Effect of cathode gas flow patterns on performance of micro direct methanol fuel cell

Author(s):  
Yufeng Zhang ◽  
Hong He ◽  
Qi Fan ◽  
Bo Zhang ◽  
Xiaowei Liu ◽  
...  
2011 ◽  
Vol 347-353 ◽  
pp. 3281-3285 ◽  
Author(s):  
Xin Zhou ◽  
Xiao Feng Xie ◽  
Motoo Ishikawa

An experiment of a single direct methanol fuel cell (DMFC) was conducted at Fuel Cell laboratory of Tsinghua University, China in collaboration with University of Tsukuba, Japan. Influences of the anodic methanol solution's concentration, the cathodic air flow rate, and the cathodic oxygen gas flow rate on the single DMFC performance were investigated to optimize operating conditions of the fuel cell. The experimental results have shown that the single DMFC can reach the peak power density of 0.170 W/cm2 with the current of 0.515 A/cm2 under the condition of the concentration of methanol solution of 2M and the flow rate of oxygen gas of 80 mL/min.


Author(s):  
Alireza Bayat ◽  
Nicholas Maus ◽  
Faramarz Gordaninejad

A three-dimensional, full-scale, single-phase finite element model has been developed for a liquid-fed direct methanol fuel cell (DMFC) with serpentine flow patterns. Equations for conservation of mass, momentum, and species are coupled with electrochemical kinetics in anode and cathode catalyst layers (CCLs). At the anode and cathode sides, only the liquid and the gas phases are considered, respectively. The significant benefit of a full-scale model is that the effect of physical parameters and distribution of the concentration of species can be realized in different channels for a desired section within the flow patterns. The model is used to study the effects of different operating parameters on fuel cell performance. Comparing numerical and experimental results demonstrate that the single-phase model slightly over-predicts the results for polarization plot. The modeling results also show that the porosity, temperature, and methanol concentration play a key role in affecting the DMFC polarization curve.


2011 ◽  
Author(s):  
Timothy Hall ◽  
Corey Grice ◽  
Bogdan Gurau ◽  
Paul McGinn

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