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Model Predictive Control Optimization Strategy for Integrated Energy Systems: A Two-stage Dual-loop Optimization Framework

delete2024-10-01
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PRE
AI
X
Xing Dong
D
Daduan Zhao
B
Bo Sun *
DOI:10.1109/TSTE.2024.3409370delete
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摘要

摘要

En 中文
Integrated Energy Systems (IESs) are important vehicles for achieving energy conservation and emission reduction. However, operating an IES smoothly is difficult due to source-load fluctuations and the complexity of the multiple timescales of different energy flows. To tackle the challenges, this paper proposes a two-stage dual-loop optimization framework for IESs, where the two stages comprise the first stage: day-ahead cooperative optimization of source-storage-demand (DCOS), and the second stage: intraday dual-loop rolling optimization control (IDRO). In DCOS, energy storage, and integrated demand response models are established, and a carbon emission trading mechanism is introduced to achieve an economically low-carbon operating plan. In IDRO, an electric power rolling optimization model based on model predictive control is established in the inner loop, and a cooling and heating power output adjustment strategy based on user comfort event-trigger mechanism is developed in the outer loop. The proposed optimization strategy enables the coordinated operation of multiple energy flows across various time scales, effectively mitigating the imbalance between production and demand during intraday operations under source-load fluctuations scenario. In case studies, this strategy is applied to a typical IES, with simulations conducted to evaluate its performance during typical summer and winter seasons.
Keyword:
Optimization
Fluctuations
Carbon dioxide
Demand response
Predictive control
Carbon emissions
Renewable energy sources
Energy management systems
Low carbon economy
Integrated energy systems (IESs)
two-stage dual-loop optimization framework
model predictive control
integrated demand response
economic and low-carbon operation

期刊

IEEE Transactions on Energy Conversion 封面图
IEEE Transactions on Energy Conversion
IF:
5.4
论文数:
6.8K
被引数:
1.5W

机构

S
shandong university
学者数:
9.5W
论文数: 6.4W
被引数: 94
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