US2006099463A1PendingUtilityA1

Direct current/direct current converter for a fuel cell system

Individually held — no corporate assignee on recordPriority: Jan 16, 2002Filed: Dec 23, 2005Published: May 11, 2006
Est. expiryJan 16, 2022(expired)· nominal 20-yr term from priority
H01M 16/006H01M 8/04917H01M 8/04888H01M 8/0491H01M 8/0488H01M 8/04947Y02E60/10Y02E60/50
46
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Claims

Abstract

Fuel cell systems and control methods including a fuel cell and a second energy source, such as a battery that is adapted to supplement the fuel cell. In addition, the fuel cell system utilizes a single bipolar switching module, such as an IGBT six pack module that is configured to implement a DC/DC converter, such as a DC/DC boost converter, for both the fuel cell and the battery. The fuel cell system also makes use of a controller that is configured to control either or both of input current and output voltage of the DC/DC converter.

Claims

exact text as granted — not AI-modified
1 . A fuel cell system, comprising: 
 a fuel cell;    a second energy source configured to supplement the fuel cell;    a single bipolar switching module configured to implement a direct current to direct current (DC/DC) converter for both the fuel cell and the second energy source; and    a controller configured to control at least one of an input current and an output voltage of the DC/DC converter.    
   
   
       2 . The system of  claim 1  wherein the second energy source comprises a battery.  
   
   
       3 . The system of  claim 2  wherein the battery is adapted to deliver power to a load when an amount of power available from the fuel cell is less than a power demand of the load.  
   
   
       4 . The system of  claim 2  wherein the battery is adapted to supply a power demand of a load when the fuel cell is not operating.  
   
   
       5 . The system of  claim 2  wherein the battery is adapted to absorb power from the fuel cell when an amount of power available from the fuel cell is greater than a power demand of the load.  
   
   
       6 . The system of  claim 2  wherein the single bipolar switching module comprises an IGBT six pack module.  
   
   
       7 . The system of  claim 6  wherein the IGBT six pack module is further configured to be used as a component of a back end inverter.  
   
   
       8 . The system of  claim 2  wherein the controller is configured to control at least one of the input current and the output voltage of the DC/DC converter by controlling a flow of power to and from the battery to maintain an average state of charge of the battery whereby the battery can deliver a predetermined level of power in a first mode and absorb a predetermined level of power in a second mode.  
   
   
       9 . The system of  claim 1  wherein the single bipolar switching module is configured to implement a DC/DC boost converter.  
   
   
       10 . The system of  claim 9  wherein the DC/DC boost converter is adapted to boost a DC voltage from both the fuel cell and the second energy source to a DC bus capacitor bank and a load.  
   
   
       11 . A method of controlling a fuel cell system comprising a fuel cell, a second energy source, a bipolar switching module and a controller, the method comprising: 
 operating the bipolar switching module as a direct current to direct current (DC/DC) converter for both the fuel cell and the second energy source; and,    using the controller to control at least one of an input current and an output voltage of the DC/DC converter.    
   
   
       12 . The method of  claim 11  wherein the second energy source comprises a battery.  
   
   
       13 . The method of  claim 12  wherein the method further comprises delivering power from both the battery and the fuel cell to a load when an amount of power available from the fuel cell is less than a power demand of the load.  
   
   
       14 . The method of  claim 12  wherein the method further comprises delivering power from the battery to a load when the fuel cell is not operating.  
   
   
       15 . The method of  claim 12  wherein the method further comprises absorbing an excess amount of power from the fuel cell with the battery when an amount of power available from the fuel cell is greater than a power demand of the load.  
   
   
       16 . The method of  claim 12  wherein the single bipolar switching module comprises an IGBT six pack module.  
   
   
       17 . The method of  claim 16  wherein the method further comprises operating the IGBT six pack module as a component of a back end inverter.  
   
   
       18 . The method of  claim 16  wherein method further comprises operating the IGBT six pack module to boost a DC voltage from the fuel cell and the battery to a DC bus capacitor bank and a load.  
   
   
       19 . The method of  claim 19  wherein the method further comprises operating the controller to control the input current and the output voltage of the DC/DC converter.  
   
   
       20 . The method of  claim 19  wherein operating the controller to control the input current and the output voltage of the DC/DC converter comprises controlling a flow of power to and from the battery so as to maintain an average state of charge of the battery whereby the battery can deliver a predetermined level of power in a first mode and absorb a predetermined level of power in a second mode.  
   
   
       21 . The method of  claim 11  wherein the single bipolar switching module is configured to implement a DC/DC boost converter.  
   
   
       22 . The method of  claim 21  wherein the DC/DC boost converter is adapted to boost a DC voltage from both the fuel cell and the second energy source to a DC bus capacitor bank and a load.  
   
   
       23 . A controller programmed to control a fuel cell system comprising a fuel cell, a battery, and an IGBT six pack module comprising three IGBT legs and configured to implement a DC/DC converter for both the fuel cell and the battery, by: 
 in a first mode, providing DC/DC conversion for the fuel cell via two of the three IGBT legs and bi-directional DC/DC conversion for the battery via the third IGBT leg;    in a second mode, providing DC/DC conversion for the battery via two of the three IGBT legs and DC/DC conversion for the fuel cell via the third IGBT leg;    in a third mode, providing DC/DC conversion for the fuel cell via all three IGBT legs; and,    in a fourth mode, providing DC/DC conversion for the battery via all three IGBT legs.    
   
   
       24 . A fuel cell system, comprising: 
 a fuel cell;    a battery;    a direct current to direct current (DC/DC) converter module coupled to the battery and the fuel cell, that converts a first DC voltage from the fuel cell to a DC output voltage and that converts a second DC voltage from the battery to the DC output voltage; and    a controller configured to control at least one of an input current and an output voltage of the DC/DC converter.    
   
   
       25 . The system of  claim 25  wherein the DC/DC converter module is a single bipolar switching module.  
   
   
       26 . The system of  claim 25 , further comprising: 
 a switch, comprising: 
 a first position that couples the fuel cell and the DC/DC converter module; and  
 a second position that couples the battery and the DC/DC converter module.  
   
   
   
       27 . The system of  claim 26  wherein the switch in the first position couples the fuel cell and the DC/DC converter module so that power from the fuel cell is converted by the DC/DC converter module.  
   
   
       28 . The system of  claim 26  wherein the switch in the second position decouples the fuel cell from the DC/DC converter module and further couples the battery and the DC/DC converter module so that only power from the battery is converted by the DC/DC converter module.  
   
   
       29 . The system of  claim 28  wherein the switch in the second position couples the battery to a first leg and to a second leg of the DC/DC converter module.  
   
   
       30 . The system of  claim 29  wherein the battery is coupled to a third leg of the DC/DC converter module.  
   
   
       31 . The system of  claim 25  wherein the controller controls operation of the DC/DC converter module so that a first input current from the fuel cell is controlled to correspond to a first portion of a total power delivered from the DC/DC converter module, and wherein the controller controls operation of the DC/DC converter module so that a second input current from the battery is controlled to correspond to a second portion of the total power delivered from the DC/DC converter module.  
   
   
       32 . The system of  claim 31  wherein the controller controls operation of the DC/DC converter module so that the second input current from the battery is controlled, and so that the first input current from the fuel cell is maintained when the total power delivered from the DC/DC converter module varies.  
   
   
       33 . The system of  claim 32  wherein the maintained first input current from the fuel cell further maintains the first DC voltage from the fuel cell.

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