SOFC electrochemical anode tail gas oxidizer
A fuel cell system comprises a fuel cell stack comprising a plurality of fuel cells and at least one shorted solid oxide fuel cell in which the cell anode is electrically connected to the cell cathode. In another system, the at least one shorted solid oxide fuel cell is located downstream from a fuel cell stack. The at least one shorted fuel cell is positioned to receive the anode exhaust stream from at least some of the plurality of fuel cells of the fuel cell stack.
1 . A fuel cell system comprising:
a fuel cell stack comprising:
a plurality of fuel cells; and
at least one shorted solid oxide fuel cell in which the cell anode is electrically connected to the cell cathode,
wherein the at least one shorted fuel cell is positioned to receive an anode exhaust stream from at least some of the plurality of fuel cells of the fuel cell stack.
2 . The fuel cell system of claim 1 , wherein the at least one shorted fuel cell comprises a mixed electrolyte that is both ionically and electrically conductive.
3 . The fuel cell system of claim 2 , wherein the mixed electrolyte comprises a mixture of doped ceria and stabilized zirconia.
4 . The fuel cell system of claim 1 , wherein the at least one shorted fuel cell comprises a conductor-filled channel extending through the electrolyte electrically connecting the cell anode to the cell cathode.
5 . The fuel cell system of claim 1 , wherein the at least one shorted fuel cell comprises an external wire electrically connecting the cell anode to the cell cathode.
6 . The fuel cell system of claim 1 , further comprising a device which is adapted to separate H 2 O from CO 2 and a device which is adapted store the separated CO 2 .
7 . A fuel cell system comprising:
a fuel cell stack; and
at least one shorted solid oxide fuel cell located downstream from the fuel cell stack, said at least one shorted fuel cell having the cell anode electrically connected to the cell cathode,
wherein the at least one shorted fuel cell is positioned to receive an anode exhaust stream from the fuel cell stack.
8 . The fuel cell system of claim 7 , wherein the at least one shorted fuel cell is located in a shorted fuel cell stack.
9 . The fuel cell system of claim 7 , wherein the at least one shorted fuel cell comprises a mixed electrolyte that is both ionically and electrically conductive.
10 . The fuel cell system of claim 9 , wherein the mixed electrolyte comprises a mixture of doped ceria and stabilized zirconia.
11 . The fuel cell system of claim 7 , wherein the at least one shorted fuel cell comprises a conductor-filled channel extending through the electrolyte electrically connecting the cell anode to the cell cathode.
12 . The fuel cell system of claim 7 , wherein the at least one shorted fuel cell comprises an external wire electrically connecting the cell anode to the cell cathode.
13 . The fuel cell system of claim 7 , further comprising a device which is adapted to separate H 2 O from CO 2 and a device which is adapted store the separated CO 2 .
14 . A method of operating a fuel cell system comprising:
generating electricity using a fuel cell stack;
providing an anode exhaust stream from fuel cells of the fuel cell stack to at least one shorted solid oxide fuel cell; and
providing oxygen to the at least one shorted fuel cell, and reacting at least one of H 2 or CO in the anode exhaust stream with the oxygen to generate at least one of H 2 O or CO 2 .
15 . The method of claim 14 , wherein the at least one shorted fuel cell is located in a stack of shorted fuel cells located downstream from the electricity generating fuel cell stack.
16 . The method of claim 15 , further comprising measuring flow rate of oxygen into the stack of shorted fuel cells, measuring effluent oxygen in said stack of shorted fuel cells and adjusting a flow of oxygen to optimize flow of oxygen.
17 . The method of claim 15 , further comprising providing at least one sensor fuel cell located in the stack of shorted cells, wherein the at least one sensor cell comprises a current shunt electrically connected between the cell anode and cell cathode.
18 . The method of claim 17 , further comprising measuring current from the sensor fuel cell and adjusting the air flow to optimize flow of oxygen.
19 . The method of claim 14 , wherein the at least one shorted fuel cell is located in the electricity generating fuel cell stack.
20 . The method of claim 14 , further comprising separating CO 2 from H 2 O generated by the at least one shorted solid oxide fuel cell and storing the separated CO 2 .
21 . The method of claim 14 , further comprising providing the separated H 2 O into a fuel inlet stream and providing the fuel inlet stream into the electricity generating fuel cell stack.