首页> 外文OA文献 >Numerical modelling of twin-screw pumps based on computational fluid dynamics
【2h】

Numerical modelling of twin-screw pumps based on computational fluid dynamics

机译:基于计算流体力学的双螺杆泵数值模拟

摘要

Increasing demands for high-performance screw pumps in oil and gas as well as other applications require deep understanding of the fluid flow field inside the machine. Important effects on the performance such as dynamic losses, influence of the leakage gaps and presence and extent of cavitation are difficult to observe by experiments. However, it is possible to study such effects using well-validated computational fluid dynamics models. The novel-structured numerical mesh consisting of a single-computational domain for moving screw pump rotors was developed to allow three-dimensional computational fluid dynamics simulation of such machine possible. Based on finite volume method, the instantaneous mass flow rates, rotor torque, local pressure field, velocity field and other performance indicators including the indicated power were predicted. A calculation model for the bearing friction losses was introduced to account for mechanical losses. The geometry of the inlet and outlet passages and piping system are taken into consideration to evaluate their influences on the pressure distribution and shaft power. The paper also shows the influence of rotor clearances on the pump performance. The computational fluid dynamics model was validated by comparing the numerical results with the measured performance obtained in the experimental test rig through the comprehensive experiment performed for a set of discharge pressures and rotational speeds. Validation includes comparison of mass flow rates, shaft power and efficiency under variety of speeds and discharge pressure. It has been found that the predicted results match well with the measurements. The results also showed that the radial clearances have larger influence on the mass flow rate than the interlobe clearance. The correct design of the flow passages within the screw pump plays significant role in minimizing required power consumption. The analysis presented in this paper contributes to better understanding of the working process inside the screw pump and offers a good reference to improve design and optimize such machines in terms of clearance selection, shape of the ports, piping system, etc. In future, this model will be used for analysis of cavitating flows and determining performance of other multiphase screw pumps.
机译:对石油和天然气以及其他应用中的高性能螺杆泵的需求不断增长,这需要深刻理解机器内部的流体流场。通过实验很难观察到对性能的重要影响,例如动态损失,泄漏间隙的影响以及气蚀的存在和程度。但是,可以使用经过充分验证的计算流体动力学模型来研究此类影响。开发了由用于移动螺杆泵转子的单一计算域组成的新颖结构的数值网格,以使这种机器的三维计算流体动力学仿真成为可能。基于有限体积法,预测了瞬时质量流量,转子转矩,局部压力场,速度场以及包括指示功率在内的其他性能指标。引入了轴承摩擦损失的计算模型以解决机械损失。考虑入口和出口通道以及管道系统的几何形状,以评估它们对压力分布和轴功率的影响。本文还显示了转子间隙对泵性能的影响。通过将数值结果与通过对一组排放压力和转速进行的综合实验在实验测试台中获得的测量性能进行比较,验证了计算流体动力学模型。验证包括比较各种速度和排气压力下的质量流量,轴功率和效率。已经发现,预测结果与测量结果非常匹配。结果还表明,径向间隙比叶瓣间隙对质量流率的影响更大。螺杆泵内流道的正确设计在最大程度地减少所需的功耗方面起着重要作用。本文提供的分析有助于更好地理解螺杆泵内部的工作过程,并为在间隙选择,端口形状,管道系统等方面改进设计和优化此类机器提供很好的参考。该模型将用于分析空化流并确定其他多相螺杆泵的性能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号