路罐车的转弯制动操作更为理想。最初使用高阶边界元方法(BEM)来公式化任意横截面和有限长度的部分填充罐中液体晃动的光谱问题。随后使用变量分离将三维Laplace方程简化为二维Helmholtz方程,从而大大减少了计算需求。通过将广义特征值问题简化为仅考虑自由表面一半长度上的速度势的标准特征值问题,可以进一步减少计算时间。以线性多峰方法实现最终的自然晃荡频率和模态,以获取部分填充的圆形横截面水箱中自由表面的广义坐标。随后考虑到边界层中液体粘度引起的阻尼,根据广义坐标和流体动力系数来公式化晃荡力和力矩。结果表明,所提出的BEM集成了多峰方法,可为移动水平罐中的三维液体晃荡提供计算有效的解决方案。使用报告的分析和实验结果证明了该模型的有效性。通过与从商用CFD代码获得的非线性仿真结果进行比较,进一步讨论了线性理论在预测三维瞬态晃动中的适用范围。结果表明,对于纵横比约为的水箱,当横向加速度和纵向加速度的稳定幅度分别小于0.3 g和0.2 g时,线性理论可以较好地预测晃荡力和力矩。 2.4。 (C)2015 Elsevier Masson SAS。版权所有。

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