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Evaluation of the Behavioral Characteristics in a Gas and Heavy Oil Stratified Flow According to the Herschel–Bulkley Fluid Model

机译:根据Herschel-Bulkley流体模型评估气体和重油分层流动的行为特征

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At present, most researches on gas–liquid two-phase flow use a power-law fluid model. However, with the development of unconventional petroleum resources and the restarting of heavy oil, the fluid showed strong yield characteristics. The power-law constitutive will not be able to express the yield-pseudoplastic fluid rheological properties. In order to make the study applicable to a larger range of shear rates, this study used the Herschel–Bulkley fluid model to discuss the gas–liquid flow characteristics. Based on the Herschel-Bulkley fluid constitutive, a two-fluid model, combined with dimensionless and iterative calculation methods, was used to theoretically derive the prediction model of liquid holdup and pressure drop for gas–liquid stratified flow. The effects of non-Newtonian fluid rheological parameters, flow conditions, and pipeline geometry on Herschel–Bulkley fluid and gas stratified flow were further analyzed. The results show that the power-law index n and the yield stress τ_(0) (characterizing the rheological characteristics of the liquid phase) have significant effects on the gas–liquid two-phase stratified flow. Specifically, the enhanced liquid yield and shear thinning characteristics will lead to an increase in liquid holdup and a decrease in pressure drop. Comparing with the experimental data, the calculation model proposed in this work has a good prediction effect and provides new insights into the flow behavior of gas and waxy heavy oil with yield stress.
机译:目前,大多数对气液两相流的研究使用了动力法流体模型。然而,随着非传统石油资源的发展和重油的重启,流体显示出强产量特征。功率法本构体将无法表达产率 - 假塑性流体流变性质。为了使研究适用于更大范围的剪切速率,本研究使用了Herschel-Bulkley流体模型来讨论气液流动特性。基于Herschel-Bulkley流体构成型,两种流体模型与无量纲和迭代计算方法结合,用于理论上导出液体储存和压降的预测模型,用于气液分层流动。进一步分析了非牛顿流体流变液参数,流动条件和管道几何形状的效果进一步分析了Herschel-Bulkley流体和气体分层流动。结果表明,电力法指数 N和屈服应力τ_(0)(表征液相的流变特性)对气液两相分层流动具有显着影响。具体地,增强的液体产量和剪切稀释特性将导致液体储存的增加和压降降低。比较实验数据,本作工作中提出的计算模型具有良好的预测效果,并为屈服应力的气体和蜡质重油的流动性提供了新的洞察。

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