Optimal operation of purge valve to reduce the H2 wastage in the fuel cell

2024-26-0166

01/16/2024

Event
Symposium on International Automotive Technology
Authors Abstract
Content
A Proton Exchange Membrane Fuel Cell requires the input of Oxygen from Cathode and Hydrogen from Anode. As atmospheric air is fed into the system for power generation, nitrogen molecules enter the fuel cell along with oxygen molecules. Over time, there is accumulation of nitrogen inside the fuel cell leading to increase in the effective impedance which in turn leads to increase in losses inside fuel cell hence reducing the fuel cell efficiency. In order to reduce the losses, most of the PEM fuel cells have a purge valve at anode. This purge valve is operated frequently as the impedance increases to let out the nitrogen molecules. During the purging operation, some amount of hydrogen is let out along with nitrogen, which cannot be recovered. In other words, loss of hydrogen could also be considered in terms of reduction in system efficiency. Conventionally, nitrogen-purging operation in fuel cell takes place reactively as voltage/ power drop across the electrode increases above a defined threshold. This paper proposes an optimization based solution, which aims at operating the purge valve by predicting load on the vehicle. This can minimize the overall losses in a fuel cell that occur due to wastage of hydrogen and conduction losses due to presence of water and contaminants like nitrogen inside fuel cell. The predicted energy loss due to the loss of hydrogen and the predicted energy loss due to accumulation of nitrogen is modelled and an optimization algorithm is developed. Optimizer suggests the time instants when the purge valve should be opened which minimizes the hydrogen loss and conduction losses.
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Citation
SHAH, S., Bhat, A., Munirajappa, C., Prasad P, S. et al., "Optimal operation of purge valve to reduce the H2 wastage in the fuel cell," SAE Technical Paper 2024-26-0166, 2024, .
Additional Details
Publisher
Published
Jan 16, 2024
Product Code
2024-26-0166
Content Type
Technical Paper
Language
English