A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer
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A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer
A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer
中国化学工程学报(英文版)2024年76卷第12期 页码:251-263
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State Key Laboratory of Industrial Control Technology, Zhejiang University,Hangzhou,China,310027
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纸质出版:2024
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Haokun Xiong, Lei Xie, Cheng Hu, 等. A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer[J]. 中国化学工程学报(英文版), 2024,76(12):251-263.
Haokun Xiong, Lei Xie, Cheng Hu, Hongye Su. A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer[J]. Chinese Journal of Chemical Engineering, 2024, 76(12): 251-263.
Haokun Xiong, Lei Xie, Cheng Hu, 等. A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer[J]. 中国化学工程学报(英文版), 2024,76(12):251-263.DOI:
Haokun Xiong, Lei Xie, Cheng Hu, Hongye Su. A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer[J]. Chinese Journal of Chemical Engineering, 2024, 76(12): 251-263.DOI:
A fuzzy compensation-Koopman model predictive control design for pressure regulation in proten exchange membrane electrolyzer
Proton exchange membrane (PEM) electrolyzer have attracted increasing attention from the industrial and researchers in recent years due to its excellent hydrogen production performance. Developing accurate models to predict their performance is crucial for promoting and accelerating the design and optimization of electrolysis systems. This work developed a Koopman model predictive control (MPC) method incorporating fuzzy compensation for regulating the anode and cathode pressures in a PEM electrolyzer. A PEM electrolyzer is then built to study pressure control and provide experimental data for the identification of the Koopman linear predictor. The identified linear predictors are used to design the Koopman MPC. In addition
the developed fuzzy compensator can effectively solve the Koopman MPC model mismatch problem. The effectiveness of the proposed method is verified through the hydrogen production process in PEM simulation.
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