METHOD AND DEVICE FOR CONTROLLING A FILL LEVEL OF A CATALYTIC CONVERTER FOR AN INTERNAL COMBUSTION ENGINE
20200347793 ยท 2020-11-05
Inventors
Cpc classification
F02D2200/701
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/1445
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0814
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/0295
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/1446
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0618
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A method and device including an interface, a memory, and a processor for the control of a fill level of a catalytic converter for an internal combustion engine of a motor vehicle. A setpoint variable is ascertained as a function of an expected operating variable for the fill level, and the expected operating variable is determined as a function of information from at least one further sensor, which acquires information about an operating state of the motor vehicle.
Claims
1-10. (canceled)
11. A method for controlling a fill level of a catalytic converter for an internal combustion engine of a motor vehicle, the method comprising: ascertaining a setpoint variable for the fill level as a function of an expected operating variable for the fill level, the expected operating variable being determined as a function of information from at least one sensor which acquires information about an operating state of the motor vehicle; and controlling the fill level as a function of the ascertained setpoint variable for the fill level.
12. The method as recited in claim 11, wherein a lambda control operates the internal combustion engine in a conversion window around a =1 value, and an expected oxygen fill level in the catalytic converter is determined as a function of the expected operating variable, and it is checked whether the conversion window would be left at the expected oxygen fill level, and at least one actuator of the internal combustion engine is actuated for influencing the oxygen fill level in the catalytic converter as a function of the setpoint variable.
13. The method as recited in claim 11, wherein the sensor acquires navigation data for the motor vehicle or vehicle environment information.
14. The method as recited in claim 11, wherein the setpoint variable is a setpoint oxygen fill level or a setpoint oxygen fill level profile.
15. The method as recited in claim 11, wherein the expected operating variable is determined as a function of: (i) a current operating condition of the internal combustion engine or the motor vehicle, and/or (ii) an expected operating condition of the internal combustion engine or the motor vehicle, and/or (iii) a past operating condition of the internal combustion engine or the motor vehicle, and/or (iv) a change of the expected operating variable.
16. The method as recited in claim 15, wherein a measure for a stability of the current operating condition, and/or the expected operating condition and/or the past operating condition is determined, and the expected operating variable and/or the setpoint variable is determined as a function of the measure.
17. The method as recited in claim 16, wherein the measure for the stability is determined as a function of multiple acquired values of an operating condition.
18. The method as recited in claim 11, wherein an expected operating state is determined from the information that was acquired by the sensor, and the setpoint variable is determined as a function of the expected operating state.
19. The method as recited in claim 11, wherein the operating variable for an operating mode of the internal combustion engine is determined as a function of at least one of the following items of information about navigation data: (i) distance radar data, (ii) camera data, (iii) a rotational speed of the internal combustion engine, (iv) loading of the internal combustion engine, (v) an exhaust mass flow in an exhaust system of the internal combustion engine, (vi) a temperature of an exhaust gas of the internal combustion engine, (vii) an injection period for fuel into the internal combustion engine, (viii) a trailing throttle deactivation, (ix) an operation of the internal combustion engine decoupled from a drive train of the motor vehicle, (x) an operating type of an electric motor for the motor vehicle, (xi) a cylinder or cylinder bank deactivation, (xii) an operating type of the internal combustion engine featuring single or multiple injection(s).
20. A device for controlling a fill level of a catalytic converter for an internal combustion engine for a motor vehicle, comprising: an interface; a memory; and a processor; wherein the device is configured to receive information from at least one sensor, and to control the internal combustion engine as a function of a setpoint variable for a fill level, and the memory includes instructions that when executed by the processor, cause the processor to: ascertain the setpoint variable for the fill level as a function of an expected operating variable for the fill level, the expected operating variable being determined as a function of information from the at least one sensor which acquires information about an operating state of the motor vehicle; and control the fill level as a function of the ascertained setpoint variable for the fill level.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS
[0020] In the description below, the device and the method are described using the example of a three-way catalytic converter of an internal combustion engine for a motor vehicle. The present invention may also be used in other catalytic converters or internal combustion engines.
[0021]
[0022] A device 112 for controlling a fill level, in particular an oxygen fill level, in catalytic converter 106 includes an interface 114, a memory 116, and a processor 118. Device 112 is developed to acquire the first signal and the second signal at interface 114. The first signal is transmitted via a first signal line 120 between first lambda probe 108 and interface 114. The second signal is transmitted via a second signal line 122 between second lambda probe 110 and interface 114. Device 112 is developed to control internal combustion engine 102 as a function of a setpoint variable for the fill level for catalytic converter 106. Memory 116 includes instructions which when executed by processor 118, cause an execution of the example method described below with the aid of
[0023] The method schematically illustrated in
[0024] To control the oxygen fill level of catalytic converter 106, the first signal from first lambda probe 108 and the second signal from second lambda probe 110 are first acquired following the start of the present method in a step 202.
[0025] A step 204 is subsequently carried out.
[0026] In step 204, the information about the operating state of the motor vehicle is acquired by at least one sensor 124. For example, sensor 124 acquires navigation data for the motor vehicle or vehicle environment information. Sensor 124 acquires obstacles, traffic signs and road conditions, for instance. Sensor 124, for example, may be a distance radar or a camera. On that basis, an imminent braking or acceleration operation, for instance, is able to be calculated in advance. As described in the following steps, the setpoint oxygen fill level of catalytic converter 106 is able to be set in such a way that the probability of leaving the conversion window in the next few seconds is minimized.
[0027] A step 206 is then carried out.
[0028] In step 206, an expected operating variable for the oxygen fill level of catalytic converter 106 is ascertained. The expected operating variable is acquired as a function of the information about the operating state of motor vehicle 100. For example, the expected operating variable is determined as a function of a current operating condition, an expected operating condition and/or a past operating condition of internal combustion engine 102 of motor vehicle 100 and/or as a function of its change.
[0029] In addition or alternatively, a measure for a stability of the current operating condition, of the expected operating condition and/or of the past operating condition is able to be determined. In this case, the expected operating variable may be determined as a function of a measure for a stability of the current operating condition. An evaluation of the stability, for instance, is carried out by comparing a plurality of values, acquired one after the other, for the information about the operating state of the motor vehicle acquired by the at least one further sensor 124. The measure for the stability may also be determined as a function of multiple acquired values of the operating condition.
[0030] In addition or as an alternative, an expected operating state is able to be determined based on the information acquired by sensor 124. For instance, additional, predictive vehicle information is acquired on the basis of navigation data and evaluated. This makes it possible to correctly calculate, with a high probability and in advance, a future operating state of motor vehicle 100 or internal combustion 102. As an operating state, an operating mode of internal combustion engine 102 for the next few seconds is able to be calculated in advance. Examples of an operating mode are a gear selection of a transmission in a drive train of motor vehicle 100 or a state of a start-stop function of the internal combustion engine.
[0031] Optionally, the operating variable for an operating mode of internal combustion engine 102 is determined as a function of information via navigation data, distance radar data, camera data, a rotational speed of internal combustion engine 102, loading of internal combustion engine 102, an exhaust mass flow in an exhaust system of internal combustion engine 102, a temperature of an exhaust gas of the internal combustion engine, an injection period for fuel into internal combustion engine 102, a trailing throttle deactivation, an operation of internal combustion engine 102 decoupled from a drive train of the motor vehicle, an operating mode of an electric motor for motor vehicle 100, a cylinder or cylinder bank deactivation, an operating mode of internal combustion engine 102 featuring single or multiple injections.
[0032] Next, a step 208 is carried out.
[0033] In step 208, the setpoint variable is determined as a function of the expected operating variable. Depending on the expected operating variable, an expected oxygen fill level in catalytic converter 106 is determined. For example, the model for the oxygen fill level is calculated for this purpose. In the process it is checked, for instance, whether the conversion window would be left in the next few seconds at the expected oxygen fill level. If this is the case, such as in the event of an expected oxygen excess in catalytic converter 106, a rich mixture is able to be specified for the operation of internal combustion engine 102 with an air deficiency. In an expected oxygen deficiency, it is possible to operate internal combustion engine 102 with a lean mixture for the operation of internal combustion engine 102 with excess air.
[0034] If the stability of the operating condition was determined in step 206, the setpoint variable is also able to be determined as a function of the stability. For instance, the setpoint variable is determined independently of the expected operating variable if the stability of the operating condition was detected.
[0035] If an expected operating state was determined based on the information acquired by further sensor 124 in step 206, then it may be provided to determine the setpoint variable as a function of the expected operating state.
[0036] Next, a step 210 is carried out.
[0037] In step 210, the oxygen fill level is controlled as a function of the setpoint variable for the oxygen fill level. For example, the setpoint variable is a setpoint oxygen fill level or a setpoint oxygen fill level profile. Depending on the setpoint variable, for instance, at least one actuator of internal combustion engine 102 for influencing the oxygen fill level in catalytic converter 106 is actuated for the control. The actuator influences the mixture for the combustion in internal combustion engine 102, for instance.
[0038] Next, step 202 is carried out.