Claims
- 1. A method of initializing an evaporative emission space of a fuel storage system of an automotive vehicle preparatory to performing a leak detection test on the evaporative emission space, the vehicle being powered by a fuel-consuming engine and including an evaporative emission control system for purging fuel vapor from the evaporative emission space to the engine for combustion therein during conditions conducive to purging, the method comprising:
creating a differential between pressure in the evaporative emission space and atmospheric pressure sufficient to perform a leak detection test; varying, over time, the created pressure differential within a range of differential pressures sufficient to perform a leak detection test; and then isolating the evaporative emission space from communication with both the engine and atmosphere, and performing a leak detection test.
- 2. A method as set forth in claim 1 in which the varying step comprises increasing and decreasing the created pressure differential relative to a nominal pressure differential.
- 3. A method as set forth in claim 2 in which the step of increasing and decreasing the created pressure differential relative to a nominal pressure differential comprises alternately increasing the created pressure differential above the nominal pressure differential and decreasing the created pressure differential below the nominal pressure differential.
- 4. A method as set forth in claim 3 in which the step of alternately increasing the created pressure differential above the nominal pressure differential and decreasing the created pressure differential below the nominal pressure differential comprises a plurality of such alternate increases and decreases.
- 5. A method as set forth in claim 1 in which the varying step comprises varying the pressure differential over a range between approximately 0.1 millibar above the nominal pressure differential and approximately 0.1 millibar below the nominal pressure differential.
- 6. A method as set forth in claim 5 including establishing the nominal pressure differential at approximately 3.1 millibars.
- 7. A method as set forth in claim 1 in which the creating and varying steps are performed by selectively controlling a pump and a valve.
- 8. A method as set forth in claim 7 in which the selectively controlling the pump and valve during the varying step comprises varying the operation of the pump and causing the valve to be open while the pump operation is varied.
- 9. A method as set forth in claim 8 in which the step of varying the operation of the pump comprises alternately throttling the pump up and down.
- 10. A method as set forth in claim 9 in which the varying step concludes by closing the valve and stopping the pump.
- 11. A method as set forth in claim 1 in which the creating step comprises creating a positive pressure in the evaporative emission space relative to atmospheric pressure.
- 12. An engine-powered automotive vehicle evaporative emission control having a fuel storage system comprising an evaporative emission space for containing volatile fuel vapors generated by the volatilization of fuel in the storage system and a purge valve for purging fuel vapors from the evaporative emission space to an engine for combustion therein during conditions conducive to purging, including a leak detection system for detecting leakage from the evaporative emission space which comprises:
a selectively operable prime mover for pumping gaseous fluid with respect to the evaporative emission space; a selectively operable valve which operates to a first condition for allowing the prime mover to move gaseous fluid with respect to the evaporative emission space, and to a second condition disallowing the prime mover from moving gaseous fluid with respect to the evaporative emission space; and a sensor providing an electric signal related to pressure in the evaporative emission space for controlling operation of the prime mover and of the valve; the leak detection system initializing the evaporative emission space preparatory to performing a leak detection test by causing the pump to create a differential between pressure in the evaporative emission space and atmospheric pressure sufficient to perform a leak detection test, including varying, over time, the created pressure differential within a range of differential pressures sufficient to perform a leak detection test, and then isolating the evaporative emission space from communication with both the engine and atmosphere and performing a leak detection test.
- 13. An evaporative emission control as set forth in claim 12 in which the leak detection system initializes the evaporative emission space by increasing and decreasing the created pressure differential relative to a nominal pressure differential.
- 14. An evaporative emission control as set forth in claim 13 in which the leak detection system initializes the evaporative emission space by alternately increasing the created pressure differential above the nominal pressure differential and decreasing the created pressure differential below the nominal pressure differential.
- 15. An evaporative emission control as set forth in claim 14 in which the leak detection system initializes the evaporative emission space by a plurality of such alternate increases and decreases.
- 16. An evaporative emission control as set forth in claim 12 in which the leak detection system initializes the evaporative emission space by varying the pressure differential over a range between approximately 0.1 millibar above the nominal pressure differential and approximately 0.1 millibar below the nominal pressure differential.
- 17. An evaporative emission control as set forth in claim 16 in which the leak detection system initializes the evaporative emission space by establishing the nominal pressure differential at approximately 3.1 millibars.
- 18. An evaporative emission control as set forth in claim 12 in which the leak detection system initializes the evaporative emission space by varying the pump operation while the valve is open.
- 19. An evaporative emission control as set forth in claim 18 in which the leak detection system initializes the evaporative emission space by alternately throttling the pump up and down while the valve is open.
- 20. An evaporative emission control as set forth in claim 9 in which the leak detection system concludes the initialization of the evaporative emission space by closing the valve and stopping the pump.
- 21. An evaporative emission control as set forth in claim 12 in which the leak detection system initializes the evaporative emission space by creating a positive pressure in the evaporative emission space relative to atmospheric pressure.
REFERENCE TO RELATED APPLICATION AND PRIORITY CLAIM
[0001] This application expressly claims the benefit of earlier filing date and right of priority from the following co-pending patent applications: U.S. Provisional Application Ser. No. 60/057,962 (Attorney Docket 97P7697US) filed on Sep. 5, 1997 in the names of Cook et al, entitled “Automotive Evaporative Emission Leak Detection System and Method,” and Provisional Application Ser. No. 601058,275 (Attorney Docket US 97P7702US) filed on 09 September 1997 in the names of Cook et al., entitled “Evaporative Emission Leak Detection System;” each of which provisional patent application is expressly incorporated in its entirety by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60057962 |
Sep 1997 |
US |
|
60058275 |
Sep 1997 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09037784 |
Mar 1998 |
US |
Child |
09867760 |
May 2001 |
US |