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Two heat exchanger networks are designed considering the influence of the fuel utilization coefficient (0.7 0.9) at the cell electrodes.
The system and fuel cell efficiencies are studied under different process conditions, temperature (723 < T < 873 K), water to ethanol molar ratio (3 < RAE < 6) and fuel utilization coefficient (0.7 < FUC < 0.9).
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It has been shown that the proposed design has a potential to increase the fuel utilization, attain negative reactivity coefficients and reduce the excess core reactivity during the power operation.
Parameters considered when determining an optimal design include power density, fuel utilization and energy efficiencies and water balance coefficients.
Using an Oil Sorbents air filter the water balance coefficient is increased to −0.85, the fuel utilization efficiency is improved by 27.35% and the maximum power density decreased to 21.6 mW cm−2.
For exergetic performance analysis, the effects of operating variables such as current density, pressure, and fuel utilization factor on exergetic performances (module exergy efficiency, module exergetic performance coefficient, module exergy output and total exergy destruction rate, and components' exergy efficiencies, exergy destruction rates) are investigated.
Alternatively, exergetic performance coefficient (EPC) as a new criterion is investigated with regard to main design parameters such as fuel utilization, current density, recuperator effectiveness, compressor pressure ratio and pinch point temperature, aiming at achieving higher exergy output with lower exergy loss in the system.
Jequier E, Acheson K, Schutz Y. Assessment of energy expenditure and fuel utilization in man.
Methanol had a fuel utilization of 42%.
This could be interesting to realize high fuel utilization (>85%).
In addition, fuel utilization increases by approximately 100%.
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