Power Generation Technology ›› 2024, Vol. 45 ›› Issue (6): 1163-1172.DOI: 10.12096/j.2096-4528.pgt.24017

• New Energy • Previous Articles    

Active Disturbance Rejection Control of Output Voltage of Solid Oxide Fuel Cell Based on Reinforcement Learning

Chaojun GUAN1, Zhengling LEI1, Haibo HUO1, Fang WANG1, Guoquan YAO2, Tao LIU3   

  1. 1.College of Engineering Science and Technology, Shanghai Ocean University, Pudong New District, Shanghai 201306, China
    2.Key Laboratory of High Performance Ship Technology of the Ministry of Education (Wuhan University of Technology), Wuhan 430063, Hubei Province, China
    3.College of Transport and Communications, Shanghai Maritime University, Pudong New District, Shanghai 201306, China
  • Received:2024-01-22 Revised:2024-04-29 Published:2024-12-31 Online:2024-12-30
  • Contact: Zhengling LEI
  • Supported by:
    National Natural Science Foundation of China(52301420);Open Fund of Key Laboratory of High Performance Ship Technology of the Ministry of Education(GXNC23052801);Capacity Building Project of Local Universities in Shanghai(23010502200)

Abstract:

Objectives In order to improve the performance and lifetime of solid oxide fuel cell (SOFC) systems, the 100 kW SOFC system was taken as the research object. The continuous adjustment of the controller coefficients was explored through reinforcement learning to realize the best comprehensive performance, while ensuring the output voltage tracking performance. Methods A mechanism-based SOFC output voltage system model was established, an improved nonlinear active disturbance rejection controller (NLADRC) was used to make the output voltage track the reference value well by controlling the input gas flow. Conventional single-channel controllers can only satisfy one objective at a time, and dual-channel controllers will increase system complexity, cost and risk of failure. An improved NLADRC controller based on the twin delayed deep deterministic policy gradient (TD3) was proposed to optimize the coefficients of nonlinear error feedback control law. Results The designed controller can improve SOFC output voltage tracking performance without violating fuel utilization constraints. Conclusions The designed controller has the advantages of strong adaptability, high stability, and the ability to overcome uncertainty, providing theoretical reference for designing output voltage controllers in practical SOFC systems.

Key words: solid oxide fuel cell (SOFC), twin delayed deep deterministic policy gradient (TD3), nonlinear active disturbance rejection control (NLADRC), fuel utilization, nonlinear error feedback control law, output voltage tracking, uncertainty

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