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However, at 110 °C and in low humid conditions, the modified membranes show increased fuel cell performance than the pure Nafion.
The results confirm increased fuel cell performance and durability by optimizing the infiltrate solution for increased transport into the cathode's microstructure.
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While in certain circumstances bending can increase fuel cell performance because it increases the assembly pressure internally exerted on the MEA, we also find that deformation of the flow structures upon bending the fuel cell can negatively affect performance due to non-uniform disruptions in the distribution of reactants.
However, increasing the number of channels increased the fuel cell performance when operating at high current and the cell performance became more uniform downstream.
SS 316 with low permeability resulted in an increased pressure drop across the flow field, which increased the fuel cell performance.
The concentration of oxidized forms of carbon and platinum increased after fuel cell operation.
Increasing of fuel cell stack temperature causes an increase in exergy efficiency from 56.6% up to 60.2% and about 34.8% in output power of the cycle and a reduction in exergy efficiency from 62.8% to 59.1% and 8.4% in fuel cell power.
More importantly, the use of the nanotube MPL allows the DMFC to be operated with a higher methanol concentration, and thereby increases the fuel cell system energy density.
The power density decreased when the thickness of the flowing electrolyte channel was increased, and the performance of the fuel cell increased when the temperature of the fuel cell was increased, as expected.
The carbonate concentration in the electrolyte increases during fuel cell operation with CO2 containing gases.
Using a more hydrophobic MEA surface is helpful to extend the ohmic region and increase PEM fuel cell performance.
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