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Flow Pattern and Pressure Drop in Highly Concentrated Slurries Transportation Pipelines

机译:高度浓缩浆料运输管道的流动模式和压降

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Flow pattern and pressure drop in highly concentrated slurries transportation pipelines were discussed. The particles are settling, and tend to settle down to the bottom of pipes due to the action of gravity force forming different flow patterns which can be indicated by particle concentration profile. Three distinct flow patterns can be observed for different particle size distribution at different velocities: fully stratified, partially stratified and fully suspended flow patterns. As for pressure drop, it is well known that pressure drops in pipeline flows of slurries are strongly dependent on the flow pattern developed in a pipeline. Furthermore, fine particles suspended in water make the water more viscous, and increase the friction. In case of coarse particles, having larger volume, they have the tendency to contact with the pipe wall and with the other coarse particles more times, which increase the friction of flow. Meanwhile, coarse particles are lifted by the pressure difference generated as they rotate in the liquid preventing the coarse particles from settling down which results in less friction. The mixture of particles of different sizes is helpful to reduce pressure drop in pipeline flow slurries. Narrow grading particles tend to have high frictional losses, while broad grading particles have low frictional losses at high concentrations.
机译:讨论了高度浓缩浆料运输管道的流动模式和压降。由于重力力形成不同的流动模式的作用,颗粒稳定,并且倾向于沉降到管道的底部,这形成不同的流动模式,这可以通过颗粒浓度分布来指示。可以观察到不同速度的不同粒度分布的三个不同的流动模式:完全分层,部分分层和完全悬挂的流动模式。对于压降,众所周知,浆料管道流动中的压降强烈地取决于在管道中开发的流动模式。此外,悬浮在水中的细颗粒使水更粘稠,并增加摩擦。在具有较大体积的粗颗粒的情况下,它们具有与管壁接触的倾向并且更多的粗颗粒增加,这增加了流动的摩擦。同时,通过在液体中旋转时产生的压力差来提升粗颗粒,防止粗颗粒沉降,导致摩擦较小。不同尺寸的颗粒的混合物有助于减少管道流浆中的压降。窄的分级颗粒倾向于具有高摩擦损失,而广泛的分级颗粒在高浓度下具有低摩擦损失。

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