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Comparative Study of Parsimonious NARX Models for Three Phase Separator

机译:三相分离器帕克利鼻型模型的比较研究

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The three phase separator is an important unit in oil and gas production facilities to separate gas, water and condensate from the fluid (raw gas) generated from gas wells. A dynamic model of the three phase separator is essential for process optimization and control design. Since first principles modelling of the three phase separator is complex, a data based model (Wavelet Network based Nonlinear AutoRegressive eXogenous model (WN-NARX)) is used to capture the dynamics of the process. As most of the terms in the WN-NARX expansion are redundant, this identification problem is over parameterized. In order to handle this issue, a sparsity constraint on the parameter vector is considered and sparse estimation algorithms such as Orthogonal Matching Pursuit (OMP) and Least Angle Regression (LAR) are used for identification of the WA-NARX model. The application of these sparse estimation methods for identification of an industrial three phase separator process is demonstrated.
机译:三相分离器是石油和天然气生产设施中的一个重要单元,以将气体,水和冷凝物与来自气井产生的液体(原料气体)分开。三相分离器的动态模型对于过程优化和控制设计至关重要。由于三相分离器的第一个原理建模是复数,因此基于数据的模型(基于小波网络的非线性自回转性外源模型(Wn-Narx))来捕获该过程的动态。由于WN-NARX扩展中的大多数术语都是冗余的,因此该识别问题在参数化上。为了处理这个问题,考虑参数向量的稀疏性约束,并且诸如正交匹配追踪(OMP)和最小角度回归(LAR)的稀疏估计算法用于识别WA-NARX模型。证明了这些稀疏估计方法的应用,用于识别工业三相分离器过程。

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