管道下局部冲刷预测的数值与解析模型

IF 2.5 3区 工程技术
Andrey Epikhin, Igor Potapov, Aleksandr Petrov, Aleksandr Kukharskii
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引用次数: 0

摘要

本文考虑紊流作用下管道周围的局部冲刷问题。用剪切应力湍流模型求解了Navier-Stokes方程。采用基于解析输沙模型的原始河床变形方程来描述底面的变化。所提出的泥沙输运方程基于颗粒流的库仑摩擦定律和湍流的普朗特摩擦定律,并与其他作者的大量现象学公式相一致。在OpenFOAM中实现了一种求解床面侵蚀数学模型的数值算法。数值模拟结果表明,在管道流线处产生湍流的影响下,出现了一个低陡度的特征底波,其参数与实验数据渐近一致。在对所考虑的情况进行实验和数值分析的基础上,提出了床面演化自相似行为的假设。基于这一假设,提出了一种构造床面对时空坐标的自相似依赖关系的新方法。在该方法中,确定了许多自相似底表面形状的切向底应力的平均值,然后使用所提出的分析模型计算了底波长和振幅的变化率。与实验数据和数值计算结果的比较表明,该方法的求解误差不超过百分之几,计算时间最多可减少30倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical and analytical models for prediction of the local scour under pipelines

This paper considers local scour around a pipeline under turbulent flow. The Navier-Stokes equations are solved with a shear stress turbulence model. The original bed deformation equation based on an analytical sediment transport model is used to describe the changes in the bottom surface. The proposed sediment transport equation is based on Coulomb’s friction law for granular flow, Prandtl’s friction law for turbulent flow, and agrees with a large number of phenomenological formulas by other authors. A numerical algorithm for solving the mathematical model of bed surface erosion is implemented in OpenFOAM. Numerical simulations of the problem show that under the influence of turbulent flow generated at the pipeline streamline, a characteristic bottom wave of low steepness appears, the parameters of which asymptotically agree with the experimental data. Based on the analysis of experimental and numerical studies of the considered case, an assumption about the self-similar behavior of the bed surface evolution is made. Based on this assumption, a new method of constructing the self-similar dependence of the bed surface on time and space coordinates is proposed. In the proposed approach, the average values of tangential bottom stresses are determined for a number of self-similar bottom surface shapes, and then the rates of change of bottom wave lengths and amplitudes are calculated using the proposed analytical model. A comparison with experimental data and numerical calculations shows that the solution error does not exceed a few percent and the computational time is reduced by up to 30 times.

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来源期刊
自引率
12.00%
发文量
2374
审稿时长
4.6 months
期刊介绍: Journal of Hydrodynamics is devoted to the publication of original theoretical, computational and experimental contributions to the all aspects of hydrodynamics. It covers advances in the naval architecture and ocean engineering, marine and ocean engineering, environmental engineering, water conservancy and hydropower engineering, energy exploration, chemical engineering, biological and biomedical engineering etc.
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