WO2003104643A1 - Method of estimating residual exhaust gas concentration in a variable cam phase engine - Google Patents
Method of estimating residual exhaust gas concentration in a variable cam phase engine Download PDFInfo
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- WO2003104643A1 WO2003104643A1 PCT/US2003/015059 US0315059W WO03104643A1 WO 2003104643 A1 WO2003104643 A1 WO 2003104643A1 US 0315059 W US0315059 W US 0315059W WO 03104643 A1 WO03104643 A1 WO 03104643A1
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- engine
- exhaust gas
- volumetric efficiency
- concentration
- simulated
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Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D41/00—Electrical control of supply of combustible mixture or its constituents
- F02D41/0025—Controlling engines characterised by use of non-liquid fuels, pluralities of fuels, or non-fuel substances added to the combustible mixtures
- F02D41/0047—Controlling exhaust gas recirculation [EGR]
- F02D41/006—Controlling exhaust gas recirculation [EGR] using internal EGR
- F02D41/0062—Estimating, calculating or determining the internal EGR rate, amount or flow
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D41/00—Electrical control of supply of combustible mixture or its constituents
- F02D41/0002—Controlling intake air
- F02D2041/001—Controlling intake air for engines with variable valve actuation
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D41/00—Electrical control of supply of combustible mixture or its constituents
- F02D41/02—Circuit arrangements for generating control signals
- F02D41/14—Introducing closed-loop corrections
- F02D41/1401—Introducing closed-loop corrections characterised by the control or regulation method
- F02D2041/1433—Introducing closed-loop corrections characterised by the control or regulation method using a model or simulation of the system
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D41/00—Electrical control of supply of combustible mixture or its constituents
- F02D41/02—Circuit arrangements for generating control signals
- F02D41/14—Introducing closed-loop corrections
- F02D41/1401—Introducing closed-loop corrections characterised by the control or regulation method
- F02D2041/1433—Introducing closed-loop corrections characterised by the control or regulation method using a model or simulation of the system
- F02D2041/1437—Simulation
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D2200/00—Input parameters for engine control
- F02D2200/02—Input parameters for engine control the parameters being related to the engine
- F02D2200/04—Engine intake system parameters
- F02D2200/0411—Volumetric efficiency
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02T—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
- Y02T10/00—Road transport of goods or passengers
- Y02T10/10—Internal combustion engine [ICE] based vehicles
- Y02T10/40—Engine management systems
Definitions
- This invention relates to the control of an internal combustion engine having variable cam phasing, and more particularly to a method of estimating the concentration of residual exhaust gas in an engine cylinder for engine control purposes.
- Accurate control of engine fuel injection and spark timing requires knowledge of the concentration of exhaust gas in the engine cylinders during the combustion stroke.
- Such exhaust gases may be present either due to external recirculation in which an EGR valve establishes a variably restricted passage between the engine intake and exhaust manifolds, and/or internal (i.e., residual) recirculation in which the timing of the intake and exhaust valve openings permits a portion of the exhaust gases to remain in the engine cylinders.
- the concentration of exhaust gas due to external recirculation can be estimated fairly reliably based on the EGR valve position and the gas pressures in the intake and exhaust manifolds.
- the calibration effort could be greatly simplified by directly estimating the concentration of residual exhaust gas (using test data obtained from engine dynamometer testing or software simulation, for example), but such data is difficult to measure and subject to open-loop simulation error. Accordingly, what is needed is a reliable and easily calibrated technique for directly estimating the concentration of residual exhaust gas based on engine dynamometer data and engine simulation data
- the present invention is directed to an improved method of estimating the concentration of residual exhaust gas in an internal combustion engine having variable cam phase control based on engine dynamometer and software simulation data.
- the invention recognizes that both the volumetric efficiency and the residual exhaust gas concentration of an engine vary monotonically in response to changes in cam phase, and that the simulated residual concentration data will be reliable if the simulated volumetric efficiency data matches volumetric efficiency data determined by engine dynamometer testing.
- volumetric efficiency test data is compared to simulated volumetric efficiency data, and the simulation software is tuned until the simulated data matches the test data.
- the simulated residual concentration data is deemed to be reliable, and is used to calibrate a model relating residual concentration to cam phase angle, and such model is then used by an engine controller to estimate residual exhaust gas concentration during operation of the engine.
- Figure 1 is a schematic diagram of an internal combustion engine having intake and- exhaust cam phase adjustment mechanisms and a microprocessor- based engine control unit programmed according to this invention.
- FIG. 2 is a block diagram illustrating the method of this invention. DESCRIPTION OF THE PREFERRED EMBODIMENT
- the reference numeral 10 generally designates a four-stroke internal combustion engine controlled by a microprocessor-based engine control module (ECM) 12.
- ECM engine control module
- Inlet air at atmospheric pressure passes through fresh air inlet 14, air cleaner 16 and intake duct 18 into throttle body 20.
- a throttle plate 22 rotatably disposed in the throttle body 20 is manually or electronically positioned to vary restriction to the inlet air.
- the position of throttle plate 22 is detected by the sensor 24, which provides a throttle position signal (TP) to ECM 12 on line 26.
- TP throttle position signal
- a portion of inlet air is routed past throttle plate 22 through conduits 28 and 30 and a conventional idle air bypass valve 32.
- the bypass valve 32 is positioned by a stepper motor 34, and the ECM 12 supplies an idle air control (IAC) signal on line 35 to stepper motor 34 during engine idle for purposes of maintaining a desired engine idle speed.
- Airflow out of throttle body 20 is coupled through intake duct 44 into the intake manifold plenum volume 46 (referred to hereinafter simply as the intake manifold).
- Conventional pressure and temperature transducers 48 and 49 are exposed to gas pressure in the intake manifold 46 and provide manifold absolute pressure and temperature signals (IMAP, IMAT) to ECM 12 via lines 50 and 51, respectively.
- Individual cylinder intake runners 52 couple intake manifold 46 to the combustion chambers 54 of respective engine cylinders 56, only one cylinder 56 being shown in Figure 1.
- Each combustion chamber 54 is separated from the engine crankcase 58 by a respective piston 60 which engages the inside wall of the respective cylinder.
- a quantity of fuel is injected via conventional fuel injector 62 in response to a fuel injection command signal
- the fuel mixes with the inlet air and is drawn into the combustion chamber 54 during an intake event when a cam-operated intake valve 66 opens an intake port 67.
- the air-fuel mixture is ignited in the combustion chamber 54 during a combustion event initiated by a timed spark across the spaced electrodes of spark plug 68, which is controlled by ECM 12 via a spark control signal (SPK) line 70.
- SPK spark control signal
- Gasses produced during the combustion event are released into exhaust runner 72 and exhaust manifold 74 during an exhaust event when a cam-operated exhaust valve 76 opens an exhaust port 78.
- the exhaust gasses pass through the exhaust manifold 74 to an exhaust duct 82 leading to catalytic converter 84 and tailpipe 86.
- a portion of the exhaust gasses are drawn from exhaust manifold 74 through conduits 88, 90 and exhaust gas recirculation (EGR) valve 92 into the intake manifold 46 for mixing with inlet air for delivery to the cylinder combustion chambers 54.
- the ECM 12 issues an EGR control signal (EGR) on line 94 for positioning the EGR valve 92 with solenoid or stepper motor 96 to vary the dilution of the fresh inlet air with exhaust gasses for improved emission control and fuel economy.
- EGR EGR control signal
- the engine 10 is additionally equipped with intake and exhaust cam phase adjustment mechanisms 98 and 100 coupled to intake and exhaust camshafts 102, 104 for varying the phase or timing of the intake and exhaust valves 66, 16 relative to the base camshaft timing.
- intake and exhaust valve phase variation may be effectively achieved with direct electro-hydraulic valve actuation in so-called cam-less engines.
- the ECM ' 12 issues intake and exhaust cam phase control signals ICAM, EC AM to cam phase mechanisms 98 and 100 via lines 106 and 108, respectively, to alter the breathing characteristics of engine 10 for achieving exhaust gas emission reduction and engine performance improvement.
- the intake and exhaust cam phases are identically controlled to effect a so-called dual-equal control.
- one of intake and exhaust cam phases is maintained fixed while the other is adjusted to effect so-called intake-only or exhaust-only control, or the intake and exhaust cam phases can be independently controlled to effect a so- called dual-independent control.
- the present invention recognizes that both the volumetric efficiency and the residual exhaust gas concentration of an engine vary monotonically in response to changes in cam phase, and that simulated residual concentration data will be reliable if the simulated volumetric efficiency data matches volumetric efficiency data that is independently and reliably determined.
- the volumetric efficiency defined as the ratio of the ⁇ air volume ingested into the combustion chambers 54 to the swept volume of the pistons 60, varies inversely with respect to the residual exhaust gas concentration as the engine cam phase is adjusted.
- volumetric efficiency ⁇ v can be reliably determined during engine dynamometer testing by applying measured values (intake airflow m a , m ter, engine speed RPM, atmospheric pressure P a , and intake manifold air temperature and pressure T m , P nt ) and known values (swept volume V favorucountryde ) to the standard speed-density equation:
- the volumetric efficiency ⁇ v can be reliably estimated as described, for example, in the U.S. Patent No. 5,714,683, issued on February 3, 1998, and incorporated herein by reference, If the simulated volumetric efficiency data does not match the measured or estimated volumetric efficiency data, the engine simulation software parameters can be tuned until the simulated data matches the test data across the range of expected cam phase adjustment. Once the simulated volumetric efficiency data matches the corresponding test data, the simulated residual concentration data is deemed to be reliable due to the relationship between volumetric efficiency and residual concentration, and the simulated residual concentration is used to calibrate a model (such as a second or third order mathematical model) relating residual concentration to cam phase angle. The model, in turn, is stored in ECM 12, and used during operation of the engine 10 to maintain a running estimate of the residual exhaust gas concentration for use by the fuel and spark timing control algorithms.
- the block diagram of Figure 2 illustrates the above-described process.
- the first phase of the process occurs during engine control algorithm calibration in a laboratory test setting.
- engine characteristics and parameters are customarily determined either by data measurement from an operational engine (or vehicle) coupled to a dynamometer, or by executing an engine simulation software package such as Gamma Technologies' GT Power suite, or the like on a lab computer.
- the measured or simulated data is then used to calibrate the engine control functions so as to optimize the engine performance and/or fuel economy, without exceeding specified exhaust emission levels.
- the engine simulation software is configured to simulate both the volumetric efficiency and the residual exhaust gas concentration, and measured engine data is used to independently determine the volumetric efficiency as described above.
- Figure 2 depicts an engine simulator 120 programmed to simulate the operation of engine 10 based on externally supplied engine geometry parameters 122, and in particular, to output the simulated volumetric efficiency VE S i m and the simulated residual exhaust gas concentration RC s . m on lines 124 and 126, respectively.
- the measured engine data depicted by block 128, is used to develop the measured volumetric efficiency NE meas on line 130, and a comparator 132 compares the VE s ; m to VEmeas for various values of cam phase angle. If VE s .
- the decision block 134 is answered in the negative, and the block 136 adjusts or tunes certain parameters of engine simulator 120 (such as an exhaust backpressure parameter) so that VE s ; m will more nearly agree with VE m8as .
- the Curve Fitting block 138 is answered in the affirmative, enabling the Curve Fitting block 138 to utilize RC s ; m to select coefficients of a suitable mathematical model of residual concentration as a function of cam phase.
- the modeled residual concentration RC mt -d is represented by a quadratic equation of the form:
- RC 0 is the residual concentration that occurs with a base setting of the cam phase
- x is the cam phase angle
- the coefficients ai and a 2 are selected so that RC m0 d best represents the RC s ⁇ m output of simulator 120 for the various values of cam phase angle x.
- the block 138 may employ a least-squares curve fitting techniques, although it will be recognized that other techniques may be used as well.
- the model created by block 138 is transferred to the ECM 12, which uses the model to maintain a running estimate of the residual exhaust gas concentration during operation of engine 10 for use by the fuel and spark timing control algorithms.
- the present invention provides a very practical methodology for estimating the residual exhaust gas concentration of an internal combustion engine having variable cam phase. While described in reference to the illustrated embodiment, it is expected that various modifications in addition to those mentioned above will occur to those skilled in the art. For example, look-up tables may be used in place of a mathematical algorithm to model the residual concentration, and so on. Thus, it will be understood that methods incorporating these and other modifications may fall within the scope of this invention, which is defined by the appended claims.
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- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Testing Of Engines (AREA)
- Combined Controls Of Internal Combustion Engines (AREA)
- Output Control And Ontrol Of Special Type Engine (AREA)
- Valve Device For Special Equipments (AREA)
Abstract
A method of estimating the concentration of residual exhaust gas in an internal combustion
engine having variable cam phase control is based on engine dynamometer and engine
simulator data. Since both the volumetric efficiency and the residual exhaust
gas concentration of an engine vary monotonically in response to changes in cam
phase, the simulated residual concentration data is deemed to be reliable if
the simulated volumetric efficiency data matches volumetric efficiency data
determined by engine dynamometer testing. Volumetric efficiency test data
is compared to simulated volumetric efficiency data, and the simulation software
is tuned until the simulated data matches the test data. At such point, the simulated
residual concentration data is deemed to be reliable, and is used to calibrate
a model relating residual concentration to cam phase angle, and such model is
then used by an engine controller (ECM) to estimate residual gas concentration
during operation of the engine (10).
Description
METHOD OF ESTIMATING RESIDUAL EXHAUST GAS CONCENTRATION IN A VARIABLE CAM PHASE ENGINE
TECHNICAL FIELD
This invention relates to the control of an internal combustion engine having variable cam phasing, and more particularly to a method of estimating the concentration of residual exhaust gas in an engine cylinder for engine control purposes.
BACKGROUND OF THE INVENTION
Accurate control of engine fuel injection and spark timing requires knowledge of the concentration of exhaust gas in the engine cylinders during the combustion stroke. Such exhaust gases may be present either due to external recirculation in which an EGR valve establishes a variably restricted passage between the engine intake and exhaust manifolds, and/or internal (i.e., residual) recirculation in which the timing of the intake and exhaust valve openings permits a portion of the exhaust gases to remain in the engine cylinders. The concentration of exhaust gas due to external recirculation can be estimated fairly reliably based on the EGR valve position and the gas pressures in the intake and exhaust manifolds. On the other hand, the concentration of residual exhaust gas due to internal recirculation is difficult to reliably estimate, particularly when the engine is equipped with a mechanism for adjusting the phase of the intake and/or exhaust valve timing since such adjustment alters the breathing characteristics of the engine. For this reason, engine control functions that are sensitive to the cylinder exhaust gas concentration typically include various gains and/or offsets that are calibrated to compensate for the effects of residual exhaust gas. However, this approach is not particularly desirable since separate calibration values are required for each such control function, and a fairly intensive effort is
required to tune the several calibration values for a given engine. Theoretically, the calibration effort could be greatly simplified by directly estimating the concentration of residual exhaust gas (using test data obtained from engine dynamometer testing or software simulation, for example), but such data is difficult to measure and subject to open-loop simulation error. Accordingly, what is needed is a reliable and easily calibrated technique for directly estimating the concentration of residual exhaust gas based on engine dynamometer data and engine simulation data
SUMMARY OF THE INVENTION
The present invention is directed to an improved method of estimating the concentration of residual exhaust gas in an internal combustion engine having variable cam phase control based on engine dynamometer and software simulation data. Essentially, the invention recognizes that both the volumetric efficiency and the residual exhaust gas concentration of an engine vary monotonically in response to changes in cam phase, and that the simulated residual concentration data will be reliable if the simulated volumetric efficiency data matches volumetric efficiency data determined by engine dynamometer testing. Thus, volumetric efficiency test data is compared to simulated volumetric efficiency data, and the simulation software is tuned until the simulated data matches the test data. At such point, the simulated residual concentration data is deemed to be reliable, and is used to calibrate a model relating residual concentration to cam phase angle, and such model is then used by an engine controller to estimate residual exhaust gas concentration during operation of the engine.
BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 is a schematic diagram of an internal combustion engine having intake and- exhaust cam phase adjustment mechanisms and a microprocessor- based engine control unit programmed according to this invention.
Figure 2 is a block diagram illustrating the method of this invention.
DESCRIPTION OF THE PREFERRED EMBODIMENT
Referring to the drawings, and particularly to Figure 1, the reference numeral 10 generally designates a four-stroke internal combustion engine controlled by a microprocessor-based engine control module (ECM) 12. Inlet air at atmospheric pressure passes through fresh air inlet 14, air cleaner 16 and intake duct 18 into throttle body 20. A throttle plate 22 rotatably disposed in the throttle body 20 is manually or electronically positioned to vary restriction to the inlet air. The position of throttle plate 22 is detected by the sensor 24, which provides a throttle position signal (TP) to ECM 12 on line 26. A portion of inlet air is routed past throttle plate 22 through conduits 28 and 30 and a conventional idle air bypass valve 32. The bypass valve 32 is positioned by a stepper motor 34, and the ECM 12 supplies an idle air control (IAC) signal on line 35 to stepper motor 34 during engine idle for purposes of maintaining a desired engine idle speed. Airflow out of throttle body 20 is coupled through intake duct 44 into the intake manifold plenum volume 46 (referred to hereinafter simply as the intake manifold). Conventional pressure and temperature transducers 48 and 49 are exposed to gas pressure in the intake manifold 46 and provide manifold absolute pressure and temperature signals (IMAP, IMAT) to ECM 12 via lines 50 and 51, respectively. Individual cylinder intake runners 52 couple intake manifold 46 to the combustion chambers 54 of respective engine cylinders 56, only one cylinder 56 being shown in Figure 1. Each combustion chamber 54 is separated from the engine crankcase 58 by a respective piston 60 which engages the inside wall of the respective cylinder. A quantity of fuel is injected via conventional fuel injector 62 in response to a fuel injection command signal
(FUEL) from ECM 12 on line 64. In the illustrated embodiment, the fuel mixes with the inlet air and is drawn into the combustion chamber 54 during an intake event when a cam-operated intake valve 66 opens an intake port 67. The air-fuel mixture is ignited in the combustion chamber 54 during a combustion event initiated by a timed spark across the spaced electrodes of spark plug 68, which is controlled by ECM 12 via a spark control signal (SPK) line 70. Gasses
produced during the combustion event are released into exhaust runner 72 and exhaust manifold 74 during an exhaust event when a cam-operated exhaust valve 76 opens an exhaust port 78. The exhaust gasses pass through the exhaust manifold 74 to an exhaust duct 82 leading to catalytic converter 84 and tailpipe 86. A portion of the exhaust gasses are drawn from exhaust manifold 74 through conduits 88, 90 and exhaust gas recirculation (EGR) valve 92 into the intake manifold 46 for mixing with inlet air for delivery to the cylinder combustion chambers 54. The ECM 12 issues an EGR control signal (EGR) on line 94 for positioning the EGR valve 92 with solenoid or stepper motor 96 to vary the dilution of the fresh inlet air with exhaust gasses for improved emission control and fuel economy.
The engine 10 is additionally equipped with intake and exhaust cam phase adjustment mechanisms 98 and 100 coupled to intake and exhaust camshafts 102, 104 for varying the phase or timing of the intake and exhaust valves 66, 16 relative to the base camshaft timing. Alternatively of course, intake and exhaust valve phase variation may be effectively achieved with direct electro-hydraulic valve actuation in so-called cam-less engines. The ECM' 12 issues intake and exhaust cam phase control signals ICAM, EC AM to cam phase mechanisms 98 and 100 via lines 106 and 108, respectively, to alter the breathing characteristics of engine 10 for achieving exhaust gas emission reduction and engine performance improvement.
In the illustrated embodiment, the intake and exhaust cam phases are identically controlled to effect a so-called dual-equal control. In other implementations, one of intake and exhaust cam phases is maintained fixed while the other is adjusted to effect so-called intake-only or exhaust-only control, or the intake and exhaust cam phases can be independently controlled to effect a so- called dual-independent control.
As indicated above, accurate fuel and spark control of the engine 10 requires accurate estimation of the concentration of exhaust gas in the engine combustion chambers 54 during the combustion stroke. While the concentration of exhaust gas due to activation of the EGR valve 92 can be reliably estimated
based on the activation duty cycle or the like and the pressure ratio across the valve 92, it has heretofore been difficult to reliably estimate the concentration of residual exhaust gas due to overlap of the intake and exhaust valves 66, 76. Since direct measurement of the residual concentration is typically not available for validating engine simulator data, engine software calibrators typically set up calibration values to compensate various engine control functions for the effects residual exhaust gas. However, the present invention recognizes that both the volumetric efficiency and the residual exhaust gas concentration of an engine vary monotonically in response to changes in cam phase, and that simulated residual concentration data will be reliable if the simulated volumetric efficiency data matches volumetric efficiency data that is independently and reliably determined. In particular, the volumetric efficiency, defined as the ratio of the ■air volume ingested into the combustion chambers 54 to the swept volume of the pistons 60, varies inversely with respect to the residual exhaust gas concentration as the engine cam phase is adjusted. Fortunately, the volumetric efficiency ηv can be reliably determined during engine dynamometer testing by applying measured values (intake airflow ma,mter, engine speed RPM, atmospheric pressure Pa, and intake manifold air temperature and pressure Tm, Pnt) and known values (swept volume V„u„de ) to the standard speed-density equation:
Alternatively, the volumetric efficiency ηv can be reliably estimated as described, for example, in the U.S. Patent No. 5,714,683, issued on February 3, 1998, and incorporated herein by reference, If the simulated volumetric efficiency data does not match the measured or estimated volumetric efficiency data, the engine simulation software parameters can be tuned until the simulated
data matches the test data across the range of expected cam phase adjustment. Once the simulated volumetric efficiency data matches the corresponding test data, the simulated residual concentration data is deemed to be reliable due to the relationship between volumetric efficiency and residual concentration, and the simulated residual concentration is used to calibrate a model (such as a second or third order mathematical model) relating residual concentration to cam phase angle. The model, in turn, is stored in ECM 12, and used during operation of the engine 10 to maintain a running estimate of the residual exhaust gas concentration for use by the fuel and spark timing control algorithms. The block diagram of Figure 2 illustrates the above-described process.
The first phase of the process occurs during engine control algorithm calibration in a laboratory test setting. In this phase, engine characteristics and parameters are customarily determined either by data measurement from an operational engine (or vehicle) coupled to a dynamometer, or by executing an engine simulation software package such as Gamma Technologies' GT Power suite, or the like on a lab computer. The measured or simulated data is then used to calibrate the engine control functions so as to optimize the engine performance and/or fuel economy, without exceeding specified exhaust emission levels. In the case of the present invention, the engine simulation software is configured to simulate both the volumetric efficiency and the residual exhaust gas concentration, and measured engine data is used to independently determine the volumetric efficiency as described above. Thus, Figure 2 depicts an engine simulator 120 programmed to simulate the operation of engine 10 based on externally supplied engine geometry parameters 122, and in particular, to output the simulated volumetric efficiency VESim and the simulated residual exhaust gas concentration RCs.m on lines 124 and 126, respectively. The measured engine data, depicted by block 128, is used to develop the measured volumetric efficiency NEmeas on line 130, and a comparator 132 compares the VEs;m to VEmeas for various values of cam phase angle. If VEs.m does not match VEmeas within a specified deviation window, the decision block 134 is answered in the negative, and the block 136 adjusts or tunes certain parameters of engine
simulator 120 (such as an exhaust backpressure parameter) so that VEs;m will more nearly agree with VEm8as. When the constraints of decision block 134 are satisfied over the expected range of cam phase variation, it is answered in the affirmative, enabling the Curve Fitting block 138 to utilize RCs;m to select coefficients of a suitable mathematical model of residual concentration as a function of cam phase. For example, in a mechanization of the present invention, the modeled residual concentration RCmt-d is represented by a quadratic equation of the form:
RCmod = RCo + (a. * x) + (a2 * x2)
where RC0 is the residual concentration that occurs with a base setting of the cam phase, x is the cam phase angle, and the coefficients ai and a2 are selected so that RCm0d best represents the RCsιm output of simulator 120 for the various values of cam phase angle x. The block 138 may employ a least-squares curve fitting techniques, although it will be recognized that other techniques may be used as well. Finalfy, the model created by block 138 is transferred to the ECM 12, which uses the model to maintain a running estimate of the residual exhaust gas concentration during operation of engine 10 for use by the fuel and spark timing control algorithms.
In summary, the present invention provides a very practical methodology for estimating the residual exhaust gas concentration of an internal combustion engine having variable cam phase. While described in reference to the illustrated embodiment, it is expected that various modifications in addition to those mentioned above will occur to those skilled in the art. For example, look-up tables may be used in place of a mathematical algorithm to model the residual concentration, and so on. Thus, it will be understood that methods incorporating these and other modifications may fall within the scope of this invention, which is defined by the appended claims.
Claims
1. A method of estimating a concentration of residual exhaust gas in an internal combustion engine, where the engine includes variable phase control of one or more valves that control a flow of gases through said engine, the method comprising the steps of: dete-r-iining a volumetric efficiency of said engine based on known and measured engine parameters for various values of said phase control; simulating the volumetric efficiency and the residual exhaust gas concentration for the various phase control values using an engine simulator; comparing the determined volumetric efficiency with the simulated volumetric efficiency for the various phase control values, and adjusting at least one parameter of said engine simulator until the simulated volumetric efficiency substantially matches the determined volumetric efficiency; modeling the residual exhaust gas concentration of said engine as a function of the various phase control values based on the simulated residual exhaust gas concentration; and estimating the concentration of residual exhaust gas in the engine during operation of the engine based on said modeled residual exhaust gas concentration.
2. The method of Claim 1, wherein the volumetric efficiency of said engine is calculated based on known engine parameters and data measured during dynamometer testing of said engine.
3. The method of Claim 1, including the step of adjusting an exhaust backpressure parameter of said engine simulator until the simulated volumetric efficiency substantially matches the deteπr-ined volumetric efficiency.
4. The method of Claim 1, including the step of mathematically modeling the residual exhaust gas concentration of said engine as a function of the various phase control values and a residual exhaust gas concentration that occurs with a base value of said phase control.
5. The method of Claim 1, including the step of utilizing the estimated residual exhaust gas concentration to schedule one or more engine control parameters.
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
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EP03728872A EP1518051B1 (en) | 2002-06-04 | 2003-05-14 | Method of estimating residual exhaust gas concentration in a variable cam phase engine |
AT03728872T ATE542991T1 (en) | 2002-06-04 | 2003-05-14 | METHOD FOR ESTIMATING RESIDUAL EXHAUST GAS CONCENTRATION IN AN ENGINE WITH VARIABLE CAM PHASE |
Applications Claiming Priority (2)
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US10/162,375 US6550451B1 (en) | 2002-06-04 | 2002-06-04 | Method of estimating residual exhaust gas concentration in a variable cam phase engine |
US10/162,375 | 2002-06-04 |
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WO2003104643A1 true WO2003104643A1 (en) | 2003-12-18 |
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US (1) | US6550451B1 (en) |
EP (1) | EP1518051B1 (en) |
AT (1) | ATE542991T1 (en) |
WO (1) | WO2003104643A1 (en) |
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US6712053B2 (en) * | 2001-12-21 | 2004-03-30 | Denso Corporation | Control system for internal combustion engine |
US7472013B1 (en) * | 2007-07-20 | 2008-12-30 | Gm Global Technology Operations, Inc. | System and method for estimating volumetric efficiency for engines with intake and exhaust cam phasers |
US7685871B2 (en) * | 2008-03-18 | 2010-03-30 | Delphi Technologies, Inc. | System and method for estimating engine internal residual fraction using single-cylinder simulation and measured cylinder pressure |
EP2388461A1 (en) * | 2010-05-21 | 2011-11-23 | C.R.F. Società Consortile per Azioni | Internal exhaust gas recirculation control in an internal combustion engine |
JP5968771B2 (en) * | 2012-12-07 | 2016-08-10 | 日立オートモティブシステムズ株式会社 | Fuel injection control device for internal combustion engine |
EP2959140A2 (en) * | 2013-02-20 | 2015-12-30 | Robert Bosch GmbH | Real-time residual mass estimation with adaptive scaling |
GB2520637A (en) * | 2014-12-04 | 2015-05-27 | Daimler Ag | Controller for controlling an internal combustion engine of a vehicle, in particular a commercial vehicle |
DE102016201650A1 (en) * | 2016-02-03 | 2017-08-03 | Volkswagen Aktiengesellschaft | Method for calculating a residual gas mass in a cylinder of an internal combustion engine and control |
US20180013293A1 (en) * | 2016-07-11 | 2018-01-11 | General Electric Company | Model-based control system and method for tuning power production emissions |
DE102017218476A1 (en) * | 2017-10-16 | 2019-04-18 | Robert Bosch Gmbh | Method and device for determining emissions |
DE102019212275A1 (en) | 2019-08-15 | 2021-02-18 | Volkswagen Aktiengesellschaft | Method for adapting a detected camshaft position, control unit for carrying out the method, internal combustion engine and vehicle |
CN115034053B (en) * | 2022-05-31 | 2024-09-17 | 清华大学 | Simulation analysis method and device for simulating residual exhaust gas of two-stroke engine |
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US5904129A (en) * | 1996-04-03 | 1999-05-18 | Mitsubishi Denki Kabushiki Kaisha | Control device for cylinder injection type internal-combustion engine |
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KR100462458B1 (en) * | 1996-03-15 | 2005-05-24 | 지멘스 악티엔게젤샤프트 | How to use the model to determine the mass of clean air flowing into the cylinder of an internal combustion engine that recycles external exhaust gas |
SE522177C2 (en) * | 1996-08-27 | 2004-01-20 | Mitsubishi Motors Corp | Control device for an internal combustion engine with cylinder injection and spark ignition |
US5714683A (en) * | 1996-12-02 | 1998-02-03 | General Motors Corporation | Internal combustion engine intake port flow determination |
US6393903B1 (en) * | 1999-12-10 | 2002-05-28 | Delphi Technologies, Inc. | Volumetric efficiency compensation for dual independent continuously variable cam phasing |
US6508241B2 (en) * | 2001-01-31 | 2003-01-21 | Cummins, Inc. | Equivalence ratio-based system for controlling transient fueling in an internal combustion engine |
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2002
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2003
- 2003-05-14 WO PCT/US2003/015059 patent/WO2003104643A1/en active Application Filing
- 2003-05-14 EP EP03728872A patent/EP1518051B1/en not_active Expired - Lifetime
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US5904129A (en) * | 1996-04-03 | 1999-05-18 | Mitsubishi Denki Kabushiki Kaisha | Control device for cylinder injection type internal-combustion engine |
Also Published As
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EP1518051A4 (en) | 2011-03-30 |
US6550451B1 (en) | 2003-04-22 |
EP1518051B1 (en) | 2012-01-25 |
ATE542991T1 (en) | 2012-02-15 |
EP1518051A1 (en) | 2005-03-30 |
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