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Regular Paper | Open Access

Enhancing Flexibility of Virtual Power Plants Considering Reconfiguration of District Heating Network

Peinan Fan1,2Yixun Xue1,2( )Haotian Zhao3Xinyue Chang1,2Jia Su1,2Ke Wang1,2Hongbin Sun1,2
College of Electrical and Power Engineering, Taiyuan University of Technology, Energy Internet Key Laboratory of Shanxi Province
Key Laboratory of Cleaner Intelligent Control on Coal & Electricity, Ministry of Education, Taiyuan 030024, China
Department of Electrical Engineering, Tsinghua University, Beijing 100084, China
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Abstract

Large-scale renewable energy penetration desires higher flexibility in the power system. Combined heat and power virtual power plants (CHP-VPPs) provide an economic-effective method to improve the power system flexibility by aggregating the distributed resources of an electric-thermal coupling system. The topology can be optimally reconfigured in a power distribution system by operating tie and segment switches. Similarly, the heat flow profile can be redistributed in the district heating system (DHS) with valve switching and provide notable flexibility for CHP-VPPs self-scheduling. To address this issue, an aggregation model for the CHP-VPP is proposed to trade in typical day-ahead energy and reserve electricity markets, which is formulated as an adjustable robust optimization (ARO) problem to assure the realizability of all dispatch requests. The energy flow model is introduced in DHS formulation to make the model solvable. Due to the binary switching variables in the second stage of the proposed ARO problem, classical Karush-Kuhn-Tucker-based algorithms cannot be adopted directly and a nested column-and-constraint generation solution strategy is proposed. Case studies based on an actual CHP-VPP certify the validity of the proposed model and algorithm.

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CSEE Journal of Power and Energy Systems
Pages 826-837

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Cite this article:
Fan P, Xue Y, Zhao H, et al. Enhancing Flexibility of Virtual Power Plants Considering Reconfiguration of District Heating Network. CSEE Journal of Power and Energy Systems, 2025, 11(2): 826-837. https://doi.org/10.17775/CSEEJPES.2022.08680

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Received: 08 December 2022
Revised: 24 April 2023
Accepted: 31 May 2023
Published: 24 July 2024
© 2022 CSEE.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).