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Simulação computacional da interação fluido-estrutura em bombas de cavidades progressivas

机译:螺杆泵中流固耦合的计算模拟

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摘要

The pumping through progressing cavities system has been more and more employed in the petroleum industry. This occurs because of its capacity of elevation of highly viscous oils or fluids with great concentration of sand or other solid particles. A Progressing Cavity Pump (PCP) consists, basically, of a rotor - a metallic device similar to an eccentric screw, and a stator - a steel tube internally covered by a double helix, which may be rigid or deformable/elastomeric. In general, it is submitted to a combination of well pressure with the pressure generated by the pumping process itself. In elastomeric PCPs, this combined effort compresses the stator and generates, or enlarges, the clearance existing between the rotor and the stator, thus reducing the closing effect between their cavities. Such opening of the sealing region produces what is known as fluid slip or slippage, reducing the efficiency of the PCP pumping system. Therefore, this research aims to develop a transient three-dimensional computational model that, based on single-lobe PCP kinematics, is able to simulate the fluid-structureinteraction that occurs in the interior of metallic and elastomeric PCPs. The main goal is to evaluate the dynamic characteristics of PCP s efficiency based on detailed and instantaneous information of velocity, pressure and deformation fields in their interior. To reach these goals (development and use of the model), it was also necessary the development of a methodology for generation of dynamic, mobile and deformable, computational meshes representing fluid and structural regions of a PCP. This additional intermediary step has been characterized as the biggest challenge for the elaboration and running of the computational model due to the complex kinematic and critical geometry of this type of pump (different helix angles between rotor and stator as well as large length scale aspect ratios). The processes of dynamic generation of meshes and of simultaneous evaluation of the deformations suffered by the elastomer are fulfilled through subroutines written in Fortan 90 language that dynamically interact with the CFX/ANSYS fluid dynamic software. Since a structural elastic linear model is employed to evaluate elastomer deformations, it is not necessary to use any CAE package for structural analysis. However, an initial proposal for dynamic simulation using hyperelastic models through ANSYS software is also presented in this research. Validation of the results produced with the present methodology (mesh generation, flow simulation in metallic PCPs and simulation of fluid-structure interaction in elastomeric PCPs) is obtained through comparison with experimental results reported by the literature. It is expected that the development and application of such a computational model may provide better details of the dynamics of the flow within metallic and elastomeric PCPs, so that better control systems may be implemented in the artificial elevation area by PCP
机译:渐进式空腔系统的抽水已越来越多地应用于石油工业。发生这种情况是因为它具有高浓度的高粘度油或带有高浓度沙子或其他固体颗粒的流体的能力。螺杆泵(PCP)基本上由转子(类似于偏心螺杆的金属装置)和定子(内部由双螺旋结构覆盖,可以是刚性的或可变形的/弹性的)组成。通常,它承受井压与泵送过程本身产生的压力的组合。在弹性PCP中,这种共同作用会压缩定子,并产生或增大转子和定子之间存在的间隙,从而降低其腔之间的闭合效果。密封区域的这种打开会产生所谓的流体滑移或滑移,从而降低了PCP泵送系统的效率。因此,本研究旨在建立一个瞬态三维计算模型,该模型基于单瓣PCP运动学,能够模拟金属和弹性PCP内部发生的流固耦合。主要目标是根据内部的速度,压力和变形场的详细和即时信息,评估PCP效率的动态特性。为了达到这些目标(模型的开发和使用),还需要开发一种方法来生成代表PCP流体和结构区域的动态,可移动和可变形的计算网格。由于这种类型的泵具有复杂的运动学和临界几何形状(转子和定子之间的螺旋角不同以及长比例比例长),因此,这一额外的中间步骤已成为计算模型运行和操作的最大挑战。 。动态生成网格和同时评估弹性体遭受的变形的过程是通过用Fortan 90语言编写的子例程完成的,该子例程与CFX / ANSYS流体动力学软件进行动态交互。由于使用了结构弹性线性模型来评估弹性体变形,因此无需使用任何CAE软件包进行结构分析。然而,这项研究也提出了使用超弹性模型通过ANSYS软件进行动态仿真的初步建议。通过与文献报道的实验结果进行比较,可以验证使用本方法学产生的结果(网格生成,金属PCP中的流动模拟以及弹性PCP中的流体-结构相互作用的模拟)。期望这种计算模型的开发和应用可以提供金属和弹性PCP内流动动态的更好的细节,以便PCP可以在人工高程区域中实现更好的控制系统。

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