EP1243045B1

System and method for controlling the operation of a fuel processing system

Abstract

This record has no abstract on file.

EP1243045B1, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Expired 21 September 2020, 6 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

41 claims: 27 independent, 14 dependent

  1. 1
    A method for controlling the operation of a fuel processing system, which system comprises a fuel processor (16) which in use receives a feed stream and produces hydrogen gas therefrom, a feed assembly (18) which in use delivers the feed stream to the fuel processor (16), a fuel cell stack (14) which in use receives at least a portion of the hydrogen gas, and control means which in use automates the operation of the fuel processing system, and in which method the control means:receives inputs of selected operating parameters determines whether a measured value of a selected operating parameter is above or below a determined threshold value or value range and thereby outside normal operating parameters of the system, and, if so, selects in accordance with said determination whether the fuel processing system is to be transitioned to a first or second selected state available to the system, and sends command signals to transition the fuel processing system from its running state to the selected state, wherein the first and second states are, respectively: (i) a standby state in which the control means achieves and maintains determined operating temperatures and pressures within the fuel processor (16) but in which hydrogen and electricity are not being generated in more than a nominal amount;and (ii) a faulted state in which the flows of fuel and feedstock are stopped, and from which faulted state the control means awaits a reset signal before attempting to direct a transition of the fuel processing system to the standby state and directs the fuel processing system to an off state if no reset signal is received.
  2. 3
    The method of any preceding claim, wherein detection of a malfunction in the running state causes the control means to automatically transition the fuel processing system to the faulted state.
  3. 4
    The method of any preceding claim, wherein detection of a malfunction in the standby state causes the control means to automatically transition the fuel processing system to the faulted state.
  4. 5
    The method of any preceding claim, wherein, in the running state, receipt by the control means of an input directing it to shutdown the fuel processing system causes the control means to direct the fuel processing system to transition to the standby state and then to the off state.
  5. 6
    The method of any preceding claim wherein the selected operating parameters include one or more of the flow rate of fluid in feed stream(s) to the fuel processor, the temperature of a hydrogen producing region (34) of the fuel processor, the pressure in the hydrogen producing region (34).
  6. 7
    The method of any preceding claim, wherein the control means automatically transitions the fuel processing system from its off state to the standby state responsive to an input signal.
  7. 10
    The method of any preceding claim, wherein, if an input directing the control means to shutdown the fuel processing system is received while it is in the running state, the control means transitions the fuel processing system first to the standby state and then to the off state.
  8. 11
    The method of any preceding claim, wherein the control means comprises a computerized controller (28) which is included in an automated control system (26) and the control system (26) further comprises a sensor assembly which in use monitors the selected operating parameters of the fuel processor (16) and the feed assembly (18) and communicates inputs to the controller corresponding to the selected operating parameters, and wherein a program of the controller (28) causes the controller to automatically control the operation of the fuel processing system to switch the fuel processing system between the running state and one of the standby and faulted states based at least in part on the inputs.
  9. 13
    The method of any preceding claim, wherein the control means automatically shuts down the fuel processing system if the value of a selected operating parameter exceeds a corresponding threshold value.
  10. 14
    The method of any preceding claim, wherein the control means controls the operation of the fuel processing system to maintain the value of the selected operating parameters at determined values or within ranges bounded by threshold values.
  11. 15
    The method of any preceding claim, wherein the fuel processing system includes a user interface (58) in communication with the control means, which interface displays information indicative of the performance of the fuel processing system.
  12. 18
    The method of any preceding claim, wherein the fuel processor includes a steam reformer.
  13. 19
    The method of any preceding claim, wherein the fuel cell stack includes at least one proton exchange membrane fuel cell.
  14. 20
    The use in an automated fuel processing system of a controller (28) to automatically transition the fuel processing system between at least the following operating states:(i) a standby state in which the controller achieves and maintains determined operating temperatures and pressures within the fuel processor (16) but in which hydrogen and electricity are not being generated in more than a nominal amount;(ii) an off state;(iii) a faulted state in which the flows of fuel and feedstock are stopped, and from which faulted state the control means awaits a reset signal before attempting to direct a transition of the fuel processing system to the standby state and directs the fuel processing system to an off state if no reset signal is received;(iv) a running state, the fuel processing system comprising a fuel processor (16) which in use receives a feed stream and produces hydrogen gas therefrom, a feed assembly (18) which in use delivers the feed stream to the fuel processor (16), a fuel cell stack (14) which in use receives at least a portion of the hydrogen gas, and a control system (26) which includes a sensor assembly used to monitor the value of selected operating parameters of the fuel processing system and the controller (28), which controller is used to receive inputs from the sensor assembly and transition the fuel processing system between the operating states at least in part based on inputs from the sensor assembly.
  15. 23
    The use of any of claims 20 to 22 wherein the controller (28) is used to transition the fuel processing system to the faulted state when it detects a malfunction.
  16. 24
    The use of any of claims 20 to 23 wherein the controller (28) is used, when the fuel processing system is in the standby state, to transition the fuel processing system to the running state, whether directly or upon the input of a trigger.
  17. 25
    The use of any of claims 20 to 24 wherein the controller (28) transitions the fuel processing system between operating states in part based on user inputs.
  18. 26
    The use of any of claims 20 to 25 wherein the selected operating parameters include the flow rate of fluid in feed stream(s) to the fuel processor, the temperature of a hydrogen producing region (34) of the fuel processor and the pressure in the hydrogen producing region (34).
  19. 27
    A fuel processing system which comprises a fuel processor (16) which in use receives a feed stream and produces hydrogen gas therefrom, a feed assembly (18) which in use delivers the feed stream to the fuel processor (16), a fuel cell stack (14) which in use receives at least a portion of the hydrogen gas, and a control system (26) comprising a plurality of sensors adapted to monitor selected operating parameters and a controller (28) operative:(a) to receive inputs from said sensors corresponding to said operating parameters;(b) to determine whether a measured value of a selected operating parameter is above or below a determined threshold value or value range and thereby outside normal operating parameters of the system, (c) to select in accordance with the determination in (b) whether the fuel processing system is to be transitioned to: (i) a standby state in which the controller (28) achieves and maintains determined operating temperatures and pressures within the fuel processor (16) but in which hydrogen and electricity are not being generated in more than a nominal amount, or (ii) a faulted state in which the flows of fuel and feedstock are stopped;(d) to send command signals directing the fuel processing system to transition from its running state to the said standby state or the said faulted state;and (e) from the faulted state the control means to await a reset signal before attempting to direct a transition of the fuel processing system to the standby state and to direct the fuel processing system to an off state if no reset signal is received.
  20. 30
    The system of any of claims 27 to 29, wherein the controller (28) is adapted to automatically transition the fuel processing system from the standby state to the faulted state when a malfunction is detected.
  21. 31
    The system of any of claims 27 to 30, wherein the controller (28) is adapted to automatically transition the fuel processing system from its off state to the standby state in response to an input signal.
  22. 33
    The system of any of claims 27 to 32, wherein the controller (28) is adapted to transition the fuel processing system from the running state to the off state via the standby state when an input directing the control means to shutdown the fuel processing system is received.
  23. 34
    The system of any of claims 27 to 33, wherein the controller (28) comprises a computerized controller (28) which is included in an automated control system (26).
  24. 36
    The system of any of claims 27 to 35, wherein the fuel processing system includes a user interface (58) in communication with the controller and adapted to display information indicative of the performance of the fuel processing system.
  25. 39
    The system of any of claims 27 to 38 wherein the selected operating parameters include the flow rate of fluid in feed stream(s) to the fuel processor.
  26. 40
    The system of any of claims 27 to 39 wherein the selected operating parameters include the temperature of a hydrogen producing region (34) of the fuel processor.
  27. 41
    The system of any of claims 29 to 40 wherein the selected operating parameters include the pressure in the hydrogen producing region (34).
Independent claims27