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Optimization models to save energy and enlarge the operational life of water pumping systems

机译:优化模型以节省能源并延长水泵系统的使用寿命

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Water pumping systems are widely used in industrial and civil applications. During their operational life, they consume energy and materials (mainly for installation and replacement of components). The aim of this paper is to optimize the pump operations in order to save energy and enlarge the operational life of the pumps and their components. This paper addresses the multi-period (e.g. 24-hours time horizon) optimization of pumping systems. To this end, we have developed a simulation-based optimization approach including novel relevant technical features of a generic but realistic pumping system, namely cavitation and overflow. The proposed multi-period optimization differs further from the classic static optimization (i.e. at the design stage), proposing a new dynamic approach in which pump activation is steered dynamically for an optimal management of the variability of water inflow. Furthermore, the problem includes constraints on the number of pump activations allowed to reduce material strain. The performances of different meta-heuristic optimization algorithms (e.g. genetic algorithm, simulated annealing and particle swarm optimization) for solving the problem are compared. The numerical results show that energy savings are possible with the dynamic approach and that particle swarm optimization and simulated annealing algorithms provide the most suitable solutions for this problem. (C) 2018 Elsevier Ltd. All rights reserved.
机译:水泵系统广泛用于工业和民用领域。在其使用寿命期间,它们会消耗能量和材料(主要用于安装和更换组件)。本文的目的是优化泵的运行,以节省能源并延长泵及其组件的使用寿命。本文介绍了泵系统的多周期(例如24小时时间范围)优化。为此,我们开发了一种基于仿真的优化方法,其中包括通用但现实的泵送系统的新相关技术特征,即气蚀和溢流。拟议的多周期优化与经典的静态优化(即在设计阶段)有所不同,它提出了一种新的动态方法,其中动态地控制泵的激活以优化水流入量的变化管理。此外,问题包括限制泵激活的次数以减少材料应变。比较了用于解决问题的不同元启发式优化算法(例如遗传算法,模拟退火和粒子群优化)的性能。数值结果表明,采用动态方法可以节省能源,并且粒子群优化和模拟退火算法为该问题提供了最合适的解决方案。 (C)2018 Elsevier Ltd.保留所有权利。

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