Claims
- 1. An automotive vehicle that is powered by an internal combustion engine and comprises:a tank for storing volatile fuel that is consumed by the engine; a vapor storage canister that comprises a dirty air port in communication with headspace of the tank to cooperatively define an evaporative emission space for containing vapor generated by the evaporation of liquid fuel in the tank and that comprises a vapor absorbent medium separating the dirty air port from a clean air port; and a system for selectively communicating the evaporative emission space to atmosphere through a vent valve and to an intake system of the engine through a purge valve to establish different flow paths for different operating modes of an evaporative emission control system, including a leak verification system, for the evaporative emission space, wherein for a purge mode, a purge flow path extends from atmosphere through the vent valve, through the evaporative emission space, and through the purge valve to the engine intake system, for a pre-conditioning phase of a leak verification mode, a pre-conditioning flow path extends from atmosphere through the vent valve and the purge valve to the engine intake system without passing through the evaporative emission space, and for a test phase of the leak verification mode, a test path extends from the evaporative emission space through the dirty air port, through the canister medium, through the clean air port, and through the purge valve to the engine intake system.
- 2. An automotive vehicle as set forth in claim 1 in which the system comprises an assembly comprising plural valves operated by a single actuator to selected conditions for selectively establishing the purge flow path, the pre-conditioning flow path, and the test path.
- 3. An automotive vehicle as set forth in claim 2 in which the plural valves comprise three valves disposed on a common centerline with the actuator.
- 4. An automotive vehicle as set forth in claim 3 in which one of the valves is disposed proximate one longitudinal end of the actuator and the other two valves are disposed proximate the other longitudinal end of the actuator.
- 5. An automotive vehicle as set forth in claim 3 in which the one valve selectively opens and closes a passage to the purge valve, and one of the other two valves opens and closes a passage to atmosphere.
- 6. A leak verification test method for an evaporative emission space of a fuel system that holds a supply of volatile fuel consumed by an internal combustion engine to power a motor vehicle and that comprises a tank for storing the fuel and a vapor storage canister which cooperates with headspace of the tank to define the evaporative emission space and which contains a vapor absorbent medium separating a clean air side from a dirty air side, the method comprising:pre-conditioning a flow path that extends from atmosphere through a vent valve and a purge valve to the engine intake system without passing through the evaporative emission space by opening the vent valve and running the engine to draw clean air from atmosphere through the flow path, closing the vent valve, and performing a leak verification test by communicating the engine intake system to the evaporative emission space through the purge valve and the clean air side of the canister and running the engine to draw vacuum in the evaporative emission space via the clean air side of the canister.
- 7. A method as set forth in claim 6 in which the leak verification test commences before a lambda sensor that senses exhaust gases from the engine acquires closed-loop control of air-fuel mixture introduced into the engine for combustion.
- 8. A method as set forth in claim 7 including using the lambda sensor to detect hydrocarbon emission from the clean air port after the lambda sensor has acquired closed-loop control of the air-fuel mixture.
- 9. A method as set forth in claim 6 including blocking a flow path from the dirty air port to the purge valve during the leak verification test.
- 10. An automotive vehicle that is powered by an internal combustion engine and comprises:a tank for storing volatile fuel that is consumed by the engine; a vapor storage canister that cooperates with headspace of the tank to define an evaporative emission space for containing vapor generated by the evaporation of liquid fuel in the tank and comprises a clean air port and a dirty air port; and a system for selectively communicating the evaporative emission space to atmosphere through a vent valve and to an intake system of the engine through a purge valve to establish different flow paths for different operating modes of an evaporative emission control system, including a leak verification system, for the evaporative emission space, wherein one operating mode comprises drawing vacuum in the evaporative emission space through the clean air port and using a lambda sensor to detect hydrocarbon emission from the clean air port after the lambda sensor has acquired closed-loop control of the air-fuel mixture being introduced into the engine for combustion.
- 11. An automotive vehicle as set forth in claim 10 in which the one operating mode also comprises blocking a flow path from the dirty air port to the purge valve.
- 12. In an automotive vehicle that is powered by an internal combustion engine and comprises a tank for storing volatile fuel that is consumed by the engine and a vapor storage canister that cooperates with headspace of the tank to define an evaporative emission space for containing vapor generated by the evaporation of liquid fuel in the tank, the canister having a clean air port and a dirty air port; a method comprising:selectively communicating the evaporative emission space to atmosphere through a vent valve and to a purge valve that is upstream of an engine intake system to establish different flow paths for different operating modes of an evaporative emission control system, including a leak verification system, for the evaporative emission space; and drawing vacuum in the evaporative emission space through the clean air port of the canister and using a lambda sensor to detect hydrocarbon emission from the clean air port after the lambda sensor has acquired closed-loop control of the air-fuel mixture being introduced into the engine for combustion.
- 13. In an automotive vehicle that is powered by an internal combustion engine and comprises a tank for storing volatile fuel that is consumed by the engine, a vapor storage canister that cooperates with headspace of the tank to define an evaporative emission space for containing vapor generated by the evaporation of liquid fuel in the tank, a purge valve for purging the evaporative emission space to an engine intake system, a vent valve for venting the evaporative emission space to atmosphere through a filter, and a pressure sensor; a method for detecting filter clogging comprising:drawing air through a path that by-passes the evaporative emission space and comprises the vent valve, the pressure sensor, the purge valve in that order between the filter and the engine intake system; and determining filter clogging from the pressure sensed by the pressure sensor.
- 14. A method as set forth in claim 13 in which the path further includes at least one valve that blocks a dirty air port of the canister from the path.
REFERENCE TO RELATED APPLICATIONS AND PRIORITY CLAIM
This application derives from the following commonly owned co-pending patent applications, the priority benefits of which are expressly claimed: Provisional Application Ser. No. 60/153,014 filed on or about Sep. 9, 1999 in the names of Cook et al.; and Provisional Application Ser. No. 60/153,016 filed on or about Sep. 9, 1999 in the names of Weldon et al.
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60/153014 |
Sep 1999 |
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60/153016 |
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