Fuel cell stack with integrated process endplates
This disclosure related to polymer electrolyte member fuel cells and components thereof, including fuel cell endplates.
1. A method for recirculating an anode exhaust into a fuel cell stack, the method comprising:
directing the anode exhaust from the fuel cell stack to a suction gas inlet of a gas ejector;
directing a fuel gas to a motive gas inlet of the gas ejector, the gas ejector comprising:
a nozzle with a tip positioned at a throat of a venturi tube, wherein the nozzle is configured to eject fuel gas into the venturi tube where the fuel gas mixes with anode exhaust to form a gas mixture;
a piston slideably positioned within the gas ejector, wherein the piston is configured to control the flow of fuel gas through the nozzle based on a pressure of the anode exhaust directed through the suction gas inlet; and
a hollow valve stem fixed to the piston that fluidly connects the motive gas inlet to the nozzle, wherein the hollow valve stem has a cone-shaped valve tip and the motive gas inlet has a cone-shaped valve seat configured to receive the cone-shaped valve tip;
directing the gas mixture from the venturi tube to an anode feed gas inlet of the fuel cell stack.
2. The method of claim 1 , wherein the gas ejector further comprises a spring, the spring exerts a first force on the piston that opposes a second force created by the pressure of the anode exhaust on the piston.
3. The method of claim 2 , wherein the piston slides toward the nozzle when the first force is greater than the second force.
4. The method of claim 2 , wherein the piston slides away from the nozzle when the first force is less than the second force.
5. The method of claim 1 , further comprising separating at least a portion of water within the anode exhaust using a water separator before directing the anode exhaust to the suction gas inlet of the gas ejector.