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Modeling and Control of the Fuel Supply System in a Polymer Electrolyte Membrane Fuel Cell

机译:聚合物电解质膜燃料电池燃料供应系统的建模与控制

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摘要

Prolonging membrane longevity as well as improving fuel economy are essential steps toward utilization of fuel cells in industrial applications. Focusing on polymer electrolyte membrane (PEM) fuel cells, the present work elucidates a systematic approach to deal with cell durability issues, inflicted by membrane pinholes. This includes the model-based control of fuel overpressure, which is defined as the pressure difference between the anode and cathode compartments, at the inlet side of the fuel cell stack. Moreover, to enhance fuel savings, this work proposes a novel model-based technique for estimation of hydrogen concentration, which is used as the basis of fuel purging control. Employing a Ballard 3kW test station equipped with a 9-cell Mk1100 PEM fuel cell, the entire system is modeled using pneumatic variables. The developed model is experimentally validated. Depending on the underlying objective, a relevant system configuration for the PEM fuel cell anode is adopted. These include a flow-through anode, dead-ended anode, and anode with recirculation structures. A model predictive controller (MPC) is deployed to achieve the controller objectives, which include the improvement in control of the system transient response during the load change, reduction of hydrogen emission, and retaining the cell voltage level of a defective cell, by maintaining the fuel overpressure in the desired region. Furthermore, the controller performance is verified experimentally. Using the pressure drop across the fuel cell stack anode, the hydrogen concentration on the anode side is estimated in a hydrogen-nitrogen gas mixture. This pressure drop is correlated to the dynamic viscosity of a gas mixture. The estimation model which is verified experimentally for various scenarios provides a reliable and cost-effective method that can eliminate the use of the hydrogen sensor. This model is then utilized as the basis for controlling the fuel purging. Deploying an MPC based multivariable control strategy, both fuel overpressure and hydrogen concentration are controlled.
机译:延长膜的使用寿命以及改善燃料经济性是在工业应用中利用燃料电池的重要步骤。着眼于聚合物电解质膜(PEM)燃料电池,本工作阐明了一种系统的方法来处理由膜针孔引起的电池耐久性问题。这包括基于模型的燃料超压控制,该控制被定义为燃料电池堆入口侧阳极室和阴极室之间的压差。此外,为了提高燃料节省,这项工作提出了一种基于模型的新颖技术来估算氢浓度,该技术被用作燃料净化控制的基础。使用配备9芯Mk1100 PEM燃料电池的Ballard 3kW测试站,整个系统使用气动变量建模。所开发的模型经过实验验证。根据基本目标,采用PEM燃料电池阳极的相关系统配置。这些包括流通式阳极,末端阳极和具有再循环结构的阳极。部署模型预测控制器(MPC)来实现控制器的目标,其中包括通过保持负载变化来改善负载变化期间系统瞬态响应的控制,减少氢排放并保持缺陷电池的电池电压水平。所需区域中的燃油超压。此外,控制器性能已通过实验验证。利用跨燃料电池堆阳极的压降,可以估算出氢-氮气混合物中阳极侧的氢浓度。该压降与气体混合物的动态粘度相关。在各种情况下通过实验验证的估算模型提供了一种可靠且具有成本效益的方法,可以消除对氢传感器的使用。然后将该模型用作控制燃油净化的基础。部署基于MPC的多变量控制策略,可控制燃料超压和氢气浓度。

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    Ebadi Ghajari Alireza;

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  • 年度 2017
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