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Maximizing the Profit for Industrial Customers of Providing Operation Services in Electric Power Systems via a Parallel Particle Swarm Optimization Algorithm

机译:通过并行粒子群优化算法最大化在电力系统中提供运营服务的工业客户的利润

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摘要

Integration of renewable energy sources require an increase in the flexibility of power systems. Demand response is a valuable flexible resource that is not currently being fully exploited. Small and medium industrial consumers can deliver a wide range of underused flexibility resources associated with the electricity consumption in their production processes. Flexible resources should compete in liberalized operation markets to ensure the reliability of the system at a minimum cost. This paper presents a new tool to assist industrial demand response to participate in operation markets and optimize its value. The tool uses a combined physical-mathematical modelling of the industrial demand response and a Parallel Particle Swarm Optimization algorithm specifically tuned for the proposed problem to maximize the profit. The main advantages of the proposed tool are demonstrated in the paper through its application to the participation of a meat factory in the Spanish tertiary reserve market during a whole year using a quarter-hourly time resolution. The enhanced performance of the proposed tool with respect to previous methodologies is shown with these four flexible processes examples, where the maximum available profit obtained in the simultaneous consideration of all different flexible processes is computed. The flexible processes are technical and economically characterized in a way that makes the tool valid for most of the processes in the industry.
机译:可再生能源的集成需要增加电力系统的灵活性。需求响应是目前尚未充分利用的宝贵灵活资源。中小型工业消费者可以提供与生产过程中的电力消耗相关的广泛的未充分利用的灵活性资源。灵活的资源应在自由化运营市场中竞争,以确保系统的可靠性最低。本文提出了一种新工具,可以帮助工业需求响应参与运营市场并优化其价值。该工具使用工业需求响应的组合物理学建模和专门调整的并行粒子群优化算法,以便提出的问题最大化利润。本文在一整年使用四分之一小时的时间分辨率,本文通过其应用于西班牙三级储备市场参与的肉类厂的参与的主要优点。所提出的工具关于先前方法的增强性能是以这四个灵活的工艺示例所示,其中计算了在同时考虑所有不同灵活过程中获得的最大可用利润。灵活的过程是技术性和经济的特征,使工具适用于行业中的大多数过程。

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