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Minimization of water pumps' electricity usage: A hybrid approach of regression models with optimization

机译:最小化水泵的用电量:带有优化的回归模型的混合方法

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Due to pervasive deployment of electricity-propelled water-pumps, water distribution systems (WDSs) are energy-intensive technologies which are largely operated and controlled by engineers based on their judgments and discretions. Hence energy efficiency in the water sector is a serious concern. To this end, this study is dedicated to the optimal operation of the WDS which is articulated as minimization of the pumps' energy consumption while maintaining flow, pressure, and tank water levels at a minimum level, also known as pump scheduling problem (PSP). This problem is proved to be NP-hard (i.e. a difficult problem computationally). We therefore develop a hybrid methodology incorporating machine-learning techniques as well as optimization methods to address real-life and large-sized WDSs. Other main contributions of this research are (i) in addition to fixed-speed pumps, the variable-speed pumps are optimally controlled, (ii) and operational rules such as water allocation rules can also be explicitly considered in the methodology. This methodology is tested using a large dataset in which the results are found to be highly promising. This methodology has been coded as a user-friendly software composed of MS-Excel (as a user interface), MS-Access (a database), MATLAB (for machine-learning), GAMS (with CPLEX solver for solving optimization problem) and EPANET (to solve hydraulic models). (C) 2018 Elsevier Ltd. All rights reserved.
机译:由于普遍采用电动水泵,因此配水系统(WDS)是能源密集型技术,在很大程度上由工程师根据自己的判断和酌情权进行操作和控制。因此,水部门的能源效率是一个严重的问题。为此,本研究致力于WDS的最佳运行,其目的是将泵的能耗降至最低,同时将流量,压力和储罐水位保持在最低水平,这也称为泵调度问题(PSP)。 。事实证明,这个问题是NP难题(即计算上的难题)。因此,我们开发了一种混合方法,结合了机器学习技术和优化方法,以应对现实生活中的大型WDS。这项研究的其他主要贡献是:(i)除了定速泵之外,还对变速泵进行了最佳控制;(ii)在该方法中还可以明确考虑诸如水分配规则之类的运行规则。使用大型数据集对这种方法进行了测试,结果非常有希望。该方法已被编码为用户友好的软件,由MS-Excel(作为用户界面),MS-Access(数据库),MATLAB(用于机器学习),GAMS(带有CPLEX求解器以解决优化问题)和EPANET(解决水力模型)。 (C)2018 Elsevier Ltd.保留所有权利。

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