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首页> 外文期刊>Journal of offshore mechanics and arctic engineering >Numerical Simulations of Turbulent Flow Through an Orifice Plate in a Pipe
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Numerical Simulations of Turbulent Flow Through an Orifice Plate in a Pipe

机译:管道中孔板湍流的数值模拟

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Orifice flowmelers are widely used in industries to measure the flowrate in pipelines. The flowrate inside the pipe can be calculated using the relationship between the flow velocity and the pressure drop across the orifice plate. In the present study, numerical simulations have been carried out using three-dimensional Reynolds-averaged Navier-Stokes (RANS) equations combined with the k-ω shear-stress transport (SST) turbulence model to thoroughly investigate the turbulent flow through a circular square-edged orifice with various orifice plate thicknesses and orifice diameters inside a pipe at different Reynolds numbers ranging from 2500 to 40,000. The orifice thickness to pipe diameter ratio (t) varies between 0.125 and 2, and the orifice diameter to pipe diameter (β) varies between 0.25 and 0.75. The resulting centerline profiles of the streamwise velocity and pressure of the present study are compared with the previous published numerical results and experimental data as the validation study. The effects of Reynolds numbers and orifice geometries on the pressure, the flow velocity, and vorticity distribution in the orifice are discussed in detail. It is found that for the fixed β, the discharge coefficient increases with the increasing t, and the vortical structure inside the orifice is separated into two regions located at the two edges of the orifice. For the fixed t, the size of the large recirculation motions behind the plate increases, and the vorticity around the plate becomes stronger with the decreasing β.
机译:孔口流量筛选广泛用于行业,以测量管道中的流量。管内部可以使用流速与孔板上的压降之间的关系来计算。在本研究中,使用三维雷诺平均的Navier-Stokes(RAN)方程与K-ω剪切应力传输(SST)湍流模型结合进行数值模拟,以通过圆形方形彻底地研究湍流在不同雷诺数的管道内具有各种孔板厚度和孔径的孔口,在不同的雷诺数的范围为2500至40,000。管道直径比(T)的孔厚度在0.125和2之间变化,并且管道直径(β)的孔口直径在0.25和0.75之间变化。将结果的中心线谱与本研究的流动速度和压力的曲线与先前公开的数值结果和实验数据进行比较,作为验证研究。详细讨论了雷诺数和孔孔几何形状对压力,流速和涡流分布的影响。结果发现,对于固定β,排出系数随着不断增加的T而增加,并且孔口内的涡流被分成位于孔口的两个边缘的两个区域中。对于固定的T,板后面的较大再循环运动的尺寸增加,并且板周围的涡度与降低β变得更强。

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