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Combined effects of viscosity and surface roughness on electric submersible pump performance

机译:粘度和表面粗糙度对潜水电泵性能的综合影响

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An electric submersible pump that lifts crude oil from well bore is a type of multi-stage centrifugal pump. The unexpected wellbore conditions like change in pumping fluid viscosity and sand production severely affect pump performance and eventually lead to breakdown. The present study proposes a numerical approach to understand the effects of fluid viscosity and surface roughness of the flow passages in an electric submersible pump at design and off-design conditions. A three-dimensional numerical analysis was carried out by solving Reynolds-averaged Navier-Stokes equations with shear stress transport turbulence model to characterize performance of the pump. The pumping fluids, i.e., water and crude oils of different viscosities were analyzed for different surface roughness (Ks) values. The model predictions were compared with a theoretical one-dimensional model for the effect of viscosity and surface roughness. It was found that the disc-friction and the skin-friction losses are sensitive hydraulic losses of which the disc-friction loss increases with increase in viscosity, whereas skin-friction loss decreases with increase in surface roughness at high viscosity. The combined effect of viscosity and roughness showed a complicated behavior and eventually an improvement in pump performance at a higher surface roughness compared to a smoother and lowers surface roughness.
机译:从井眼中提起原油的潜水电泵是一种多级离心泵。意外的井筒状况(例如泵送流体粘度的变化和产砂量)会严重影响泵的性能,并最终导致故障。本研究提出了一种数值方法来理解电动潜油泵在设计和非设计条件下的流体粘度和流道表面粗糙度的影响。通过用切应力传递湍流模型求解雷诺平均Navier-Stokes方程进行三维数值分析,以表征泵的性能。分析了不同粘度的泵送流体(即水和原油)​​的不同表面粗糙度(Ks)值。将模型预测值与理论一维模型进行比较,以了解粘度和表面粗糙度的影响。发现圆盘摩擦损失和表皮摩擦损失是敏感的水力损失,在高粘度下,圆盘摩擦损失随粘度的增加而增加,而圆盘摩擦损失随表面粗糙度的增加而减少。粘度和粗糙度的综合作用表现出复杂的行为,与较光滑的表面粗糙度相比,最终在较高的表面粗糙度下泵性能有所改善。

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