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Simulação computacional do escoamento em bombas de cavidades progressivas

机译:螺杆泵流量的计算机模拟

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摘要

The use of Progressing Cavity Pumps (PCPs) in artificial lift applications in low deep wells is becoming more common in the oil industry, mainly, due to its ability to pump heavy oils, produce oil with large concentrations of sand, besides present high efficiency when compared to other artificial lift methods. Although this system has been widely used as an oil lift method, few investigations about its hydrodynamic behavior are presented, either experimental or numeric. Therefore, in order to increase the knowledge about the BCP operational behavior, this work presents a novel computational model for the 3-D transient flow in progressing cavity pumps, which includes the relative motion between rotor and stator, using an element based finite volume method. The model developed is able to accurately predict the volumetric efficiency and viscous looses as well as to provide detailed information of pressure and velocity fields inside the pump. In order to predict PCP performance for low viscosity fluids, advanced turbulence models were used to treat, accurately, the turbulent effects on the flow, which allowed for obtaining results consistent with experimental values encountered in literature. In addition to the 3D computational model, a simplified model was developed, based on mass balance within cavities and on simplification on the momentum equations for fully developed flow along the seal region between cavities. This simplified model, based on previous approaches encountered in literature, has the ability to predict flow rate for a given differential pressure, presenting exactness and low CPU requirements, becoming an engineering tool for quick calculations and providing adequate results, almost real-time time. The results presented in this work consider a rigid stator PCP and the models developed were validated against experimental results from open literature. The results for the 3-D model showed to be sensitive to the mesh size, such that a numerical mesh refinement study is also presented. Regarding to the simplified model, some improvements were introduced in the calculation of the friction factor, allowing the application fo the model for low viscosity fluids, which was unsuccessful in models using similar approaches, presented in previous works
机译:在石油工业中,在深井的人工举升应用中使用螺杆泵(PCP)在石油工业中变得越来越普遍,这主要是因为它具有泵送重油的能力,可以生产出含沙量高的油,此外,与其他人工举升方法相比。尽管该系统已被广泛用作提油方法,但很少有关于其流体力学行为的研究,无论是实验还是数值研究。因此,为了增加对BCP操作行为的了解,这项工作提出了一种基于单元的有限体积方法,用于螺杆泵中3D瞬态流的新型计算模型,该模型包括转子和定子之间的相对运动。 。开发的模型能够准确预测容积效率和粘性松动,并提供泵内压力和速度场的详细信息。为了预测低粘度流体的PCP性能,使用了先进的湍流模型来精确地处理湍流对流动的影响,从而获得与文献中遇到的实验值一致的结果。除了3D计算模型外,还基于腔内的质量平衡并简化了动量方程的简化模型,以使沿腔之间的密封区域充分展开的流动得以实现。这种简化的模型基于文献中遇到的以前的方法,能够预测给定压差下的流量,呈现准确性和低CPU需求,从而成为用于快速计算并提供几乎实时的适当结果的工程工具。这项工作中提出的结果考虑了刚性定子PCP,并且针对公开文献的实验结果验证了开发的模型。 3-D模型的结果显示出对网格大小敏感,因此还提供了数值网格细化研究。关于简化模型,在摩擦系数的计算中引入了一些改进,从而使该模型可用于低粘度流体,而在以前的工作中使用类似方法在模型中是不成功的

著录项

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    Pessoa Paulo Alison Sousa;

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  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 por
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