Integrated Intelligent Energy ›› 2025, Vol. 47 ›› Issue (9): 71-79.doi: 10.3969/j.issn.2097-0706.2025.09.008

• Coordinated Optimization and Market Mechanisms of Flexible Resources • Previous Articles     Next Articles

Optimized wind-solar-storage configuration of industrial park microgrids based on improved differential evolution algorithm

ZHANG Yuanxi1(), YANG Guohua1,2,*(), MA Longteng1, MA Xin1, LIU Yaoze1   

  1. 1. School of Electronic and Electrical Engineering, Ningxia University, Yinchuan 750021, China
    2. Ningxia Key Laboratory of Electrical Energy Security, Yinchuan 750004, China
  • Received:2025-04-15 Revised:2025-07-11 Published:2025-09-25
  • Contact: YANG Guohua E-mail:2577621195@qq.com;ygh@nxu.edu.cn
  • Supported by:
    Ningxia Natural Science Foundation Project(2023AAC03853);Ningxia University Graduate Innovation Project(CXXM2025087)

Abstract:

To address the limitations of traditional differential evolution (DE) algorithms—susceptibility to local optima and weak physical interpretability—in the optimal configuration of wind-solar-storage systems in multi-park microgrids, an optimization framework integrating an improved DE algorithm with physical mechanisms was proposed. A wind-solar-storage configuration model was established with the objective of minimizing daily power supply costs, incorporating constraints on energy storage charging/discharging efficiency and state of charge. A triple-adaptive improved DE algorithm was designed: a dual-phase linear decay mechanism was used to adjust the scaling factor and crossover probability, an elite historical experience reuse strategy was integrated to enhance convergence speed, and a dual-mode oscillatory disturbance was introduced to increase population diversity. From the physical essence of source-load matching, the intrinsic patterns between energy storage configuration and wind-solar load curves were analyzed. Case studies showed that: the improved DE algorithm outperformed traditional DE, particle swarm optimization, and genetic algorithms, reducing the joint operating costs to 15 424.06 yuan; the joint operation reduced the power supply cost by 6.11% compared to the sum of independent operations and saved 30.77% of total energy storage power and 50.00% of capacity, with wind and solar curtailment reduced to zero; energy storage configuration followed a universal pattern that the power rating was determined by the maximum single-interval curtailment, and the capacity was determined by the maximum consecutive curtailment. Based on this, the physical estimation scheme for Park B reduced the coet to 5 065.43 yuan, which was lower than the result obtained by the optimization algorithm (5 066.22 yuan). By combining algorithm improvement with the exploration of physical patterns, a high-precision and strongly interpretable solution for the optimal configuration of wind-solar-storage systems is provided.

Key words: wind-solar-storage microgrid, coordinated scheduling, energy storage configuration, improved differential evolution algorithm

CLC Number: