Massive Multi-Source Joint Outbound and Benefit Distribution Model Based on Cooperative Game

Author:

He Wang1,Liu Min1,Zuo Chaowen1,Wang Kai1

Affiliation:

1. School of Electrical Engineering, Guizhou University, Guiyang 550025, China

Abstract

In light of the challenges posed by the widespread distribution of new energy sources in China and their distance from load centers, the power system must effectively integrate both new energy and thermal power transmission. To address this issue, we propose a dynamic coordinated scheduling model that combines wind, photovoltaic, and thermal power to optimize the profit of the energy complementary delivery system. Additionally, we present an improved ant lion optimization algorithm to investigate the coordinated scheduling and benefit distribution of these three power sources. This paper introduces a cooperative mode for benefit distribution and utilizes an enhanced Shapley value method to allocate the benefits of joint operation among the three parties. The distribution of benefits is based on the contribution of each party to the joint proceeds, considering the profit levels of joint outbound and independent outbound modes. Through our analysis, we demonstrate that the upgraded ant lion optimization algorithm facilitates finding the global optimal solution more effectively within the feasible zone. Furthermore, our suggested three-party combined scheduling model and profit-sharing approach are shown to be superior and feasible.

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference36 articles.

1. Source-grid-load multi-period optimal scheduling method considering wind-photovoltaic-photothermal combined DC transmission;Cui;Proc. CSEE,2022

2. He, W., Liu, M., Wang, K., and Pan, B. (2023, January 5–7). Massive Multi-source Joint Outbound and Benefit Distribution Model Based on Cooperative Game. Proceedings of the 2023 IEEE International Conference on Power Science and Technology (ICPST), Kunming, China.

3. Research status and prospect of water-wind-solar multi-energy complementary power generation scheduling problem;Shen;Proc. CSEE,2022

4. Challenges and thinking of large-scale new energy transmission power grid in Gansu;Zhang;Grid. Clean. Energy,2020

5. Optimal configuration of wind-solar-thermal-storage combined delivery system with CSP power station;Mei;J. Solar. Energy,2022

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