The subject invention relates to methods, and systems for monitoring an oxidation catalyst of an exhaust system.
An oxidation catalyst device is provided in an exhaust system to treat unburned gaseous and non-volatile hydrocarbon (HC) and carbon monoxide (CO). The oxidation catalyst oxidizes the HC and CO under high temperatures conditions to form carbon dioxide (CO2) and water (H2O). As the oxidation catalyst ages, its ability to oxidize the HC and CO is affected. Accordingly, it is desirable to provide methods and systems that monitor the operation of the oxidation catalyst.
In one exemplary embodiment, a control method for monitoring an oxidation catalyst is provided. The control method includes: determining an open loop factor based on an aging factor and an efficiency curve; controlling an injection of hydrocarbons into an exhaust stream based on the open loop factor; and monitoring the oxidation catalyst based on the injection of hydrocarbons.
In another exemplary embodiment, a control system for monitoring an oxidation catalyst of an exhaust system is provided. The control system includes a first module that determines an open loop factor based on an aging factor and an efficiency curve. A second module controls an injection of hydrocarbons into an exhaust stream based on the open loop factor. A third module monitors the oxidation catalyst based on the injection of hydrocarbons.
In yet another exemplary embodiment, an exhaust system of an engine is provided. The exhaust system includes an oxidation catalyst, and a control module. The control module determines an open loop factor based on an aging factor and an efficiency curve, injects hydrocarbons into an exhaust stream based on the open loop factor, and monitors the oxidation catalyst based on the injection of hydrocarbons.
The above features and advantages and other features and advantages of the invention are readily apparent from the following detailed description of the invention when taken in connection with the accompanying drawings.
Other features, advantages and details appear, by way of example only, in the following detailed description of embodiments, the detailed description referring to the drawings in which:
The following description is merely exemplary in nature and is not intended to limit the present disclosure, its application or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features. As used herein, the term module refers to an application specific integrated circuit (ASIC), an electronic circuit, a processor (shared, dedicated, or group) and memory that executes one or more software or firmware programs, a combinational logic circuit, and/or other suitable components that provide the described functionality.
Referring now to
As shown in
In
A control module 32 controls the engine 14 and one or more components of the exhaust treatment system 12 based on sensed and/or modeled data. For example, one or more sensors 34 sense a temperature of the exhaust gas 24 at various locations in the exhaust system 12 and generates a sensor signal based thereon. The control module 32 receives the signal and monitors the operation of the OC 18 based on the signal and the OC monitoring systems and methods of the present disclosure.
In various embodiments, the control module 32 adjusts a level of HC (e.g. excess fuel) present in the exhaust gas by, controlling an injection of fuel into the exhaust gas (e.g., into the cylinder or the exhaust conduit). The control module 32 adjusts the level based on an aging factor and an efficiency factor. The control module 32 monitors the operation of the OC 18 based on the adjusted HC injection and sets a diagnostic code based on the monitoring. The control module 32 can further report the diagnostic code according to various reporting methods, including, but not limited to, using in-vehicle communication reporting messages and/or off-vehicle reporting messages.
Referring now to
The factor determination module 40 receives as input an aging factor 46 and an efficiency curve 48. The aging factor 46 is a value that indicates an age of the OC 18 (
Based on the aging factor 46 and the efficiency curve 48, the factor determination module 40 determines an open loop factor 50. In various embodiments, the open loop factor 50 can be between, for example, one and two, and can be retrieved from a lookup table that is indexed by the efficiency curve 48 and the aging factor 46.
The HC control module 42 receives as input the open loop factor 50. Based on the open loop factor 50, the HC control module 42 generates control signals 52 to the engine 14 (
The reporting module 44 receives as input sensor signals 58 indicating a temperature of the exhaust gas 24 (
The reporting module 44 may then report the fault status or diagnostic code via a message 60. In various embodiments, the reporting module 44 generates the message 60 on a serial data bus (not shown) of the vehicle 10 (
Referring now to
In various embodiments, the method can be scheduled to run based on predetermined events, and/or run continually during operation of the engine 14.
In one example, the method may begin at 100. The aging factor 46 is determined at 100. The efficiency curve 48 is determined at 110. The open loop factor 50 is determined from the aging factor 46 and the efficiency curve 48 at 120. The adjusted HC amount 56 is determined based on the open loop factor 46 at 130. The control signals 52 are generated to achieve the adjusted HC amount 56 at 140.
The sensor signals 58 are evaluated at 150. If the sensor signals 58 indicate the exhaust temperature is within a range at 150, then the fault status is set to indicate no fault at 160 and the message 60 is generated that includes the fault status at 170. If, however, the sensor signals 58 indicate that the exhaust temperature is outside of a range at 150, then the fault status is set to indicate a fault at 180 and the message 60 is generated that includes the fault status at 170. The method may end at 190.
While the invention has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed, but that the invention will include all embodiments falling within the scope of the application.