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Analysis of DC-DC converter stability in fuel cell powered portable electronic systems

机译:燃料电池供电的便携式电子系统中DC-DC转换器稳定性的分析

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Fuel cell is an emerging power source for portable electronic systems. The steady state DC output of a fuel cell suffers from a 2 to 1 voltage variation from no load to full load. A boost type DC-DC converter is employed to generate a regulated output voltage. The internal impedance of the fuel cell consists of a membrane resistance Rm, and two parallel resistor/capacitor (Rp1-C1; Rp2-C2) elements related to the electron transport phenomena in the anode and cathode. It is shown that this internal impedance can influence the dynamic response of the DC-DC converter, often in a manner that degrades regulator performance. In this paper the effect of the fuel cell internal impedance on the dynamic performance of the power converter is fully analyzed. Design inequalities are reviewed in per-unit quantities to better understand the interaction between the converter, fuel cell and potential instability conditions. An approach to utilize supercapacitors to enhance stability and improve dynamics is explored. A method to calculate the value of the supercapacitor required is also detailed. Finally, experimental results obtained on a 30W PEM fuel cell system powering a DC-DC boost converter are discussed in detail.
机译:燃料电池是便携式电子系统的新兴电源。从空载到满载,燃料电池的稳态直流输出遭受2到1的电压变化。采用升压型DC-DC转换器来产生稳定的输出电压。燃料电池的内部阻抗由膜电阻Rm和两个并联的电阻器/电容器(Rp1-C1; Rp2-C2)元素组成,这些元素与阳极和阴极中的电子传输现象有关。结果表明,这种内部阻抗通常会以降低稳压器性能的方式影响DC-DC转换器的动态响应。本文全面分析了燃料电池内部阻抗对功率转换器动态性能的影响。设计不等式以每单位数量进行审查,以更好地理解转换器,燃料电池和潜在的不稳定性条件之间的相互作用。探索了一种利用超级电容器来增强稳定性和改善动力学的方法。还详细介绍了一种计算所需超级电容器值的方法。最后,详细讨论了在为DC-DC升压转换器供电的30W PEM燃料电池系统上获得的实验结果。

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