IP Library Granted Patent US 9,371,763
Granted Patent B2
US 9,371,763 · App. 13/052,341 · Granted Jun 21, 2016

Method of operating an exhaust gas treatment system to prevent quenching during regeneration

Inventors: Thomas LaRose, Jr. (Redford, MI); David Michael VanBuren (Livonia, MI); Patrick Barasa (An Arbor, MI); Michael V. Taylor (Wolverine Lake, MI); Kari Jackson (Redford, MI)
Assignee: GM Global Technology Operations LLC
F01N3/2066F01N3/0253F01N3/2033F02D41/025F02D41/029F02D41/402F01N2430/085F01N2560/06F01N2560/14F01N2610/03F01N2900/1602F01N2900/1621F01N2900/1626F02D41/1441F02D41/1446Y02T10/24Y02T10/26Y02T10/44
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Quick Facts
Patent No.
US 9,371,763
App. No.
13/052,341
Granted
Jun 21, 2016
Kind
B2
Abstract

A method of controlling an exhaust gas treatment system of a vehicle includes detecting a request to regenerate a particulate filter, and injecting hydrocarbons at an injection rate into a flow of exhaust gas upstream of an oxidation catalyst to heat the oxidation catalyst. The injection rate is increased at a current acceleration rate, and the current acceleration rate is reduced to define a reduced acceleration rate when the oxidation catalyst is quenched.

Claims (34)

1. A method of controlling an exhaust gas treatment system for a vehicle, the method comprising:

injecting hydrocarbons at an injection rate into a flow of exhaust gas upstream of an oxidation catalyst to heat the oxidation catalyst;

increasing the injection rate at a current acceleration rate;

sensing a status of the oxidation catalyst to determine if the oxidation catalyst is quenched or is not quenched;

reducing the current acceleration rate to define a reduced acceleration rate when the status of the oxidation catalyst is determined to be quenched; and

re-defining the current acceleration rate of hydrocarbon injection to be equal to the reduced acceleration rate of hydrocarbon injection.

2. A method as set forth in claim 1 wherein sensing the status of the oxidation catalyst includes sensing a temperature of the exhaust gas upstream of the oxidation catalyst and downstream of the oxidation catalyst.

3. A method as set forth in claim 2 wherein sensing the status of the oxidation catalyst includes comparing the sensed downstream temperature of the exhaust gas with the sensed upstream temperature of the exhaust gas as the hydrocarbon injection rate increases to determine if the sensed downstream temperature is less than, equal to or greater than the upstream temperature as the hydrocarbon injection rate increases.

4. A method as set forth in claim 3 wherein sensing the status of the oxidation catalyst includes determining the oxidation catalyst is quenched when the downstream temperature of the exhaust gas is equal to or less than the upstream temperature of the exhaust gas as the hydrocarbon injection rate increases.

5. A method as set forth in claim 1 further comprising continuing to reduce the current acceleration rate of hydrocarbon injection to define the reduced acceleration rate, and continuing to re-define the current acceleration rate to be equal to the reduced acceleration rate until the status of the oxidation catalyst is determined to be not quenched.

6. A method as set forth in claim 1 further comprising storing the re-defined current acceleration rate in a memory of a controller.

7. A method as set forth in claim 1 further comprising stopping the injection of hydrocarbons when the status of the oxidation catalyst is determined to be quenched.

8. A method as set forth in claim 7 further comprising tracking a number of occurrences in which the status of the oxidation catalyst is determined to be quenched and hydrocarbon injection is stopped.

9. A method as set forth in claim 8 further comprising comparing the number of tracked occurrences to a pre-defined limit to determine if the number of tracked occurrences is less than or equal to the pre-defined limit.

10. A method as set forth in claim 9 wherein reducing the current acceleration rate to define a reduced acceleration rate when the status of the oxidation catalyst is determined to be quenched is further defined as reducing the current acceleration rate to define a reduced acceleration rate when the status of the oxidation catalyst is determined to be quenched and the number of tracked occurrences is determined to be less than the pre-defined limit.

11. A method as set forth in claim 1 further comprising comparing the current acceleration rate of hydrocarbon injection to a minimum allowable acceleration rate to determine if the current acceleration rate is greater than or equal to the minimum allowable acceleration rate.

12. A method as set forth in claim 11 wherein reducing the current acceleration rate to define a reduced acceleration rate when the status of the oxidation catalyst is determined to be quenched is further defined as reducing the current acceleration rate to define a reduced acceleration rate when the status of the oxidation catalyst is determined to be quenched and the current acceleration rate is determined to be greater than the minimum allowable acceleration rate.

13. A method as set forth in claim 1 further comprising detecting a request to regenerate a particulate filter.

14. A method as set forth in claim 1 further comprising defining the current acceleration rate of hydrocarbon injection.

15. A method as set forth in claim 1 wherein the current acceleration rate of hydrocarbon injection includes a linear acceleration rate.

16. A method as set forth in claim 1 wherein the current acceleration rate of hydrocarbon injection includes a non-linear acceleration rate.

17. A method of operating a vehicle having an exhaust gas treatment system, the method comprising:

detecting a request to regenerate a particulate filter;

defining a current acceleration rate of hydrocarbon injection;

injecting hydrocarbons at an injection rate into a flow of exhaust gas upstream of an oxidation catalyst to heat the oxidation catalyst;

increasing the injection rate at the current acceleration rate;

sensing a status of the oxidation catalyst to determine if the oxidation catalyst is quenched or is not quenched;

stopping the injection of hydrocarbons when the status of the oxidation catalyst is determined to be quenched;

comparing the current acceleration rate of hydrocarbon injection to a minimum allowable acceleration rate to determine if the current acceleration rate is greater than or equal to the minimum allowable acceleration rate;

tracking a number of occurrences in which the status of the oxidation catalyst is determined to be quenched and hydrocarbon injection is stopped;

comparing a number of occurrences in which the status of the oxidation catalyst is determined to be quenched and hydrocarbon injection is stopped to a pre-defined limit to determine if the number of occurrences is less than or equal to the pre-defined limit; and

reducing the current acceleration rate to define a reduced acceleration rate when the status of the oxidation catalyst is determined to be quenched, the number of occurrences is determined to be less than the pre-defined limit, and the current acceleration rate is determined to be greater than the minimum allowable acceleration rate.

18. A method as set forth in claim 17 wherein sensing the status of the oxidation catalyst includes comparing a temperature of the exhaust gas downstream of the oxidation catalyst with temperature of the exhaust gas upstream of the oxidation catalyst as the hydrocarbon injection rate increases to determine if the downstream temperature is less than, equal to or greater than the upstream temperature as the hydrocarbon injection rate increases.

19. A method as set forth in claim 18 wherein sensing the status of the oxidation catalyst includes determining the oxidation catalyst is quenched when the downstream temperature of the exhaust gas is equal to or less than the upstream temperature of the exhaust gas as the hydrocarbon injection rate increases, and determining the oxidation catalyst is not quenched when the downstream temperature of the exhaust gas is greater than the upstream temperature of the exhaust gas as the hydrocarbon injection rate increases.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Nov 7, 2014
From: WILMINGTON TRUST COMPANY
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 034287/0159 →
SECURITY AGREEMENT Recorded Jun 28, 2012
From: GM GLOBAL TECHNOLOGY OPERATIONS LLC
To: WILMINGTON TRUST COMPANY
Reel/Frame 028466/0870 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2011
From: LAROSE, THOMAS, JR.; VANBUREN, DAVID MICHAEL; BARASA, PATRICK; TAYLOR, MICHAEL V.; JACKSON, KARI
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 025991/0234 →
Continuity (1)
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