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首页> 外文期刊>The Canadian Journal of Chemical Engineering >A new approach to model friction losses in the water-assisted pipeline transportation of heavy oil and bitumen
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A new approach to model friction losses in the water-assisted pipeline transportation of heavy oil and bitumen

机译:一种新的重油和沥青水辅助管道运输中模型摩擦损失的新方法

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摘要

Continuous water-assisted flow (CWAF), where a water layer surrounds a viscous oil core, provides low energy, long distance transport of heavy oil and bitumen without requiring heating or solvent addition. In industrial applications of CWAF, the pipe wall is fouled by a thin coating of oil, an effect not considered in many studies of water-lubricated pipe flows. In the present study, a new method to model pressure loss in the water-assisted pipeline flow of heavy oil is introduced. The hydrodynamic effects produced by the wall-fouling layer are incorporated in the model as input parameters for CFD simulations. The most important of these parameters are the thickness of the wall-fouling layer and the equivalent hydrodynamic roughness it produces. The CFD methodology described here was developed on the ANSYS-CFX platform and is able to capture the effects of the wall-fouling layer, the hydrodynamic roughness produced by this layer, and the water hold-up. The new CFD model was validated using previously collected data from tests conducted in two separate pipeline loops (100 and 260 mm in diameter), using a range of oil viscosities, water fractions, and mixture velocities. Compared to existing models, the one presented here provides more accurate predictions and requires significantly fewer computing resources. Because the model was developed using a physics-based approach, it is a useful tool in evaluating the effects of pipe diameter, oil viscosity (or temperature), water cut, and mixture velocity on pressure losses in water-assisted heavy oil pipelines.
机译:连续水辅助流动(CWAF),水层围绕粘性油芯,提供低能量,重油和沥青的长距离传输,而无需加热或溶剂加入。在CWAF的工业应用中,管壁通过薄的油涂层污染,在许多水润滑管流的研究中不考虑的效果。在本研究中,引入了一种新的重质油管道流量的模拟压力损失的方法。由壁污染层产生的流体动力学效果在模型中作为CFD仿真的输入参数结合在一起。这些参数中最重要的是壁污垢层的厚度和它产生的等效流体动力学粗糙度。这里描述的CFD方法是在ANSYS-CFX平台上开发的,并且能够捕获壁污垢层的效果,由该层产生的水动力粗糙度以及水撑起。使用先前收集的数据从两种单独的管道环(直径为100和260mm),使用一系列油粘度,水分分离和混合速度来验证新的CFD模型。与现有模型相比,这里呈现的那个提供更准确的预测,并且需要较少的计算资源。由于该模型是使用基于物理学的方法开发的,因此是评估管道直径,油粘度(或温度),水切割和混合速度对水辅重油管道的压力损失影响的有用工具。

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