Method for Operating an Internal Combustion Engine of a Motor Vehicle, and Motor Vehicle
20240271583 ยท 2024-08-15
Inventors
Cpc classification
F02D41/1445
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/0235
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2550/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1411
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1402
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/1446
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1626
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1621
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1404
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/0601
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A method is disclosed for operating an internal combustion engine of a motor vehicle in which exhaust gas from the internal combustion engine is fed to at least one catalytic converter in an emission control system of the motor vehicle. A power that the internal combustion engine can supply is adjusted via a control device of the motor vehicle as a function of an emission of at least one pollutant contained in the exhaust gas into an environment of the motor vehicle. A quantity of a volumetric percentage of the at least one catalytic converter causing the at least one pollutant to be converted is ascertained, and the power supplied by the internal combustion engine is adjusted as a function of said quantity of the volumetric percentage.
Claims
1.-10. (canceled)
11. A method for operating an internal combustion engine of a motor vehicle in which exhaust gas is fed to at least one catalytic converter arranged in an exhaust system of the motor vehicle, the method comprising: setting a power which can be supplied by the internal combustion engine as a function of an emission of at least one pollutant contained in the exhaust gas into the surroundings of the motor vehicle, and calculating a size of a partial volume, effecting the conversion of the at least one pollutant, of the at least one catalytic converter, wherein the power which can be supplied by the internal combustion engine is set as a function of the respective size of the partial volume.
12. The method according to claim 11, wherein a temperature of the exhaust gas flowing through the at least one catalytic converter is taken into account in order to calculate the respective size of the partial volume which effects the conversion of the at least one pollutant.
13. The method according to claim 11, wherein a current conversion capacity of the at least one catalytic converter for the at least one pollutant is calculated based on a space velocity, relative to the respective size of the partial volume, of the exhaust gas flowing through the at least one catalytic converter.
14. The method according to claim 13, wherein the current conversion capacity of the at least one catalytic converter is compared with a target conversion capacity for the at least one pollutant.
15. The method according to claim 14, wherein a lower power than the maximum power of the internal combustion engine is set as the power which can be supplied by the internal combustion engine when the current conversion capacity is less than the target conversion capacity.
16. The method according to claim 14, wherein a total quantity of the at least one pollutant emitted into the surroundings of the motor vehicle is taken into account for setting the power which can be supplied by the internal combustion engine.
17. The method according to claim 16, wherein the maximum power of the internal combustion engine is set as the power which can be supplied by the internal combustion engine despite the fact that the current conversion capacity of the at least one catalytic converter is less than the target conversion capacity when the total quantity of the at least one pollutant emitted into the surroundings when the motor vehicle is being driven is less than a threshold value of the total quantity.
18. The method according to claim 11, wherein engine-out emissions of the at least one pollutant, caused by the internal combustion engine, which occur in the case of at least one predetermined driving maneuver of the motor vehicle when the motor vehicle is being driven, are taken into account in order to calculate a target conversion capacity of the at least one catalytic converter.
19. The method according to claim 11, wherein in the case of an increase in the size of the partial volume which effects the conversion of the at least one pollutant, a higher power of the internal combustion engine is released as the power which can be supplied.
20. A motor vehicle comprising: an internal combustion engine with at least one catalytic converter arranged in an exhaust system of the motor vehicle to which exhaust gas of the internal combustion engine can be fed, a control device configured to set a power which can be supplied by the internal combustion engine as a function of an emission of at least one pollutant contained in the exhaust gas into the surroundings of the motor vehicle, wherein the control device is configured to calculate the size of a partial volume, effecting the conversion of the at least one pollutant, of the at least one catalytic converter and set the power which can be supplied by the internal combustion engine as a function of the size of the partial volume.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] The disclosure will now be explained in detail on the basis of preferred exemplary embodiments and with reference to the drawings.
[0038]
[0039]
[0040]
DETAILED DESCRIPTION OF THE DRAWINGS
[0041] A motor vehicle 1, which has an internal combustion engine 2, is illustrated in highly schematic form in
[0042] After a cold start of the internal combustion engine 2, high engine-out emissions are present and the catalytic converter 4 at the same time has a very low or no conversion capacity. In order to prevent the emission of unconverted pollutants into surroundings 5 of the motor vehicle 1 in such a case, the power of the internal combustion engine 2 may be limited. This can happen by a torque output or supplied by the internal combustion engine, and a speed of the internal combustion engine 2 being capped or limited for a predetermined period of time. Such a method is, however, rigid and not flexible.
[0043] In the present case, a conversion capacity of the catalytic converter 4 is therefore taken into account for a release of power from the internal combustion engine 2. An exhaust gas temperature model and a space velocity model can be used for this purpose. For example, it is possible to determine with the aid of the exhaust gas temperature model how much of the catalytic volume of the catalytic converter 4 has already been activated at a certain point in time (t). Conversion of at least one pollutant which is contained in the exhaust gas of the internal combustion engine 2 is effected via the already activated volume of the catalytic converter 4.
[0044] A situation in which at least a small partial volume 6 of the catalytic converter 4 has already been activated is illustrated, for example, in
[0045] Taking into account the space velocity model, a maximum allowed or maximum permissible power of the internal combustion engine 2 can be determined with respect to the catalytic volume or partial volume 6 activated in each case. This maximum permissible power of the internal combustion engine 2 must be output by the internal combustion engine 2 in order to convert the at least one pollutant released by the internal combustion engine 2 to a desired extent via the activated catalytic volume, i.e. via the partial volume 6. In this way it can in particular be achieved that a limitation of the torque of the internal combustion engine 2 and of the speed of the internal combustion engine 2 is reduced gradually, and to be precise, as a function of the catalytic volume already activated at the respective point in time (t), i.e., as a function of the respective size of the partial volume 6.
[0046] In particular by taking into account the exhaust gas temperature model and the space velocity model for this purpose, emissions of the internal combustion engine 2 can be converted reliably, and to be precise, in the case of different combinations of cold starts of the internal combustion engine 2 and/or start-ups of the internal combustion engine 2. Such start-ups of the internal combustion engine 2 can be provided if the motor vehicle 1 takes the form of a hybrid vehicle in a manner not shown in detail in this document, which has at least one electric drive motor for moving the motor vehicle 1 in addition to the internal combustion engine 2.
[0047] A space velocity model which can be used in the operation of the motor vehicle 1 will be illustrated by way of example on the basis of
[0048] In
[0049] Furthermore, a situation in which the total volume of the catalytic converter 4, for example, therefore the whole three liters of the catalytic converter 4, is activated is illustrated by way of example in
[0050] It can furthermore be seen in
[0051] The corresponding relationships are used in the present case by a control device 12 (illustrated generally in
[0052] An example of implementation of a method for operating the internal combustion engine 2 of the motor vehicle 1 will be explained on the basis of
[0053] A minimum conversion to be performed by the catalytic converter 4 is indicated, for example, in
[0054] Furthermore, a proportion of unconverted accumulated emissions can be calculated by taking into account the exhaust gas mass flow and on the basis of the exhaust gas temperature model. A request for the minimum conversion 15 can be derived from these variables. The exhaust gas temperature model which supplies the size of the already activated volume of the catalytic converter 4, i.e., the size of the partial volume 6, is illustrated in
[0055] When only the internal combustion engine 2 is provided for powering the motor vehicle 1, this load requirement can be calculated, for example, from a position of the accelerator pedal of the motor vehicle 1 which is actuated by the driver of the motor vehicle 1. When the motor vehicle 1 takes the form of a hybrid vehicle, the input variable 18 can be the result of a load requirement for assisting the electric drive motor and/or of a load requirement for charging an electrical energy store (not shown) of the motor vehicle 1.
[0056] The space velocity 19 relative to the size of the activated partial volume 6 is calculated according to
[0057] By taking into account the minimum conversion 15, in a further step 20 of the method illustrated schematically in
[0058] It can, however, be the case that the current conversion capacity of the catalytic converter 4, i.e., the actual conversion which can be achieved by means of the activated partial volume 6, is less than the minimum conversion 15 and hence the actual conversion is less than the target conversion capacity 14 (see
[0059] The method can furthermore reach a result 23 in which the power, released by the control device 12, of the internal combustion engine 2, i.e., the maximum allowed power of the internal combustion engine 2, is fixed as a function of the space velocity 19 and the size of the partial volume 6. This can be the case, for example, when the check in the step 22 has the result that there is no more emissions budget for driving with the motor vehicle 1.
[0060] The control device 12 can, in a variant of the method which is not shown explicitly in the present case, reach this result 23 when the check in the step 20 has the result that the current conversion capacity of the catalytic converter 4, i.e., the conversion of the catalytic converter 4 which can be achieved by means of the activated partial volume 6, is less than the desired minimum conversion 15. In this method, the step 22 can therefore be missing or be omitted.
[0061] The method will be illustrated below again on the basis of a numerical example. For example, the activated or active partial volume 6 can be one liter, wherein the total volume of the catalytic converter 4 is three liters. The minimum conversion 15, i.e., the requirement for the conversion of at least one pollutant in order to comply with a threshold value of this pollutant, can be 95%. The space velocity model determines, from this minimum conversion 15 of for example 95%, a maximum permissible space velocity which results in no overrun of the catalytic converter 4, and instead the catalytic converter 4 fulfills the requirements for the minimum conversion 15. For example, the maximum permissible space velocity determined in this way can be 100,000 h?1.
[0062] Because the space velocity 19 can be determined as a quotient of the exhaust gas mass flow or the exhaust gas volume flow relative to the activated catalytic volume of the catalytic converter 4, the permissible exhaust gas mass flow can also be calculated which has to be released by the internal combustion engine 2 during the operation thereof in order to achieve the minimum conversion 15 of 95%. Accordingly, the power which can be supplied by the internal combustion engine 2 can be calculated by the control device 12, i.e., the power of the internal combustion engine 2 which is permissible taking into account the emissions output into the surroundings 5 of the motor vehicle 1.
[0063] The higher the activated catalytic volume of the catalytic converter 4, i.e., the more the size of the partial volume 6 increases, the more the power released by the internal combustion engine, i.e., the power which can be supplied by the internal combustion engine 2 of the motor vehicle 1, can also be gradually increased, and to be precise, while complying with the emissions threshold value for the at least one pollutant.
[0064] As a whole, the examples show how an improved emissions-based power control of the internal combustion engine can be implemented.
LIST OF REFERENCE SIGNS
[0065] 1 motor vehicle [0066] 2 internal combustion engine [0067] 3 exhaust system [0068] 4 catalytic converter [0069] 5 surroundings [0070] 6 partial volume [0071] 7 vertical axis [0072] 8 horizontal axis [0073] 9 curve [0074] 10 label [0075] 11 label [0076] 12 control device [0077] 13 conversion model [0078] 14 target conversion capacity [0079] 15 minimum conversion [0080] 16 engine characteristic map [0081] 17 functional block [0082] 18 input variable [0083] 19 space velocity [0084] 20 step [0085] 21 release of power [0086] 22 step [0087] 23 result