Dynamic Characteristics of DMFC/Battery System for Notebook PC

  • Young-Rae Cho
  • Min-Soo Hyun
  • Doo-Hwan Jung
Part of the NATO Science for Peace and Security Series C: Environmental Security book series (NAPSC)

Many research groups have been working on direct methanol fuel cells for the portable applications because of the convenience of using the liquid fuel, methanol. Particularly the direct methanol fuel cells are studied for military applications because of increasing use of power-hungry, state-of-the-art, and wearable electronic digital equipment by today’s soldiers. Life time of the potable power supply devices becomes more important as the amount of power consumption of the electronic and communicational equipment increases. At present, direct methanol fuel cells (DMFCs) which uses liquid methanol without a reformer are considered to meet these requirements best. In order to achieve rapid start-up and high reliability required for these applications, we combined a DMFC with a lithium-ion battery. In the present work, the sharing of power consumption at the start-up and the response characteristics of each component of the fuel cell/battery hybrid system to power consumption were investigated. The characteristics of battery charging at the rated operation also were determined when hybrid system was running a notebook PC.

Keywords

Fuel Cell Hybrid System Direct Methanol Fuel Cell Load Share Fuel Cell System 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

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Copyright information

© Springer Science+Business Media B.V 2008

Authors and Affiliations

  • Young-Rae Cho
    • 1
  • Min-Soo Hyun
    • 1
  • Doo-Hwan Jung
    • 1
  1. 1.Advanced Fuel Cell Research CenterKorea Institute of Energy ResearchDaejeonRepublic of Korea

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