NOadsorber diagnostics and automotive exhaust control system utilizing the same
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
F01N-003/00
F01N-003/10
출원번호
US-0943062
(2004-09-16)
발명자
/ 주소
Dou,Danan
Bailey,Owen H.
출원인 / 주소
Delphi Technologies, Inc.
인용정보
피인용 횟수 :
10인용 특허 :
31
초록▼
A process for controlling an exhaust system can comprise flowing exhaust gas from the engine past a first oxygen sensor, through a NOx adsorber, past a second oxygen sensor, through a catalyst and past a third oxygen sensor, wherein the first oxygen sensor, the second oxygen sensor, and the third ox
A process for controlling an exhaust system can comprise flowing exhaust gas from the engine past a first oxygen sensor, through a NOx adsorber, past a second oxygen sensor, through a catalyst and past a third oxygen sensor, wherein the first oxygen sensor, the second oxygen sensor, and the third oxygen sensor, are in operable communication with an electronic control module, and using a switching delay between the first oxygen sensor and the second oxygen sensor to determine a NOx value, wherein the NOx value is selected from the group consisting of a NOx regeneration time, a stored NOx amount, a NOx storage efficiency, and combinations comprising at least one of the foregoing NOx values. A desulfurization process can be initiated when the NOx value is less than or equal to a first selected value. During the desulfurization process, when the third oxygen sensor signals a condition rich of stoichiometry, oxygen can be provided to the catalyst.
대표청구항▼
What is claimed is: 1. A process for controlling an exhaust system for an internal combustion engine, comprising: flowing exhaust gas from the engine past a first oxygen sensor, through a NOx adsorber, past a second oxygen sensor, through a catalyst and past a third oxygen sensor, wherein the first
What is claimed is: 1. A process for controlling an exhaust system for an internal combustion engine, comprising: flowing exhaust gas from the engine past a first oxygen sensor, through a NOx adsorber, past a second oxygen sensor, through a catalyst and past a third oxygen sensor, wherein the first oxygen sensor, the second oxygen sensor, and the third oxygen sensor, are in operable communication with an electronic control module; using a switching delay between the first oxygen sensor and the second oxygen sensor to determine a NOx value, wherein the NOx value is selected from the group consisting of a NOx regeneration time, a stored NOx amount, a NOx storage efficiency, and combinations comprising at least one of the foregoing NOx values; and initiating a desulfurization process when the NOx value is less than or equal to a first selected value, wherein the desulfurization process comprises increasing a temperature in the exhaust gas to a desulfurization temperature; switching the engine operation from a normal combustion condition to a rich combustion condition to produce a rich exhaust gas; monitoring the rich exhaust gas exiting the catalyst; and providing oxygen to the catalyst when, during the desulfurization process, the third oxygen sensor signals a third condition rich of stoichiometry. 2. The process of claim 1, wherein providing oxygen to the catalyst further comprises switching the engine operation to a stoichiometric or a lean combustion condition. 3. The process of claim 2, wherein the engine is switched to the stoichiometric or the lean combustion condition for a period of time sufficient to increase the amount of oxygen stored in the catalyst to a desired oxygen level. 4. The process of claim 1, wherein providing oxygen to the catalyst further comprises providing the oxygen from an external source to the exhaust gas downstream of the NOx adsorber. 5. The process of claim 1, wherein the switching delays comprise a first time delay between (the first oxygen sensor switching a first sensor first value to a first sensor second value) and (the second oxygen sensor switching from a second sensor first value to a second sensor second value); and a second time delay between (the first oxygen sensor switching from the first sensor second value to the first sensor first value) and (the second oxygen sensor switching from the second sensor second value to the second sensor first value). 6. The process of claim 1, wherein the desulfurization process further comprises repeating the switching the engine operation from a normal combustion condition to a rich combustion condition; monitoring the exhaust gas exiting the catalyst; and providing oxygen to the catalyst when, during the desulfurization process, the third oxygen sensor signals a third condition rich of stoichiometry; wherein the repeating continues until the NOx regeneration time is greater than or equal to a second selected value. 7. The process of claim 1, further comprising operating the engine under lean combustion conditions to produce a lean exhaust gas at the normal operating temperature; monitoring a first air/fuel ratio of the lean exhaust gas when passing the first oxygen sensor as a first sensor first value; monitoring a second air/fuel ratio of the lean exhaust gas exiting the NOx adsorber with the second oxygen sensor as a second sensor first value; operating the engine under rich combustion conditions to produce a rich exhaust gas; monitoring the first oxygen sensor for a first sensor second value indicating a switch to the rich combustion conditions; monitoring the second oxygen sensor for a second sensor second value indicating the switch to the rich combustion conditions; determining a combined NOx/O2 release time that is related to an amount of time delay between (the first oxygen sensor switching from the first sensor first value to the first sensor second value) and (the second oxygen sensor switching from the second sensor first value to a second sensor second value); switching the engine operation to the lean combustion condition; determining an O2 storage time that is related to an amount of time delay between (the first oxygen sensor switching a from the first sensor second value back to the first sensor first value) and (the second oxygen sensor switching from the second sensor second value back to the second sensor first value); determining the NOx regeneration time using the combined NOx/O2 release time and the O2 storage time; determining a stored NOx amount and using the stored NOx amount to determine a NOx storage time and NOx storage efficiency; determining whether the stored NOx amount is less than or equal to the first selected value; when the stored NOx amount is less than or equal to the first selected value, initiating the desulfurization process; and switching to the lean combustion conditions at the normal operating temperature when the desulfurization process is complete. 8. The process of claim 7, wherein the desulfurization process further comprises switching to the lean combustion conditions at the desulfurizing temperature when the third oxygen sensor signals a rich stoichiometry; switching back to the rich combustion conditions at the desulfurizing temperature when the third oxygen sensor signals a lean stoichiometry; and repeating the switching to the lean combustion conditions at the desulfurizing temperature and the switching back to the rich combustion conditions at the desulfurizing temperature, until the NOx adsorber is desulfurized. 9. The process of claim 7, wherein the NOx regeneration time is determined in part by an algorithm comprising: NOx regeneration time=the combined and NOx /O2 release time-the O2 release time. 10. The process of claim 7, wherein providing oxygen to the catalyst further comprises providing the oxygen from an external source to the rich exhaust gas downstream of the NOx adsorber. 11. An exhaust system, comprising: a NOx adsorber; a first oxygen sensor located upstream of and in fluid communication with the NOx adsorber; a second oxygen sensor located downstream of and in fluid communication with the NOx adsorber; a catalyst located downstream of and in fluid communication with the second oxygen sensor; a third oxygen sensor located downstream of and in fluid communication with the catalyst; and a control module operably connected to the first oxygen sensor, the second oxygen sensor, and the third oxygen sensor; wherein the control module is capable of initiating a desulfurization process when information from the first oxygen sensor and/or the second oxygen sensor signals a NOx regeneration time that is less than or equal to a first selected value; and wherein the control module is capable of switching an exhaust entering the catalyst during a desulfurization process to a stoichiometric or a lean combustion condition when the third oxygen sensor signals a condition rich of stoichiometry. 12. The exhaust system of claim 11, further comprising a temperature sensor disposed upstream of and in fluid communication with the NOx adsorber, and in operable communication with the control module. 13. The exhaust system of claim 11, further comprising a pump capable of providing oxygen to the catalyst from an external source. 14. The exhaust system of claim 13, wherein the pump is capable of providing the oxygen to downstream of the NOx adsorber. 15. The exhaust system of claim 11, further comprising a start-up catalyst disposed upstream of the NOx adsorber. 16. The exhaust system of claim 11, further comprising a particulate filter disposed upstream of the NOx adsorber and downstream of the start-up catalyst.
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이 특허에 인용된 특허 (31)
Hamburg Douglas R. (Bloomfield MI) Culbertson Thomas R. (Redford MI) Curran Judith M. (Northville MI), Air fuel ratio feedback control.
Cullen Michael John ; Farmer David George ; Brandt Arnold William ; Hepburn Jeffrey Scott, Method and apparatus for maintaining catalyst efficiency of a NO.sub.x trap.
Kalversberg Ronald,DEX ; Karl Gunter,DEX ; Kemmler Roland,DEX, Method and apparatus for nitrogen oxide emission of a direct injection internal combustion engine.
Bush Kevin J. ; Church Bruce A. ; Frankowski David ; Schumacher Darren A. ; Badalament Michael, Method for controlling the level of oxygen stored by a catalyst within a catalytic converter.
Schmidt Jurgen,DEX ; Tiefenbacher Gerd,DEX ; Waltner Anton,DEX, Method for operating an internal combustion engine and system and with sulfur-rich exhaust gas purification component and an internal combustion engine system operable therewith.
Large, Thomas J.; Ovist, Grant J.; Ziola, Sharianne; Wendling, Timothy; Gwidt, J. Michael, Adjustment of measured oxygen storage capacity based on upstream O2 sensor performance.
Genslak, Robert J.; Heger, Robert E.; Stuteville, Edward; Sheahan, Jerry J.; Large, Thomas J., Catalyst oxygen storage capacity adjustment systems and methods.
Weissman,Walter; El Malki,El Mekki, Sulfur oxide/nitrogen oxide trap system and method for the protection of nitrogen oxide storage reduction catalyst from sulfur poisoning.
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