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Optimal design for component capacity of integrated energy system based on the active dispatch mode of multiple energy storages

机译:基于多能储存主动调度模式的集成能源系统组成容量的最佳设计

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The hourly cooperation of production units and storage units in integrated energy system (IES) improves its performance on energy generation and supply, but increases the complexity in the capacity design. Conventional methods are flawed in terms of inappropriate operation mode and inaccurate performance evaluation. To improve the reliability of IES design, this research adopts operation trajectory prediction, energy dispatch schedule, and real time correction into operation mode, as well as annual continuous active dispatch optimization into capacity design method. IES components are divided into production unit, storage unit, and backup units. The proposed operation mode operates storage units actively to shift peak demand and resist uncertainty. The proposed design method optimizes both the capacity and cooperation of all units through an annual continuous operation, which improves the stability and reliability of the system performance. Compared with conventional methods, IES designed by the proposed method reduces energy consumption by 2.22%, annual cost by 1.40%, and carbon emission by 3.87%. In addition, this IES presents stability and robustness under different renewable energy and customer demand uncertainties. The proposed operation mode and design method contribute to accurate and speedy optimization, and provide reliable suggestions and feedbacks for IES investment and management.(c) 2021 Elsevier Ltd. All rights reserved.
机译:整合能源系统(IES)生产单位和储存单元的每小时合作可提高其在能量发电和供应方面的性能,但增加了能力设计中的复杂性。在不适当的操作模式和不准确的性能评估方面存在常规方法。为了提高IES设计的可靠性,本研究采用操作轨迹预测,能源调度计划和实时校正,进入运行模式,以及年持续的主动调度优化进入容量设计方法。 IES组件分为生产单元,存储单元和备份单元。所提出的操作模式主动地操作存储单元以移位峰值需求并抵抗不确定性。所提出的设计方法通过年连续运行优化所有单元的能力和合作,这提高了系统性能的稳定性和可靠性。与常规方法相比,由所提出的方法设计的IES将能耗降低2.22%,年度成本下降1.40%,碳排放量为3.87%。此外,这一IES在不同的可再生能源和客户需求不确定性下呈现稳定性和稳健性。所提出的操作模式和设计方法有助于准确和迅速优化,并为IES投资和管理提供可靠的建议和反馈。(c)2021 Elsevier Ltd.保留所有权利。

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