首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Euler/Lagrange computations of pneumatic conveying in a horizontal channel with different wall roughness
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Euler/Lagrange computations of pneumatic conveying in a horizontal channel with different wall roughness

机译:具有不同壁面粗糙度的水平通道中气力输送的欧拉/拉格朗日计算

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摘要

The present study is related to the particle behaviour and the pressure drop in a particle-laden six meter long horizontal channel with rectangular cross-section from both experimental and numerical perspectives. Experiments and calculations are carried out for different spherical glass beads with diameters between 60 and 625 urn and mass loadings up to 1.0 (kg particles/kg gas). Additionally, stainless steel walls with different wall roughness are considered. In all experiments the air volume flow rate is constant in order to maintain a fixed gas average velocity of 20 m/s. As a result, the pressure drop in the channel is strongly influenced by wall roughness. Higher wall roughness implies higher pressure drop because of the increase in wall collision frequency, whereby momentum is extracted from the fluid due to two-way coupling. The numerical computations were performed by the Euler/Lagrange approach accounting for two-way and four-way coupling. For the calculation of the particle motion all relevant forces (i.e. drag, transverse lift and gravity), inter-particle collisions and wall collisions with wall roughness were considered. The agreement of the computations with the experiments was found to be very good for the gas and particle velocities as well as the pressure drop.
机译:从实验和数值的角度来看,本研究与具有矩形横截面的长满颗粒的六米长水平通道中的颗粒行为和压降有关。针对直径在60到625 um之间的不同球形玻璃珠进行了实验和计算,质量载荷高达1.0(kg颗粒/ kg气体)。另外,考虑具有不同壁粗糙度的不锈钢壁。在所有实验中,空气体积流量都是恒定的,以保持20 m / s的固定气体平均速度。结果,通道中的压降受到壁粗糙度的强烈影响。较高的壁粗糙度意味着由于壁碰撞频率的增加而导致较高的压降,从而由于双向耦合而从流体中提取动量。通过欧拉/拉格朗日方法进行了数值计算,考虑了双向和四向耦合。为了计算粒子运动,考虑了所有相关力(即阻力,横向升力和重力),粒子间碰撞以及具有壁粗糙度的壁碰撞。发现计算与实验的一致性对于气体和颗粒速度以及压降非常好。

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