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Simulation of a downhole jet-vortex pump's working process

机译:仿真井下喷射涡流泵的工作过程

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The article is devoted to the theoretical study of the operation process of the borehole ejection system as part of the tubing string, jet pump and packer installed below; the system implements the hydrojet method of oil well operation. The improved design of the jet pump contains inclined guiding elements placed in its receiving chamber for swirling the injected flow, which results in an increase in the efficiency of the borehole ejection system. Based on the law of conservation of liquid momentum in the mixing chamber of the jet pump and taking into account the inertial pressure component caused by the swirling of the injected flow, there is obtained the relative form of the equation of the ejection system pressure characteristic, the structure of which contains a component that determines the value of the additional dynamic head. According to the results obtained, the additional dynamic head caused by swirling of the injected flow is determined by the ratio of the geometrie dimensions of the flow path of the jet pump, the angle of in-clination of the elements for creating vortex flows, and the ratio of the power and reservoir fluids. In the case of asymmetric swirling of the injected flow, an increase in the value of the relative displacement of the jet pump decreases the value of the additional dynamie pressure. In order to study the effect of flow swirling on the energy characteristic of the ejection system, the pressure characteristic of the jet pump was transformed into the dependence of its efficiency on the injection coefficient. Jet pump models with the ratio of the cross-sectional areas of the mixing chamber and the nozzle of 5.012 and 6.464, respectively, were used to check the adequacy of the theoretical pressure and energy characteristics obtained during the simulation of the performance process of the concentric ejection system. The average error in the theoretical determination of the pressure and efficiency of the vortex jet does not exceed 8.65% and 6.48%, respectively.
机译:本文致力于钻孔喷射系统的操作过程的理论研究,作为下面的管柱,喷射泵和封隔器的一部分;该系统实现油井运行的水电方法。喷射泵的改进设计包括放置在其接收室中的倾斜引导元件,用于旋转注入的流动,这导致钻孔喷射系统的效率的增加。基于喷射泵的混合室中的液体动量保守规律,并考虑了喷射流动旋转引起的惯性压力分量,得到了喷射系统压力特性方程的相对形式,其中结构包含确定附加动态头的值的组件。根据所获得的结果,由喷射流的旋转引起的附加动态头由喷射泵的流动路径的石头尺寸的比率,用于产生涡流的元素的克隆的角度,以及功率和储层流体的比率。在喷射流的不对称旋转的情况下,喷射泵的相对位移的值的增加会降低附加动力量的值。为了研究流动旋转对喷射系统的能量特性的影响,将喷射泵的压力特性转化为其效率对注射系数的依赖性。喷射泵模型分别与5.012和6.464的混合室的横截面积和喷嘴的比率分别用于检查在模拟同心的性能过程中获得的理论压力和能量特性的充分性弹出系统。理论测定的平均误差分别的压力和效率的误差分别超过8.65%和6.48%。

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