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Title:
METHOD OF DIAGNOSING THE PRESENCE OF AN EXHAUST AFTER-TREATMENT COMPONENT AND A USE OF THE METHOD FOR VEHICLE ON-BOARD DIAGNOSIS
Document Type and Number:
WIPO Patent Application WO/2006/110071
Kind Code:
A1
Abstract:
A method for diagnosing the presence of an internal combustion engine (10) exhaust aftertreatment component (12) on a vehicle. The exhaust temperature is measured downstream the aftertreatment component (12) continuously over a time period to provide a first temperature signal with fluctuating amplitude. The temperature signal is modified to provide a second modified temperature signal. The first and second temperature signals are compared to detect any significant difference between the signals.

Inventors:
HOLMGREN CHARLOTTE (US)
Application Number:
PCT/SE2005/000545
Publication Date:
October 19, 2006
Filing Date:
April 14, 2005
Export Citation:
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Assignee:
VOLVO LASTVAGNAR AB (SE)
HOLMGREN CHARLOTTE (US)
International Classes:
F01N11/00
Domestic Patent References:
WO2004003355A12004-01-08
Foreign References:
EP0442648A21991-08-21
FR2864145A12005-06-24
Attorney, Agent or Firm:
Fröhling, Werner (Corporate Patents 0682, M1.7 Göteborg, SE)
Download PDF:
Claims:
P20514/KS, 2005-04-14CLAIMS
1. A method of diagnosing the presence of an internal combustion engine (10) exhaust aftertreatment component (12) on a vehicle, c h a r a c t e r i z e d in the steps of measuring the exhaust temperature downstream the aftertreatment component (12) continuously over a time period to provide a first temperature signal with fluctuating amplitude, modifying the temperature signal to provide a second modified temperature signal, and comparing the first and second temperature signals to detect any significant difference between the signals.
2. A method according to claim 1, c h a r a c t e r i z e d in that the aftertreatment component (12) comprises a thermic mass.
3. A method according to claim 2, c h a r a c t e r i z e d in that the aftertreatment component (12) is a catalyst reactor.
4. A method according to any one of claims 13, c h a r a c t e r i z e d in that the aftertreatment component (12) is positioned as the first aftertreatment component (12) downstream the engine (10).
5. A method according to any one of claims 14, c h a r a c t e r i z e d in the step of modifying the temperature signal using any type of analysis of the temperature signal that is based on signal frequency or signal derivative.
6. A method according to claim 5, c h a r a c t e r i z e d in that modifying is made by filtering the temperature signal.
7. A method according to claim 6, c h a r a c t e r i z e d in the steps of integrating both the first unfiltered signal and the second filtered signal and calculating the difference between the two integrals .
8. Use of a method according to any one of claims 17 for onboard diagnosis of the presence of a catalyst reactor (12) in an exhaust aftertreatment system of a vehicle.
Description:
Tit le :

METHOD OF DIAGNOSING THE PRESENCE OF AN EXHAUST AFTER-TREATMENT COMPONENT AND A USE OF THE METHOD FOR VEHICLE ON-BOARD DIAGNOSIS .

TECHNICAL FIELD

The present invention relates to a method for diagnosing the presence of an internal combustion engine exhaust aftertreatment component on a vehicle .

BACKGROUND OF THE INVENTION

In recent years, statutory requirements pertaining to emissions from Diesel engines have been tightened up. For example, new legislation regarding on-board diagnosis requires that the presence of a so-called pre-catalyst is determined.

SUMMARY OF THE INVENTION

The object of the invention is to provide a method to determine whether an aftertreatment component in an aftertreatment system is present or not. This object is achieved in accordance with a method comprising the steps described in the characterizing part of claim 1.

BRIEF DESCRIPTION OF THE DRAWINGS

The invention will be described in greater detail below with reference to embodiments shown in the accompanying drawings .

In Figure 1, an internal combustion engine with an exhaust aftertreatment system for utilizing the invention is illustrated diagrammatically .

Figure 2 is a first graph illustrating temperature variations in the exhaust aftertreatment system shown in Figure 1.

Figure 3 is a second graph illustrating temperature variations in the exhaust aftertreatment system.

DETAILED DESCRIPTION OF THE INVENTION

Figure 1 shows a general configuration of an exhaust aftertreatment system for an internal combustion engine 10, including a first exhaust pipe segment 11 leading exhausts from the engine to a pre-catalyst 12. The pre- catalyst is connected to a selective catalyst reactor 13 via a second exhaust pipe segment 14. A third exhaust pipe segment 15 leads exhausts from the reactor 13 to the atmosphere.

A temperature sensor 16 is positioned at the second exhaust pipe segment 14 for measuring the temperature of the exhaust stream exiting the pre-catalyst 12. The temperature is measured continuously over a time period to provide a first temperature signal with fluctuating amplitude that is recorded by a data processor 17. A typical temperature/time graph is shown in figure 2. Due to the fact that the pre-catalyst 12 comprises a thermic mass, i.e. the reactor monolith, the exhaust temperature variations are filtered when the exhaust stream passes through the pre-catalyst.

An example of a typical un-filtered temperature graph is shown in figure 3, showing temperature variations with higher frequency than in figure 2. If the pre-catalyst 12 is not present in the exhaust aftertreatment system, the

temperature sensor 16 will provide a signal with a similar signature as the graph shown in figure 3.

The recorded temperature signal is modified by the data processor 17 to provide a second modified temperature signal. The first and second temperature signals are compared to detect any significant difference between the signals. The modified signal may be obtained by any type of analysis of the temperature signal that is based on signal frequency or signal derivative. For example, a low-pass filter in the data processor 17 may be used for removing signals with frequency over a certain level. By integrating the unfiltered and filtered temperature signals and calculating the difference between the two, it is possible to determine whether the catalyst reactor monolith is present. A large difference is the result when the monolith is missing and a small difference when the monolith is present.

If the pre-catalyst is not present in the aftertreatment system, the first signal will have a signature similar to the graph of figure 3. When the signal has been modified by means of the data processor 17, the resulting second signal will have a signature similar to the graph of figure 2. Thus, the comparison between the two signals positively indicates that no catalyst reactor monolith is present upstream the temperature sensor 16.

If the pre-catalyst is present, both first and second signals will have signatures similar to the graph of figure 2. Thus, the comparison between the two signals positively indicates that a thermic mass, e.g. a catalyst

reactor monolith is present in the aftertreatment system upstream the temperature sensor 16.

The invention is not to be regarded as being limited to the illustrative embodiments described above, but a number of variants and modifications are- possible within the scope of the following patent claims. For example, the method according to the invention can be applied to any- type of aftertreatment component, as long as it comprises a thermic mass. The aftertreatment component may for example be a particle filter. It is preferable that the aftertreatment component being diagnosed with the method according to the invention has a larger thermic mass than any other aftertreatment component positioned upstream. The comparison of the two temperature signals can be performed in many different ways, both analogical and digital .