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Control-Oriented Modeling and Analysis of Air Management System for Fuel Reforming Fuel Cell Vehicle

机译:面向燃料重整燃料电池汽车的空气管理系统的面向控制的建模与分析

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摘要

With the purpose of meeting the specifically restrictive requirements of fuel reforming fuel cell vehicle, this paper brings into focus the issues of the transient operation of fuel cell systems and presents a control-oriented dynamic model of fuel cell air management system, suited for multivariable controller design, system optimization, and supervisory control strategy. In a first step, the dual analytical approach based on lumped and distributed parameter models is detailed: The partial differential equations deduced from mass/energy conservation laws and inertial dynamics are reduced to ordinary differential equations using spatial discretization and then combined with semiempirical actuator models to form the overall air system model. In a second step, a classical approach is followed to obtain a local linearization of the model. A validation of both nonlinear and linearized versions is performed by computational fluid dynamics simulations and experiments on a dedicated air system test bench. Thanks to dynamic analysis (pole/zero map), operating point impact and model order reduction are investigated. Finally, the multiinput multioutput state-space model—which balances model fidelity with model simplicity—can be coupled with reformer, stack, and thermal models to understand the system complexity and to develop model-based control methodologies.
机译:为了满足燃料重整燃料电池汽车的特殊限制要求,本文重点讨论了燃料电池系统瞬态运行的问题,并提出了面向控制的燃料电池空气管理系统动态模型,适用于多变量控制器设计,系统优化和监督控制策略。第一步,详细介绍了基于集总参数和分布参数模型的对偶分析方法:使用空间离散化将根据质量/能量守恒定律和惯性动力学推导的偏微分方程简化为常微分方程,然后与半经验致动器模型组合,形成整个空气系统模型。在第二步骤中,遵循经典方法以获得模型的局部线性化。通过计算流体动力学模拟和专用空气系统测试台上的实验,可以对非线性和线性化版本进行验证。借助动态分析(极点/零位图),研究了工作点影响和模型阶数减少。最后,可以在模型保真度与模型简单性之间取得平衡的多输入多输出状态空间模型可以与重整器,堆栈和热模型结合使用,以了解系统的复杂性并开发基于模型的控制方法。

著录项

  • 来源
    《Journal of Fuel Cell Science and Technology》 |2008年第1期|p.1-13|共13页
  • 作者单位

    Nicolas RomaniResearch Department, Renault, 1 Avenue du Golf, 78288 Guyancourt, France;

    Automatic Control Department, Ecole Supérieure d'Electricité (Supélec), Plateau du Moulon, 91192 Gif-sur-Yvette, FranceEmmanuel GodoyAutomatic Control Department, Ecole Supérieure d'Electricité (Supélec), Plateau du Moulon, 91192 Gif-sur-Yvette, FranceDominique BeauvoisAutomatic Control Department, Ecole Supérieure d'Electricité (Supélec), Plateau du Moulon, 91192 Gif-sur-Yvette, FranceVincent Le LayResearch Department, Renault, 1 Avenue du Golf, 78288 Guyancourt, France;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Air Management System, Fuel Reforming Fuel Cell Vehicle;

    机译:空气管理系统;燃料重整燃料电池汽车;
  • 入库时间 2022-08-17 13:23:50

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