Fuel cell system
US-2019148747-A1 · May 16, 2019 · US
US2023268528A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2023268528-A1 |
| Application number | US-202217676390-A |
| Country | US |
| Kind code | A1 |
| Filing date | Feb 21, 2022 |
| Priority date | Feb 21, 2022 |
| Publication date | Aug 24, 2023 |
| Grant date | — |
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Systems and methods for managing cathode stoichiometry of an electrochemical cell are disclosed. A system may include a fuel cell, a compressor for supplying air to the fuel cell and an oxygen sensor proximate to or downstream of an outlet of a cathode chamber of the fuel cell. An operation speed of the compressor or flow rate of the air may be adjusted by, for example, a controller after receiving data from the sensor regarding the amount of residual oxygen. For example, the operation speed/flow rate may be increased or decreased to achieve a cathode stoichiometry of about 1.00.
Opening claim text (preview).
What is claimed is: 1 . A power system comprising: a fuel cell defining (i) a cathode chamber housing a cathode, and (ii) an anode chamber housing an anode, the fuel cell having an electrolyte between the cathode and anode, and defining an inlet and an outlet providing fluid communication to the cathode chamber; a compressor configured to provide an oxidant to the cathode chamber of the fuel cell; and a first oxidant sensor disposed proximate to or downstream from the outlet. 2 . The power system of claim 1 , wherein the oxidant is oxygen, and the exhaust gas includes a residual amount of oxygen. 3 . The power system of claim 2 , further comprising a second oxidant sensor disposed proximate to or upstream of the inlet. 4 . The power system of claim 1 , wherein the first oxidant sensor is a first universal exhaust gas oxygen sensor. 5 . The power system of claim 1 , further comprising a controller configured to receive data from the first oxidant sensor and control the compressor based on the data. 6 . The power system of claim 5 , wherein the controller is configured to increase an operation speed of the compressor when a residual amount defined by the data is below a first threshold amount. 7 . The power system of claim 6 , wherein the controller is configured to decrease the operation speed of the compressor when the residual amount is above a second threshold amount. 8 . A vehicle power system comprising: a fuel cell having a cathode passage adjacent to a cathode, the cathode passage defining an inlet and an outlet, the cathode passage being in fluid communication with an air intake system via the inlet and an exhaust system via the outlet, the air intake system including an airflow inducing device configured to provide an airflow during operation and the exhaust system including a first oxygen sensor configured to sense a residual amount of oxygen; and a controller configured to initiate a command to supply oxygen to the fuel cell such that responsive to the residual amount being within a predetermined range, an operation speed of the airflow inducing device is maintained, and responsive to the residual amount being outside the predetermined range, the operation speed of the airflow inducing device is adjusted. 9 . The vehicle power system of claim 8 , wherein the airflow inducing device is a compressor. 10 . The vehicle power system of claim 9 , wherein the controller is further configured to initiate the command such that, responsive to the residual amount being greater than the predetermined range, the operation speed of the compressor is increased. 11 . The vehicle power system of claim 10 , wherein the controller is further configured to initiate the command such that, responsive to the residual amount being less than the predetermined range, the operation speed of the compressor is decreased. 12 . The vehicle power system of claim 11 , further comprising a second oxygen sensor in the air intake system. 13 . The vehicle power system of claim 12 , wherein the predetermined range is configured to maintain a cathode stoichiometry of 1.0 to 2.0. 14 . The vehicle power system of claim 13 , wherein the predetermined range is configured to maintain the cathode stoichiometry to 1.1 to 1.9. 15 . The vehicle power system of claim 14 , wherein the predetermined range is configured to maintain the cathode stoichiometry to 1.2 to 1.8. 16 . A method of controlling operation of an electrochemical cell comprising: providing an oxidant to a fuel cell at a flow rate such that responsive to a residual amount of oxidant in a fuel cell exhaust being more than a lower threshold amount, the flow rate is at least maintained, and responsive to the residual amount being less than the lower threshold amount, the flow rate is increased. 17 . The method of claim 16 , wherein responsive to the residual amount being more than an upper threshold amount, the flow rate is decreased. 18 . The method of claim 17 , wherein the flow rate is increased and decreased by controlling an operation speed of a compressor. 19 . The method of claim 16 , wherein the lower and upper threshold amounts are configured to maintain a cathode stoichiometry of 0.95 to 1.05. 20 . The method of claim 16 , further comprising, responsive to the residual amount being different than an anticipated amount, alerting a user to that operation is abnormal.
of cathode reactants at the inlet or inside the fuel cell · CPC title
characterised by the implementation of mathematical or computational algorithms, e.g. feedback control loops, fuzzy logic, neural networks or artificial intelligence · CPC title
Fuel cells in motive systems, e.g. vehicle, ship, plane · CPC title
at auxiliary devices, e.g. reformers, compressors, burners · CPC title
of the individual fuel cell · CPC title
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