Compact Direct Methanol Fuel Cell: Design Approach Using Commercial Micropumps

被引:9
|
作者
McDonald, Robert C. [1 ]
Hamdan, Monjid [1 ]
机构
[1] Giner Inc, 89 Rumford Ave, Newton, MA 02466 USA
关键词
specific power and energy; power and energy density; piezoelectric pump; energy conversion; fuel cell; MEMBRANE;
D O I
10.1115/1.4040077
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Direct methanol fuel cells (DMFC) are typically supplied under pressure or capillary action with a solution of methanol in water optimized for the best specific power and power density at an operating temperature of about 60 degrees C. Methanol and water consumption at the anode together with water and methanol losses through membrane due to crossover create an imbalance over time so the fuel concentration at the anode drifts from the optimal ratio. In the present study, we demonstrate a DMFC with a means for continuous adjustment of water and methanol content in the anode fuel mixture of an air-breathing DMFC to maintain the optimal concentration for maximum and continuous power. Two types of piezoelectric micropumps were programmed to deliver the two liquids at the designated rate to maintain optimal concentration at the anode during discharge. The micropumps operate over a wide range of temperature, can be easily reprogrammed and can operate in any orientation. A study of performance at different current densities showed that at 100 mA/cm(2), the self-contained, free convection, air-breathing cell delivers 31.6 mW/cm(2) of electrode surface with thermal equilibrium reached at 52 degrees C. The micropumps and controllers consume only 2.6% of this power during 43 h of continuous unattended operation. Methanol utilization is 1.83Wh cm(-3).
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Simulation of the direct methanol fuel cell - III. Design and optimization
    Meyers, JP
    Newman, J
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2002, 149 (06) : A729 - A735
  • [32] Design and fabrication of a silicon-based direct methanol fuel cell
    Zhang, Yufeng
    Liu, Xiaowei
    Suo, Chungtiang
    Wang, Xilian
    Lul, Xuebin
    Xia, Hongyang
    2006 1ST IEEE INTERNATIONAL CONFERENCE ON NANO/MICRO ENGINEERED AND MOLECULAR SYSTEMS, VOLS 1-3, 2006, : 92 - 96
  • [33] Automated design of direct methanol fuel cell stacks: A quick optimization
    Santiago, Oscar
    Aranda-Rosales, Maria
    Navarro, Emilio
    Raso, Miguel A.
    Leo, Teresa J.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (21) : 10933 - 10950
  • [34] Towards a compact SU-8 micro-direct methanol fuel cell
    Esquivel, J. P.
    Senn, T.
    Hernandez-Fernandez, P.
    Santander, J.
    Loergen, M.
    Rojas, S.
    Loechel, B.
    Cane, C.
    Sabate, N.
    JOURNAL OF POWER SOURCES, 2010, 195 (24) : 8110 - 8115
  • [35] Performance of a direct methanol fuel cell
    K. Scott
    W. Taama
    J. Cruickshank
    Journal of Applied Electrochemistry, 1998, 28 : 289 - 297
  • [36] Performance of a direct methanol fuel cell
    Scott, K
    Taama, W
    Cruickshank, J
    JOURNAL OF APPLIED ELECTROCHEMISTRY, 1998, 28 (03) : 289 - 297
  • [37] Measurement of methanol crossover in direct methanol fuel cell
    Hikita, S
    Yamane, K
    Nakajima, Y
    JSAE REVIEW, 2001, 22 (02): : 151 - 156
  • [38] Investigating design parameter effects on the methanol flux in the passive storage of a direct methanol fuel cell
    Kamaruddin, M. Z. F.
    Kamarudin, S. K.
    Masdar, M. S.
    Daud, W. R. W.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (35) : 11931 - 11942
  • [39] Effects of hybrid catalyst layer design on methanol and water transport in a direct methanol fuel cell
    Lee, Kise
    Ferekh, Saad
    Jo, Ahrae
    Lee, Suwon
    Ju, Hyunchul
    ELECTROCHIMICA ACTA, 2015, 177 : 209 - 216
  • [40] Response of a direct methanol fuel cell to fuel change
    Leo, T. J.
    Raso, M. A.
    Navarro, E.
    Sanchez de la Blanca, E.
    Villanueva, M.
    Moreno, B.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (20) : 11642 - 11648