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Optimizing Seat and Ball Combination of Actual Gas Lift Valve: An Experimental and CFD Simulation Study

机译:实际燃气升降阀的优化座椅和球组合:实验性和CFD仿真研究

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In this paper,comprehensive experimental and simulation studies were conducted to determine the optimum combination of seat and ball for actual gas lift valve(GLV).The experiments were run for multiple ball and seat sizes to cover the whole gamut of industrially used GLVs.A numerical model,built based on computational fluid dynamics(CFD),was validated first using experimental results.The difference between experimental and simulation runs for multiple cases was found to be maximum 5%.Finally,results from both simulations and experiments were utilized to determine the optimum seat and ball geometries.From the actual GLV experiments and the simulations,it was concluded that the optimum port top diameter(PTD)of the seat is 2/16-inch larger than the port bottom diameter(PBD)when used in combination with a ball that is 1/16-inch larger in dimeter than the PBD.It was also concluded that,with the aforementioned optimum combination of the ball and the seat,the entirely beveled seats perform better than both the partially beveled seats and the sharp edge seats.This optimum combination of the ball and the seat resulted in a GLV gas throughput improvement of more than 27% over the currently used design in the industry for 5/16-inch port seat.For larger port seats,this improvement is expected to be even greater.
机译:在本文中,进行了综合实验和仿真研究,以确定实际气体升降阀(GLV)的座椅和球的最佳组合。多球和座椅尺寸的实验覆盖工业上使用的GLVS的整个色域.A使用实验结果验证了基于计算流体动力学(CFD)构建的数值模型。发现多种病例的实验和模拟运行之间的差异最高为5%。最后,利用模拟和实验的结果来确定最佳座椅和球形几何形状。从实际的GLV实验和模拟中,得出结论是,当组合使用时,座椅的最佳端口顶部直径(PTD)比端口底部直径(PBD)大2/16英寸在比PBD中的下降表格中的1/16英寸较大的球。也得出结论,通过前述球和座椅的最佳组合,完全倾斜的座椅表现比部分倾斜的座椅和锋利的边缘座椅。球和座椅的最佳组合导致GLV气体通量超过27%以上的行业目前使用的5/16英寸端口座椅。对于更大的港口座椅,这种改进预计将更大。

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