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An intelligent approach to optimize multiphase subsea oil fields lifted by electrical submersible pumps

机译:优化潜水电泵提起的多相海底油田的智能方法

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This paper aims to introduce a method to maximize the profit of subsea petroleum fields lifted by electrical submersible pumps (ESPs). Unlike similar previous research which dealt with single-phase fluids, the reservoir is assumed to have oil, water and gas. Two major steps are taken in this research. First, algorithms including artificial neural networks (more specifically, multi-layer perceptrons) are developed to estimate head and brake horse power (BHP) of ESPs for gaseous fluids. These algorithms are essential to estimate the profit of the petroleum field. Second, an evolutionary algorithm is proposed and verified to maximize the profit. The proposed algorithm includes a newly devised stage that particularly facilitates solving heavily constrained problems. Finally, the methodology is employed to solve several sample problems. (C) 2015 Elsevier B.V. All rights reserved.
机译:本文旨在介绍一种使电动潜水泵(ESP)提起的海底油田收益最大化的方法。与以前处理单相流体的类似研究不同,该油藏被认为具有石油,水和天然气。这项研究采取了两个主要步骤。首先,开发了包括人工神经网络(更具体地讲,多层感知器)在内的算法来估算气态流体ESP的头部和制动功率(BHP)。这些算法对于估算油田利润至关重要。其次,提出并验证了进化算法以最大化利润。所提出的算法包括一个新设计的阶段,该阶段特别有助于解决严重受限的问题。最后,该方法用于解决几个样本问题。 (C)2015 Elsevier B.V.保留所有权利。

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