A Numerical Investigation of Effects of Methanol Concentration Fluctuation in Active-type Direct Methanol Fuel Cell (DMFC) Systems
Geonhui Gwak, Johan Ko, Suwon Lee, Jin‐Woo Lee, Dong‐Hyun Peck, Doo‐Hwan Jung, Hyunchul Ju
Abstract
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Geonhui Gwak, Johan Ko, Suwon Lee, Jin‐Woo Lee, Dong‐Hyun Peck, Doo‐Hwan Jung, Hyunchul Ju
Abstract
Open-access reader
In this study, we develop a one-dimensional (1-D), two-phase, transient-thermal DMFC model to investigate the effect of methanol concentration fluctuation that usually occurs in active-type direct methanol fuel cell (DMFC) systems. 1-D transient simulations are conducted and time-dependent behaviors of DMFCs are analyzed under various DMFC operating conditions such as anode/cathode stoichiometry, cell temperature, and cathode inlet humidification. The simulation results indicate that the effect of methanol concentration fluctuation on DMFC performance can be mitigated by proper control of anode/cathode stoichiometry, providing a guideline to optimize operating conditions of active DMFC systems.
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In this study, we develop a one-dimensional (1-D), two-phase, transient-thermal DMFC model to investigate the effect of methanol concentration fluctuation that usually occurs in active-type direct methanol fuel cell (DMFC) systems. 1-D transient simulations are conducted and time-dependent behaviors of DMFCs are analyzed under various DMFC operating conditions such as anode/cathode stoichiometry, cell temperature, and cathode inlet humidification. The simulation results indicate that the effect of methanol concentration fluctuation on DMFC performance can be mitigated by proper control of anode/cathode stoichiometry, providing a guideline to optimize operating conditions of active DMFC systems.
Key concepts: Direct methanol fuel cell, Anode, Cathode, Transient (computer programming), Methanol, Methanol fuel, Stoichiometry, Chemistry