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Numerical calculation of throttle nozzle diameter influence on downhole choke flow field

机译:油门喷嘴直径影响对井下扼流场流场的数值计算

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With calculation results comparison of different throttle nozzle diameter value, This article analyses the flow field with throttle nozzle diameter variety of 1.0mm, 2.0mm, 2.4mm, 2.6mm, 2.8mm, 4.0mm, while the other parameters take same value (such as the inlet pressure is 20mpa, the outlet pressure is 10MPa, the temperature is 333k, and the well depth is about 2000m). The results present the influence upon downhole choke flow field including pressure, velocity, temperature distribution. The pressure field composed by minimum on the axis shows the pressure dropping change at the throttle nozzle outlet. Velocity field gives the maximum value of velocity and Mach number, which determines the flow field is subsonic or supersonic flow. With hydrate formation conditions, temperature field formed by minimum on the axis gives the existing judgment of hydrate formation under a certain condition. With the throttle nozzle diameter increasing, the outlet flow maximum velocity increases, and the differential pressure before and after nozzle becomes larger, which means the pressure drop effect is better. The downhole choke design of throttle nozzle needs to consider the combination effects of pressure drop and temperature drop. These parameters provide reference for downhole choke structure design and operating performance improvement.
机译:随着计算结果比较不同节流阀喷嘴直径值,本文分析了流场,油门喷嘴直径为1.0mm,2.0mm,2.4mm,2.6mm,2.8mm,4.0mm,而其他参数采取相同的值(如随着入口压力为20MPa,出口压力为10MPa,温度为333K,孔深度为约2000米)。结果呈现对井下扼流场的影响,包括压力,速度,温度分布。由轴上的最小值组成的压力场表示节流阀喷嘴出口处的压降变化。速度场给出了速度和马赫数的最大值,它决定了流场是括号或超声波的流量。利用水合物形成条件,轴上最小的温度场使得在一定条件下的水合物形成的现有判断。随着节流阀喷嘴直径的增加,出口流动最大速度增加,喷嘴前后的差压变大,这意味着压降效果更好。油门喷嘴的井下扼流圈设计需要考虑压降和温度下降的组合效果。这些参数为井下扼流结构设计和操作性能改进提供了参考。

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