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Optimal operations for hydrogen-based energy storage systems in wind farms via model predictive control

机译:通过模型预测控制的风电场基于氢气储能系统的最佳运算

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Efficient energy production and consumption are fundamental points for reducing carbon emissions that influence climate change. Alternative resources, such as renewable energy sources (RESs), used in electricity grids, could reduce the environmental impact. Since RESs are inherently unreliable, during the last decades the scientific community addressed research efforts to their integration with the main grid by means of properly designed energy storage systems (ESSs). In order to highlight the best performance from these hybrid systems, proper design and operations are essential. The purpose of this paper is to present a so-called model predictive controller (MPC) for the optimal operations of grid-connected wind farms with hydrogen-based ESSs and local loads. Such MPC has been designed to take into account the operating and economical costs of the ESS, the local load demand and the participation to the electricity market, and further it enforces the fulfill-ment of the physical and the system's dynamics constraints. The dynamics of the hydrogen-based ESS have been modeled by means of the mixed-logic dynamic (MLD) framework in order to capture different behaviors according to the possible operating modes. The purpose is to provide a controller able to cope both with all the main physical and operating constraints of a hydrogen-based storage system, including the switching among different modes such as ON, OFF, STAND-BY and, at the same time, reduce the management costs and increase the equipment lifesaving. The case study for this paper is a plant under development in the north Norway. Numerical analysis on the related plant data shows the effectiveness of the proposed strategy, which manages the plant and commits the equipment so as to preserve the given constraints and save them from unnecessary commutation cycles. (c) 2021 The Authors. Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC. This is an open access article under the CC BY license (http://creativecommons.org/ licenses/by/4.0/).
机译:高效的能源生产和消费是减少影响气候变化的碳排放的基本要点。在电网中使用的可再生能源(RESS)等替代资源可以降低环境影响。由于罗斯本身不可靠,在过去几十年中,科学界会通过适当设计的能量存储系统(ESS)来解决与主电网集成的研究工作。为了突出这些混合系统的最佳性能,适当的设计和操作是必不可少的。本文的目的是提供一个所谓的模型预测控制器(MPC),用于具有基于氢气的富氢的电网和局部载荷的网格连接的风电场的最佳运行。此类MPC旨在考虑ESS的运营和经济成本,本地负荷需求和参与电力市场,并进一步强制实施物理和系统的动态约束。基于氢的ESS的动态已经通过混合逻辑动态(MLD)框架来建模,以便根据可能的操作模式捕获不同的行为。目的是提供一种能够通过基于氢气存储系统的所有主要物理和操作约束来应对的控制器,包括不同模式的切换,例如ON,关闭,待机,并且同时减少管理成本并增加设备救生。本文的案例研究是北挪威开发的植物。相关植物数据的数值分析显示了拟议的策略的有效性,该策略管理工厂并提交设备,以保护给定的约束,并从不必要的换向周期保存它们。 (c)2021作者。 elsevier有限公司发布代表氢能出版物LLC。这是CC下的开放式访问文章(http://creativommons.org/许可/ / 4.0 /)。

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