METHOD OF DETERMINING AN OPERATIONAL STATUS OF AN EGR VALVE
20220195968 · 2022-06-23
Assignee
Inventors
- Karsten ROHRSSEN (Gråbo, SE)
- Neelam BHAMRA (Göteborg, SE)
- Amanda LARSSON (Borås, SE)
- Katarina Raaholt LARSSON (Mölndal, SE)
- Rucha WAGH (Göteborg, SE)
Cpc classification
F02D41/0077
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0414
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/0055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M26/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method of determining an operational status of an exhaust gas recirculation valve of an internal combustion engine arrangement, the EGR valve being configured to control a flow of combusted exhaust gas from an exhaust manifold to an inlet manifold of the ICE arrangement. The method comprising controlling the EGR valve to transition from a closed position; obtaining a signal indicative of a variation of temperature level of the gas present in the inlet manifold at a duration between a first point in time and a second point in time when the EGR valve assumes the open position; determining, based on the signal indicative of the variation of the temperature level, a velocity value indicative of a maximum increase in change of temperature level during the time period between the first point in time and the second point in time; comparing the velocity value with a predetermined threshold; and determining that the EGR valve is operational when the velocity value is higher than the predetermined threshold.
Claims
1. A method of determining an operational status of an exhaust gas recirculation valve of an internal combustion engine arrangement, the EGR valve being configured to control a flow of combusted exhaust gas from an exhaust manifold to an inlet manifold of the ICE arrangement, the method comprising: controlling the EGR valve to transition from a closed position, in which combusted exhaust gas is prevented from reaching the inlet manifold, to an open position, in which combusted exhaust gas is allowed to flow from the exhaust manifold to the inlet manifold; obtaining a signal indicative of a variation of temperature level of the gas present in the inlet manifold at a duration between a first point in time and a second point in time when the EGR valve assumes the open position; determining, based on the signal indicative of the variation of the temperature level, a velocity value indicative of a maximum increase in change of temperature level during the time period between the first point in time and the second point in time; comparing the velocity value with a predetermined threshold; and determining that the EGR valve is operational when the velocity value is higher than the predetermined threshold.
2. The method according to claim 1, wherein the EGR valve is determined to be malfunctioning when the velocity value is below the predetermined threshold.
3. The method according to claim 1, further comprising: determining an openness degree of the EGR valve; and determining the velocity value of the increase in change of temperature from the first point in time initiated when the openness degree exceeds a predetermined openness limit.
4. The method according to claim 3, wherein the second point in time occurs when the openness degree of the valve subsequently falls below the predetermined openness limit.
5. The method according to claim 1, wherein the ICE arrangement comprises a temperature sensor arranged to measure the temperature level of the gas present in the inlet manifold.
6. The method according to claim 1, further comprising: determining, based on the signal indicative of the variation of the temperature level, an acceleration value indicative of an acceleration of a gas temperature change between the first and second points in time; and setting the velocity value indicative of the maximum increase in change of temperature as a velocity value obtained when the acceleration value is reduced to a predetermined acceleration limit.
7. The method according to claim 6, wherein the predetermined acceleration limit is within a range between −0.5° C./s.sup.2 and 0.5° C./s.sup.2.
8. The method according to claim 6, wherein the predetermined acceleration limit is 0° C./s.sup.2.
9. A control unit configured to determine an operational status of an exhaust gas recirculation valve of an internal combustion engine arrangement, the control unit being connected to the EGR valve for controlling operation of the EGR valve, and to a temperature sensor configured to measure temperature of gas present in an inlet manifold of the ICE arrangement, wherein the control unit comprises control circuitry configured to: control the EGR valve to transition from a closed position, in which combusted exhaust gas is prevented from reaching the inlet manifold, to an open position, in which combusted exhaust gas is allowed to flow from an exhaust manifold of the ICE arrangement to the inlet manifold; obtain a signal from the temperature sensor, the signal being indicative of a variation of temperature level of the gas present in the inlet manifold at a duration between a first point in time and a second point in time when the EGR valve assumes the open position; determine, based on the signal indicative of the variation of the temperature level, a velocity value indicative of a maximum increase in change of temperature during the time period between the first point in time and the second point in time; compare the velocity value with a predetermined threshold; and determine that the EGR valve is operational when the velocity value is higher than the predetermined threshold.
10. An internal combustion engine arrangement comprising an inlet manifold, an exhaust manifold, an exhaust gas recirculation valve configured to control a flow of combusted exhaust gas from the exhaust manifold to the inlet manifold, a temperature sensor configured to measure temperature of gas present in an inlet manifold, and a control unit according to claim 9, wherein the control unit is connected to the EGR valve for controlling operation of the EGR valve, and to the temperature sensor for receiving temperature signals from the temperature sensor.
11. A vehicle comprising an internal combustion engine according to claim 10.
12. A computer readable medium carrying a computer program comprising program code means for performing the steps of claim 1 when the program means is run on a computer.
13. A computer program comprising program code means for performing the steps of claim 1 when the program is run on a computer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The above, as well as additional objects, features and advantages, will be better understood through the following illustrative and non-limiting detailed description of exemplary embodiments, wherein:
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028] The present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which exemplary embodiments are shown. The disclosure may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided for thoroughness and completeness. Like reference character refer to like elements throughout the description.
[0029] With reference to
[0030] In order to control the supply of combusted exhaust gas from the exhaust manifold 108 to the inlet manifold 106, the ICE arrangement 100 comprises an EGR valve 112. The EGR valve is connected to a control unit 114. Hereby, the control unit 114 controls opening and closing of the EGR valve 112, and thus controls when the flow of combusted exhaust gas should be conveyed from the exhaust manifold 108 to the inlet manifold 106.
[0031] The control unit 114 comprises control circuitry which may each include a microprocessor, microcontroller, programmable digital signal processor or another programmable device. The control circuitry may also, or instead, each include an application specific integrated circuit, a programmable gate array or programmable array logic, a programmable logic device, or a digital signal processor. Where the control circuitry includes a programmable device such as the microprocessor, microcontroller or programmable digital signal processor mentioned above, the processor may further include computer executable code that controls operation of the programmable device. It should be understood that all or some parts of the functionality provided by means of the control circuitry may be at least partly integrated with the control unit for executing the below described method.
[0032] Moreover, the ICE arrangement 100 comprises a temperature sensor 116 configured to measure the temperature of the gas, i.e. air and/or mixture of air and combusted exhaust gas, present in the inlet manifold 106. The temperature sensor 116 is connected to the control unit 116 for transmitting a signal indicative of the temperature at the inlet manifold 106 to the control unit.
[0033] Since the EGR valve 112 is exposed to a relatively harsh environment, there is a risk that the EGR valve may not always function properly and thus not sufficiently convey combusted exhaust gas to from the exhaust manifold 108 to the inlet manifold 106 as desired. Reference is therefore made to
[0034]
[0035] The present disclosure is thus configured to operate within the time period between a first point in time t1, which is a point in time when the openness degree 302 of the EGR valve 112 exceeds the upper openness threshold limit 306, to a second point in time t2, which is a point in time when the openness degree 302 of the EGR valve 112 falls below the upper openness threshold limit 306.
[0036] During the time period between the first point in time t1 and the second point in time t2, the control unit 114 receives signals from the temperature sensor 116, which signals are indicative of the temperature level at the inlet manifold. This temperature level, and in particular the variation in temperature is depicted by the dotted line 402 in
[0037] In particular, the control unit is configured to determine a velocity value which is indicative of a maximum 406 increase in change of temperature lever, the maximum derivative value of the temperature between the first t1 and second t2 points in time. As can be seen in
[0038] It has been unexpectedly realized that the derivative of the temperature in the exhaust manifold 106 is proportional to the flow of combusted exhaust gas from the exhaust manifold 108. Therefore, the maximum value 406 is compared with a predetermined threshold 408. If the maximum value 406 is higher than the predetermined threshold 408, the EGR valve 112 is considered to be operational, i.e. the EGR valve 112 passes through a sufficient flow of combusted exhaust gas. On the other hand, if the maximum value 406 is lower than the predetermined threshold 408, the EGR valve 112 is considered to be malfunctioning, i.e. the EGR valve 112 does not pass through a sufficient flow of combusted exhaust gas, and needs maintenance or replacement.
[0039] According to an example, the point in time t.sub.m can be determined by determining an acceleration value of the temperature during the time period between the first point in time t1 and the second point in time t2. In detail, the acceleration value presents an indication of how the temperature level accelerates at the inlet manifold. The velocity value can hereby be identified as the point in time t.sub.m when the acceleration value is reduced to a predetermined acceleration limit. The predetermined acceleration limit is preferably within the range −0.5° C./s.sup.2 and 0.5° C./s.sup.2, more preferably the predetermined acceleration limit is 0° C./s.sup.2. By determining the point in time when the predetermined acceleration limit is close to 0° C./s.sup.2, a maxima of the temperature derivative can be found.
[0040] In order to sum up, reference is made to
[0041] The control unit 114 further, based on the signal indicative of the variation of the temperature level received from the temperature sensor 106, determines S3 a velocity value which is indicative of a maximum increase 406 in change of the temperature level during the time period between the first point in time and the second point in time. Hence, the control unit determines the derivative of the temperature variation between the first t1 and second t2 points in time. The velocity value is compared S4 with a predetermined threshold 408. Since the predetermined threshold indicates whether the EGR valve 112 is able to let a sufficient flow of combusted exhaust gas pass through, the control unit 114 can determine S5 that the EGR valve 112 is operational when the velocity value is higher than the predetermined threshold 408.
[0042] It is to be understood that the present disclosure is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.