A systemic model predictive control based on adaptive power pinch analysis for load shifting and shedding in an isolated hybrid energy storage system

Q3 Energy Journal of Energy Systems Pub Date : 2022-12-31 DOI:10.30521/jes.1006252
B. Nyong-Bassey, A. Epemu
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引用次数: 1

Abstract

This paper presents a novel systemic algorithm based on conservative power pinch analysis principles using a computationally efficient insight-based binary linear programming optimization technique in a model predictive framework for integrated load shifting and shedding in an isolated hybrid energy storage system. In a receding 24-hour predictive horizon, the energy demand and supply are integrated via an adaptive power grand composite curve tool to form a diagonal matrix of predicted hourly minimum and maximum energy constraints. The intgrated energy constraints must be satisfied recursively by the binary optimisation to ensure the energy storage’s state of charge only operates within 30% and 90%. Hence, the control command to shift or shed load is contingent on the energy storage state of the charge violating the operating constraints. The controllable load demand is shifted and/or shed to prevent any violations while ensuring energy supply to the most critical load without sacrificing the consumers' comfort. The proposed approach enhances efficient energy use from renewable energy supply as well as limits the use of the Hydrogen resources by a fuel cell to satisfy controllable load demands which can be shifted to periods in the day with excess renewable energy supply.
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基于自适应功率夹点分析的孤立混合储能系统负荷转移与脱落系统模型预测控制
本文提出了一种基于保守的功率夹点分析原理的系统算法,该算法采用一种计算效率高的基于洞察力的二元线性规划优化技术,在模型预测框架中求解孤立混合储能系统的综合负荷转移和脱落。在未来的24小时预测范围内,能源需求和供应通过自适应功率大复合曲线工具进行整合,形成预测的每小时最小和最大能源约束的对角线矩阵。二元优化必须递归地满足综合能量约束,以确保储能系统的充电状态仅在30%和90%之间。因此,转移或卸载负载的控制命令取决于违反运行约束的电荷的储能状态。可控制的负荷需求被转移和/或脱落,以防止任何违规,同时确保能源供应到最关键的负荷,而不牺牲消费者的舒适度。提出的方法提高了可再生能源供应的有效能源利用,并限制了燃料电池对氢资源的使用,以满足可控制的负荷需求,这些负荷可以转移到一天中可再生能源供应过剩的时期。
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来源期刊
Journal of Energy Systems
Journal of Energy Systems Environmental Science-Management, Monitoring, Policy and Law
CiteScore
1.60
自引率
0.00%
发文量
29
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