METHOD FOR CHECKING THE PLAUSIBILITY OF A PRESSURE SENSOR
20200080909 ยท 2020-03-12
Assignee
Inventors
Cpc classification
B01D2279/30
PERFORMING OPERATIONS; TRANSPORTING
F01N2900/1406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2560/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N11/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F01N2900/1606
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G01L27/00
PHYSICS
B01D46/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for checking the plausibility of a pressure sensor that, during the measurement of a differential pressure, records measured values, whereby the measured values from the pressure sensor are compared to reference values for the differential pressure calculated on the basis of a model; whereby in order to determine the plausibility, at least one deviation of the measured values from the reference values and a difference between a first slope of the changing measured values and a second slope of the changing reference values over the curve of the measured values are taken into account.
Claims
1. A method for checking the plausibility of a pressure sensor that, during the measurement of a differential pressure, records measured values, comprising: comparing the measured values from the pressure sensor to reference values for the differential pressure calculated on the basis of a model; and determining the plausibility of the pressure sensor, taking into account at least one deviation of the measured values from the reference values and a difference between a first slope of changing measured values and a second slope of changing reference values over a curve of the measured values.
2. The method according to claim 1, whereby at least the at least one deviation or the difference between the first slope of changing measured values and the second slope of changing reference values is used as a numerical value.
3. The method according to claim 1, further comprising determining a correlation factor for the deviation and for the difference by means of a cross-correlation, whereby, if the value falls below a limit value for the correlation factor, an implausible measured value is assumed to be present.
4. The method according to claim 3, whereby the deviation in the cross-correlation makes up at least 70% of the weighting and the difference makes up at most 30% of the weighting.
5. The method according to claim 3, whereby the cross-correlation takes into account the deviations and differences determined within a preceding time interval.
6. The method according to claim 5, whereby measured values and reference values for the deviation and for the difference that lie further back in time are taken into account with an ever-decreasing weighting as a function of the time interval.
7. The method according to claim 1, whereby the measured values from the pressure sensor are only taken into account for other applications if the plausibility has been recognized.
8. The method according to claim 1, further comprising determining the differential pressure that is present in an exhaust gas treatment unit by the pressure sensor.
9. A motor vehicle, comprising: an internal combustion engine, an exhaust gas line for discharging the exhaust gas from the internal combustion engine, an exhaust gas treatment unit that is arranged in the exhaust gas line and that has a pressure sensor for determining a differential pressure that is present in the exhaust gas treatment unit, and a control unit that is configured for carrying out the method according to claim 1.
10. The motor vehicle according to claim 9, whereby the exhaust gas treatment unit is a particulate filter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] The invention as well as the technical realm are explained in greater detail below on the basis of the accompanying figures. It should be pointed out that the invention should not be construed as being limited by the cited embodiments. In particular, unless explicitly indicated otherwise, it is also possible to extract partial aspects of the facts explained in the figures and to combine them with other elements and insights from the present description. In particular, it should be pointed out that the figures and especially the size ratios given are only exemplary.
[0039] The following is shown:
[0040]
[0041]
[0042]
DETAILED DESCRIPTION OF THE INVENTION
[0043] The motor vehicle 16 has an internal combustion engine 17, an exhaust gas line 18 for discharging exhaust gas from the internal combustion engine 17, and an exhaust gas treatment unit 15 that is arranged in the exhaust gas line 18 and that has a pressure sensor 1 for determining a differential pressure 2 that is present in the exhaust gas treatment unit 15. In addition, a control unit 19 is provided, which is configured so as to be suitable for carrying out the described method. In the control unit 19, a model 4 is stored by means of which reference values 5 for the differential pressure 2 can be determined mathematically (and theoretically) as a function of the operating point that is present.
[0044]
[0045] The curves 6 show that, on the one hand, at certain points in time, the first slope 9 of the curve 6 of the measured values 3 exceeds the second slope 10 of the curve 10 of the reference values 5 (e.g. between the values 0 and approx. 120 of the time 20). Beyond the value 800 of the time 20, the curve 6 of the measured values 3 diverges increasingly from the curve 6 of the reference values 5.
[0046] In the middle diagram, the correlation factor 2 (between 1 and 1) is plotted on the vertical axis. The time 20 is plotted on the horizontal axis. Furthermore, the curve of the correlation factor 11 is plotted over the time 20.
[0047] The correlation factor 11 is determined as a function of the correlation of the deviation 7 and the difference 8. It can be seen that the correlation factor 11 is already significantly lower at the occurring difference 8 between the values of 0 and approx. 120 of the time 20 due to the fluctuation of the curve 6 of the measured values 3. However, a limit value of 12 of the correlation factor 11 at which the state 21 would indicate icing of the pressure sensor 2 is not reached.
[0048] Due to the pronounced deviation 7 between the measured values 3 and the reference values 5 beyond the value 800 of the time 20 and due to the difference 8 of the slopes 9, 10 in this range, the correlation factor 11 here falls below the limit value 12, so that a state 21 of icing (see the lowermost diagram) is detected.
[0049] From this point onward, the measured values 3 are recognized as being implausible and are no longer used for other applications.
[0050] In the lower diagram, the state 21 is plotted on the vertical axis (zero=no icing; 1=icing detected). The time 20 is plotted on the horizontal axis. Furthermore, the curve of the state 21 identified on the basis of the curve of the correlation factor 11 is plotted over the time 20.
[0051]
[0052] In the middle diagram, the correlation factor 2 (between 1 and 1) is plotted on the vertical axis. The time 20 is plotted on the horizontal axis. Furthermore, the curve of the correlation factor 11 is plotted over the time 20.
[0053] In the lowermost diagram, the state 21 is plotted on the vertical axis (zero=no icing; 1=icing detected). The time 20 is plotted on the horizontal axis. Furthermore, the curve of the state 21 identified by the curve of the correlation factor 11 is plotted over the time 20.
[0054] It can be seen here that the state 21 of icing is detected several times (between the values of zero and 500 and above the value of 950 of the time 20).
[0055] It should be noted that a different limit value of 12 has been determined here for the correlation factor 11.
LIST OF REFERENCE NUMERALS
[0056] 1 pressure sensor [0057] 2 differential pressure [0058] 3 measured value [0059] 4 model [0060] 5 reference value [0061] 6 curve [0062] 7 deviation [0063] 8 difference [0064] 9 first slope [0065] 10 second slope [0066] 11 correlation factor [0067] 12 limit value [0068] 13 time interval [0069] 14 distance [0070] 15 exhaust gas treatment unit [0071] 16 motor vehicle [0072] 17 internal combustion engine [0073] 18 exhaust gas line [0074] 19 control unit [0075] 20 time [0076] 21 state