고분자 전해질 연료전지에서 Pinhole 있는 막의 열화

Degradation of Membrane With Pinholes in PEMFC

  • Kim, Tae-Hee (Department of Chemical Engineering, Sunchon National University) ;
  • Lee, Ho (Department of Chemical Engineering, Sunchon National University) ;
  • Lim, Tae-Won (HMC Eco Technology Research Institute) ;
  • Park, Kwon-Pil (Department of Chemical Engineering, Sunchon National University)
  • 발행 : 2008.04.29

초록

The most failure mode of PEM fuel cell is gas crossover caused by pinhole formation in MEAs. The degradation phenomena of MEA with pinholes were evaluated in various accelerated operation condition, such as OCV, low humidity and high partial pressure of oxygen. The performances of MEA with pinholes were almost same before and after normal 144 hours operation($70^{\circ}C$, $640mA/cm^2$, 65%RH $H_2/air$). The results of accelerated operation showed that OCV and low humidity condition more deteriorated MEA than gas crossover owing to pinholes. When oxygen was used as cathode gas, the pinholes of MEA were enlarged due to heat of combustion reaction on Pt catalyst of electrodes. This combustion reaction occurred at pinholes near gas inlet and resulted in local MEA failure.

키워드

참고문헌

  1. R. B. Hodgdon, J. R. Boyack, and A. B. Raconti, "The Degradation of Polystyrene Sulfonic Acid", General Electric Company, TIS Report 65DE 5, 1966, July 6
  2. A.B. Laconti, M. Hamdan and R.C. McDonald (Eds.), "Ch. 49 Mechanism of membrane degradation," Handbook of Fuel Cells Vol. 3, John Wily & Sons, New York, 2003, pp. 647-662
  3. A. Pozio, R. F. Silva, M. De Francesco, and Giorgi, "Nafion degradation in PEFCs from end plate iron contamination", Electrochimica Acta, Vol. 48, 2003, pp. 1543-1549 https://doi.org/10.1016/S0013-4686(03)00026-4
  4. G.G. Scherer, Bunsenges Ber., "Polymer Membranes for Fuel Cells", Vol. 94, 1990, pp. 145 145 https://doi.org/10.1002/bbpc.19900940210
  5. R. Baldwin, M. Pham, a. Leonida, , J. McElory, and T. Nalette,, "Hydrogen- -Oxygen proton-exchange membrane fuel cells and electrolyzers", J. of Power Sources, Vol. 29 (3-4), 1990, pp. 399-412
  6. E. Endoh, S. Terazono, H. Widjaja, and Y. Takimoto, "Degradation Study of MEA for PEMFCs under Low Humidity Conditions", Electrochem. and Solid-State Lett., Vol. 7(7), 2004, pp. A209-A211 https://doi.org/10.1149/1.1739314
  7. Wen Liu and Zuckerbrod, "In Situ Detection of Hydrogen Peroxide in PEM Fuel Cells", J. Electrochem. Soc., Vol. 152(6), 2005, pp. A1165-A1170 https://doi.org/10.1149/1.1904988
  8. V. Mittal , H. R. Kunz and J. M. Fenton , "Effect of Catalyst Properties on Membrane Degradation Rate and Underlying Degradation Mechanism in PEMFCs", J. Electrochem. Soc., Vol. 153(9), 2006, pp. A1755-A1759 https://doi.org/10.1149/1.2219708
  9. A. Ohma, S. Suga, S. Yamamoto, and K. Shinohara, "Membrane Degradation Behavior during Open-Circuit Voltage Hold Test", J. of Electrochem. Soc., Vol. 154(8), 2007, pp. B757-B760 https://doi.org/10.1149/1.2741129
  10. T. H. Kim, J. H. Lee, H. Lee, T. W Lim, and K. P. Park, "Degradation of Polymer Electrolyte Membrane under OCV/Low Humidity Conditions", HWAHAK KONGHAK, Vol (4), 2007, pp. 345-350
  11. Qi Zhigang , "Fundamental Issues of PEM Fuel Cell Durability and Performance", The Knowledge Foundation's 2nd Annual Conference Fuel Cells Durability&Performance 2006, Miami Beach FL, 2006, December 7-8
  12. T. Sakai, H. Takenaka, N. Wakabyashi, Y. Kawami and E. Torikai, "Gas Permeation Properties of Solid Polymer Electrolyte(SPE) Membranes", J. Electrochem. Soc., Vol. 132(6), 1985, pp. 1328-1332 https://doi.org/10.1149/1.2114111