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New approaches to improve the performance of the PEM based fuel cell power systems.

机译:改善基于PEM的燃料电池电源系统性能的新方法。

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Fuel cells are expected to play an important role in future power generation. However, significant technical challenges remain and the commercial breakthrough of fuel cells is hindered by the high price of fuel cell components. As is well known, the fuel cells do not provide the robust source characteristics required to effectively follow the load during significant load steps and they have limited overload-handling capability. Further, the performance of the fuel cell is significantly degraded when the CO (Carbon Monoxide) is contained in the hydrogen fuel.; In this thesis several new approaches to improve the performance of PEM based fuel cell power systems are discussed. In the first section an impedance model of the Proton Exchange Membrane Fuel Cell Stack (PEMFCS) is first proposed. This equivalent circuit model of the fuel cell stack is derived by a frequency response analysis (FRA) technique to evaluate the effects of the ripple current generated by the power-conditioning unit. Experimental results are presented to show the effects of the ripple currents.; In the second section, a fuel cell powered UPS (Uninterruptible Power Supply) system is proposed. In this approach, two PEM Fuel Cell modules along with suitable DC/DC and DC/AC power electronic converter modules are employed. A Supercapacitor module is also employed to compensate for instantaneous power fluctuations including overload and to overcome the slow dynamics of the fuel processor such as reformers. A complete design example for a 1-kVA system is presented.; In the third section, an advanced power converter topology is proposed to significantly improve the CO tolerance on PEM based fuel cell power systems. An additional two-stage dc-dc converter with a supercapacitor module is connected to the fuel cell to draw a low frequency (0.5Hz) pulsating current of the specific amplitude (20-30[A]) from the fuel cell stack. CO on the catalyst surface can be electro-oxidized by using this technique, and thereby the CO tolerance of the system can be significantly improved. Simulation and experimental results show the validity and feasibility of the proposed scheme.
机译:预计燃料电池将在未来的发电中发挥重要作用。但是,仍然存在重大的技术挑战,并且燃料电池组件的高价格阻碍了燃料电池的商业突破。众所周知,燃料电池没有提供在重要的负载阶跃期间有效地跟随负载所需的鲁棒的源特性,并且它们具有有限的过载处理能力。此外,当氢燃料中包含CO(一氧化碳)时,燃料电池的性能显着降低。本文讨论了几种改善基于PEM的燃料电池发电系统性能的新方法。在第一部分中,首先提出了质子交换膜燃料电池堆(PEMFCS)的阻抗模型。燃料电池堆的等效电路模型通过频率响应分析(FRA)技术得出,以评估功率调节单元产生的纹波电流的影响。实验结果表明了纹波电流的影响。在第二部分中,提出了一种由燃料电池供电的UPS(不间断电源)系统。在这种方法中,使用了两个PEM燃料电池模块以及合适的DC / DC和DC / AC电力电子转换器模块。超级电容器模块还用于补偿包括过载在内的瞬时功率波动,并克服燃料处理器(如重整器)的缓慢动力。给出了一个1-kVA系统的完整设计实例。在第三部分中,提出了一种先进的电源转换器拓扑,以显着提高基于PEM的燃料电池电源系统的CO容限。带有超级电容器模块的附加两级DC-DC转换器连接到燃料电池,以从燃料电池堆中汲取特定幅度(20-30 [A])的低频(0.5Hz)脉动电流。通过使用该技术可以将催化剂表面上的CO电氧化,从而可以显着提高系统的CO耐受性。仿真和实验结果表明了该方案的有效性和可行性。

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