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Numerical analysis of fluid hammer in helical pipes considering non-Newtonian fluids

机译:考虑非牛顿液体螺旋管流体锤的数值分析

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This study focuses on a 3D CFD analysis of the laminar fast transient flow of non-Newtonian fluids through helical pipes. Classical simulations of fluid hammer do not deal with the pipeline helicity and non-Newtonian characteristics of the fluid, while the present work addresses those features. To this end, ANSYS FLUENT is used for simulation of the 3D domain and the power-law model is employed to accommodate the non-Newtonian behavior of the fluid. Effects of the pipe wall elasticity and compressibility of the working fluid are taken into account through a modified bulk modulus elasticity of the fluid using a UDF code. The results of the three-dimensional numerical analysis followed herein demonstrate good agreement with the available experimental data, and they show that non-Newtonian properties of the fluid significantly influence the pressure head response, velocity and shear stress profiles, and also the strength of the formed secondary flows. At the first stage of the fluid hammer, where the maximum deviation arises, the magnitude of the wall shear stress at the pipe midpoint for the shear-thinning and shear thickening fluids are respectively 67.7% lower and 200% higher than the Newtonian fluid. Furthermore, the average magnitude of the axial vorticity over the upper half of the pipe cross-section area for the shear-thinning and shear-thickening fluids are respectively 65.5% lower and 111.7% upper than the Newtonian case.
机译:本研究专注于通过螺旋管的非牛顿流体的层流快速流动的3D CFD分析。流体锤的古典模拟不处理流体的管道螺旋和非牛顿特征,而当前工作解决了这些特征。为此,ANSYS流畅的用于模拟3D结构域,采用电力法模型来适应流体的非牛顿行为。使用UDF代码通过流体的改性体积弹性来考虑工作流体的管壁弹性和可压缩性的影响。本文遵循的三维数值分析的结果表明了与可用的实验数据的良好一致性,并且他们表明流体的非牛顿性质显着影响压力头响应,速度和剪切应力曲线,以及形成二次流动。在流体锤的第一阶段,在最大偏差产生的情况下,剪切稀释和剪切增稠流体的管道中点处的壁剪切应力的大小分别比牛顿流体低67.7%,高出200%。此外,对剪切变薄和剪切增稠流体的管道横截面面积的上半部分上半部分上半部分的平均大小分别比牛顿壳为65.5%和111.7%。

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