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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Control of proton exchange membrane fuel cells using data driven state space models
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Control of proton exchange membrane fuel cells using data driven state space models

机译:使用数据驱动状态空间模型控制质子交换膜燃料电池

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摘要

Proton exchange membrane fuel cells (PEMFCs) are increasingly being researched upon due to their potential toward sustainable energy generation. Toward improved productivity of PEMFCs, it is important to develop systematic approaches for optimization and control of their operations. PEMFCs pose interesting challenges toward these tasks due to their complex behavior such as nonlinearity and spatial variations. While first principles model based approaches could be used, a more mathematically attractive and cost-effective alternative is to use empirical modeling approaches for representing the system dynamics toward optimization and control. In this paper, we propose to use a novel, innovation form of state space models that facilitate the development of advanced control algorithms such as linear quadratic Gaussian (LQG) and model predictive control (MPC), and provide improved disturbance rejection necessary for these applications. We demonstrate the applications of such model based algorithms via simulations involving a distributed along-the-channel model of the PEMFC, and also present experimental validation on a PEMFC setup.
机译:由于质子交换膜燃料电池(PEMFC)具有可持续能源生产的潜力,因此越来越多地对其进行研究。为了提高PEMFC的生产率,重要的是开发用于优化和控制其操作的系统方法。 PEMFC由于其复杂的行为(例如非线性和空间变化)而对这些任务提出了有趣的挑战。虽然可以使用基于第一原理模型的方法,但在数学上更具吸引力和成本效益的替代方法是使用经验建模方法来表示朝着优化和控制的系统动态。在本文中,我们建议使用一种新颖的状态空间模型形式,以促进高级控制算法(例如线性二次高斯(LQG)和模型预测控制(MPC))的开发,并为这些应用提供必要的改进的干扰抑制能力。我们通过涉及PEMFC的分布式沿通道模型的仿真来演示这种基于模型的算法的应用,并且还介绍了PEMFC装置上的实验验证。

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