超调(微波通信)
PID控制器
控制理论(社会学)
控制器(灌溉)
温度控制
电解法
堆栈(抽象数据类型)
控制工程
工程类
计算机科学
电解
化学
电解质
控制(管理)
生物
电气工程
物理化学
人工智能
程序设计语言
电极
农学
作者
Ruomei Qi,Jiarong Li,Jin Lin,Yonghua Song,Jiepeng Wang,Qiangqiang Cui,Yiwei Qiu,Ming Tang,Jian Wang
出处
期刊:Applied Energy
[Elsevier BV]
日期:2022-12-24
卷期号:332: 120551-120551
被引量:84
标识
DOI:10.1016/j.apenergy.2022.120551
摘要
Thermal management is vital for the efficient and safe operation of alkaline electrolysis systems. Traditional alkaline electrolysis systems use simple proportional–integral–differentiation (PID) controllers to maintain the stack temperature near the rated value. However, in renewable-to-hydrogen scenarios, the stack temperature is disturbed by load fluctuations, and the temperature overshoot phenomenon occurs which can exceed the upper limit and harm the stack. This paper focuses on the thermal modeling and controller design of an alkaline electrolysis system under dynamic operating conditions. A control-oriented thermal model is established in the form of a third-order time-delay process, which is used for simulation and controller design. Based on this model, we propose two novel controllers to reduce temperature overshoot: one is a current feed-forward PID controller (PID-I), the other is a model predictive controller (MPC). Their performances are tested on a lab-scale system and the experimental results are satisfying: the temperature overshoot is reduced by 2.2 °C with the PID-I controller, and no obvious overshoot is observed with the MPC controller. Furthermore, the thermal dynamic performance of an MW-scale alkaline electrolysis system is analyzed by simulation, which shows that the temperature overshoot phenomenon is more general in large systems. The proposed method allows for higher temperature set points which can improve system efficiency by 1%.
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