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A NEW ENERGY OPTIMIZATION STRATEGY FOR PUMPING OPERATION IN WATER DISTRIBUTION SYSTEMS

机译:配水系统中抽水运行的新能源优化策略

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As time goes on, more and more operating-modes based on changing demand profiles will be compiled to enrich the range of feasible solutions for a water distribution system. This implies the conservation of energy consumed by a water pumping station and improves the ability for energy optimization. Another important goal was improving safety, reliability, and maintenance cost. In this paper, three important goals were addressed: cost-effectives, safety, and self-sustainability operations of water distribution systems. In this work, the objective functions to optimize were total electrical energy cost, maintenance costs, and reservoir water level variation while preserving the service provided to water clients. To accomplish these goals, an effective Energy Optimization Strategy (EOS) that manages trade-off among operational cost, system safety, and reliability was proposed. Moreover, the EOS aims at improving the operating conditions (i.e., pumping schedule) of an existing network system (i.e., with given capacities of tanks) and without physical changes in the infrastructure of the distribution systems. The new strategy consisted of a new Parallel Multi-objective Particle Swarm optimization with Adaptive Search-space Boundaries (P-MOPSO-ASB) and a modified EPANET. This has several advantages: obtaining a Pareto-front with solutions that are quantitatively equally good and providing the decision maker with the opportunity to qualitatively compare the solutions before their implementation into practice. The multi-objective optimization approach developed in this paper follows modern applications that combine an optimization algorithm with a network simulation model by using full hydraulic simulations and distributed demand models. The proposed EOS was successfully applied to a rural water distribution system, namely Saskatoon West. The results showed that a potential for considerable cost reductions in total energy cost was achieved (approximately % 7.5). Furthermore, the safety and the reliability of the system are preserved by using the new optimal pump schedules.
机译:随着时间的流逝,基于不断变化的需求概况的越来越多的操作模式将被编译,以丰富水分配系统的可行解决方案的范围。这意味着节约了水泵站消耗的能量,并提高了能量优化的能力。另一个重要目标是提高安全性,可靠性和维护成本。在本文中,解决了三个重要目标:供水系统的成本效益,安全性和自我可持续性运营。在这项工作中,要优化的目标功能是总电能成本,维护成本和水库水位变化,同时保留向水用户提供的服务。为了实现这些目标,提出了一种有效的能源优化策略(EOS),该策略可在运营成本,系统安全性和可靠性之间进行权衡取舍。此外,EOS旨在改善现有网络系统(即,具有给定的储罐容量)的操作条件(即,抽水时间表),并且在分配系统的基础设施中不进行物理改变。新策略包括新的具有自适应搜索空间边界的并行多目标粒子群优化(P-MOPSO-ASB)和改进的EPANET。这具有几个优点:获得在定量上同样好的解决方案的Pareto-front,并为决策者提供在解决方案付诸实践之前定性比较解决方案的机会。本文开发的多目标优化方法遵循现代应用程序,通过使用全液压仿真和分布式需求模型将优化算法与网络仿真模型相结合。拟议的EOS已成功应用于农村水分配系统,即Saskatoon West。结果表明,实现了大幅降低总能源成本的潜力(约7.5%)。此外,通过使用新的最佳泵计划,可以保留系统的安全性和可靠性。

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