A Control Framework for the Proton Exchange Membrane Fuel Cell System Integrated the Degradation Information
Abstract
:1. Introduction
2. PEMFC System Simulation Model
2.1. Data Monitoring Model
2.2. Controller Model
2.3. Actuator Model
2.4. Plant Model
2.4.1. Anode Channel Model
2.4.2. Cathode Channel Model
2.4.3. Coolant Channel Model
2.4.4. Voltage Calculation Model
3. Control Framework Design Based on the Degraded PEMFC
3.1. ECU Design
3.1.1. System On/Off Module
3.1.2. RUL Module
3.1.3. SoH Module
3.1.4. Current Determination Module
3.1.5. Ambient Information Perception Module
3.2. FCU Design
3.2.1. Stack Controller
3.2.2. Air Supply Subsystem Controller
3.2.3. H2 Supply Subsystem Controller
3.2.4. Thermal Management Subsystem Controller
3.2.5. DC/DC Subsystem Controller
4. Results and Discussion
4.1. Results Comparison of Stack
4.2. Results Comparison of Thermal Management Subsystem
5. Conclusions
- (a)
- This work described the modeling principles of the plant module including models of the anode channel, cathode channel, coolant channel, voltage calculation, and thermal management subsystems in detail.
- (b)
- This work designed a novel control framework including ECU, RUL, SoH, and FCU modules. This control framework introduces the results of the SoH estimation and RUL prediction to the ECU and FCU. The desired power of the stack was obtained, which was used as the real-time desired power of the PEMFC system by synthesizing the RUL, SoH, and ECU information of the stack.
- (c)
- The two operation modes after performance degradation of the stack, including constant current reducing power and constant power rising current, were analyzed. Furthermore, the output of the subsystem controllers and actuators were analyzed in detail under the operation mode of constant current reducing power. The results showed that when the PEMFC system was operated under the operation mode of constant current reducing power, the results of the air and hydrogen supply and DC/DC subsystems with/without the designed control framework were the same, while the thermal management subsystems showed different results. When the PEMFC system disused the designed control framework, the stack temperature showed a monotonically increasing trend, which indicates that the stack temperature tended to get out of control with the increase in the operation time. However, when the PEMFC system used the designed control framework, the stack temperature showed an increasing and then decreasing trend, which indicates that the stack temperature was still controllable.
- (d)
- The aim of this work was to verify the effectiveness of the proposed framework for PEMFC operation temperature control. This work was not experimentally verified due to the limitation of the experimental conditions and cost, and the control algorithms of each subsystem used PID control, which has not involved complex algorithms yet.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Fan, L.; Gao, J.; Shen, W.; Su, H.; Zhou, S.; Hou, Y. A Control Framework for the Proton Exchange Membrane Fuel Cell System Integrated the Degradation Information. Energies 2025, 18, 2438. https://doi.org/10.3390/en18102438
Fan L, Gao J, Shen W, Su H, Zhou S, Hou Y. A Control Framework for the Proton Exchange Membrane Fuel Cell System Integrated the Degradation Information. Energies. 2025; 18(10):2438. https://doi.org/10.3390/en18102438
Chicago/Turabian StyleFan, Lei, Jianhua Gao, Wei Shen, Hongtao Su, Su Zhou, and Yiwei Hou. 2025. "A Control Framework for the Proton Exchange Membrane Fuel Cell System Integrated the Degradation Information" Energies 18, no. 10: 2438. https://doi.org/10.3390/en18102438
APA StyleFan, L., Gao, J., Shen, W., Su, H., Zhou, S., & Hou, Y. (2025). A Control Framework for the Proton Exchange Membrane Fuel Cell System Integrated the Degradation Information. Energies, 18(10), 2438. https://doi.org/10.3390/en18102438