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Online optimization for a plunger lift process in shale gas wells

机译:页岩气井柱塞举升过程的在线优化

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This paper presents a method for efficient optimization of a plunger lift process in shale gas wells. Plunger lift is a cyclic process consisting binary decision as well as continuous and discrete state variables. The time-series data comprising of surface measurements are converted into cycle-wise process-relevant performance outputs, while the binary manipulated variable is transformed into continuous threshold values. These transformed variables are used to develop a reduced order cycle-to-cycle model and corresponding receding horizon optimization problem that maximizes daily production while meeting operational constraints. The efficacy of the proposed algorithm is demonstrated on a simulated plunger lift process.
机译:本文提出了一种有效优化页岩气井柱塞举升过程的方法。柱塞举升是一个循环过程,包括二进制决策以及连续和离散状态变量。包含表面测量值的时间序列数据将转换为与周期相关的过程性能输出,而二进制调节变量将转换为连续的阈值。这些变换后的变量用于开发降阶的逐周期模型以及相应的后退优化问题,该问题可在满足运营约束的同时最大化每日产量。在模拟的柱塞举升过程中证明了该算法的有效性。

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