INTERNAL-COMBUSTION-ENGINE CONTROL APPARATUS
20230349340 · 2023-11-02
Assignee
Inventors
Cpc classification
F02D41/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/1401
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2041/1431
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2041/1432
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0414
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02D41/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The internal-combustion-engine control apparatus has an intake-air-temperature correction control apparatus including a first-order advance compensation means that calculates an advance-compensation amount for an intake-air temperature detection signal, a time constant determination means that calculates a time constant of the first-order advance compensation means, and a first-order delay compensation means that receives a calculation value of the first-order advance compensation means; the time constant determination means includes a time constant setting means that sets a time constant, based on an intake-air flow rate detection signal, an upper-limit-value setting means that sets an upper limit value of the time constant calculated by the time constant determination means, and a minimum value selection means that selects and outputs a minimum value of a time constant set by the time constant setting means and the upper limit value set by the upper-limit-value setting means.
Claims
1. An internal-combustion-engine control apparatus comprising: an intake-air physical quantity measurement apparatus having an intake-air flow rate detection apparatus that detects a flow rate of intake air to be sucked into an internal combustion engine and then outputs an intake-air flow rate detection signal, and an intake-air temperature detection apparatus that detects a temperature of the intake air and then outputs an intake-air temperature detection signal; and an intake-air-temperature correction control apparatus having a first-order advance compensator that applies advance compensation to the intake-air temperature detection signal by use of the intake-air temperature detection signal, a time constant determinator that calculates a time constant for performing the advance compensation and then input the time constant to the first-order advance compensator, and a first-order delay compensator that applies delay compensation to a calculation value of the first-order advance compensator, and outputting an output of the first-order delay compensator, as a corrected intake-air temperature detection signal, wherein the time constant determinator has a time constant setting device that sets the time constant, based on the intake-air flow rate detection signal, an upper-limit-value setting device that sets an upper limit value of the time constant, and a minimum value selector that selects and outputs a minimum value of a time constant set by the time constant setting device and the upper limit value set by the upper-limit-value setting device, and wherein the first-order advance compensator applies advance compensation to the intake-air temperature detection signal, based on the output of the minimum value selector, and controls the internal combustion engine by use of the corrected intake-air temperature detection signal to be outputted from the intake-air-temperature correction control apparatus.
2. The internal-combustion-engine control apparatus according to claim 1, wherein until a predetermined time elapses after a power source is supplied to the intake-air physical quantity measurement apparatus, the upper-limit-value setting device keeps the upper limit value constant.
3. An internal-combustion-engine control apparatus comprising: an intake-air physical quantity measurement apparatus having an intake-air flow rate detection apparatus that detects a flow rate of intake air to be sucked into an internal combustion engine and then outputs an intake-air flow rate detection signal, and an intake-air temperature detection apparatus that detects a temperature of the intake air and then outputs an intake-air temperature detection signal; and a first-order advance compensator that applies advance compensation to the intake-air temperature detection signal by use of the intake-air temperature detection signal, an intake-air-temperature correction control apparatus having a time constant determinator that calculates a time constant for performing the advance compensation and then input the time constant to the first-order advance compensator, and a first-order delay compensator that applies delay compensation to a calculation value of the first-order advance compensator, and outputting an output of the first-order delay compensator, as a corrected intake-air temperature detection signal, wherein the time constant determinator has a first time constant setting device that sets a first time constant, based on the intake-air flow rate detection signal, a second time constant setting device that sets a second time constant, based on the intake-air flow rate detection signal, and a time constant selector that selects anyone of the first time constant set by the first time constant setting device and the second time constant set by the second time constant setting device, and wherein the first-order advance compensator applies advance compensation to the intake-air temperature detection signal, based on said any one of said time constants, selected by the time constant selector, and controls the internal combustion engine by use of the corrected intake-air temperature detection signal to be outputted from the intake-air-temperature correction control apparatus.
4. The internal-combustion-engine control apparatus according to claim 3, wherein the second time constant is set to be smaller than the first time constant, and wherein in the case where a predetermined time has not elapsed after a power source has been supplied to the intake-air physical quantity measurement apparatus, the time constant selector selects the second time constant; in the case where the predetermined time has elapsed, the time constant selector selects the first time constant.
5. The internal-combustion-engine control apparatus according to claim 1, wherein the intake-air-temperature correction control apparatus is controlled by an ECU for controlling the internal combustion engine.
6. The internal-combustion-engine control apparatus according to claim 2, wherein the intake-air-temperature correction control apparatus is controlled by an ECU for controlling the internal combustion engine.
7. The internal-combustion-engine control apparatus according to claim 3, wherein the intake-air-temperature correction control apparatus is controlled by an ECU for controlling the internal combustion engine.
8. The internal-combustion-engine control apparatus according to claim 4, wherein the intake-air-temperature correction control apparatus is controlled by an ECU for controlling the internal combustion engine.
9. The internal-combustion-engine control apparatus according to claim 1, wherein the intake-air-temperature correction control apparatus is controlled by a microcomputer or an LSI mounted in the intake-air physical quantity measurement apparatus.
10. The internal-combustion-engine control apparatus according to claim 2, wherein the intake-air-temperature correction control apparatus is controlled by a microcomputer or an LSI mounted in the intake-air physical quantity measurement apparatus.
11. The internal-combustion-engine control apparatus according to claim 3, wherein the intake-air-temperature correction control apparatus is controlled by a microcomputer or an LSI mounted in the intake-air physical quantity measurement apparatus.
12. The internal-combustion-engine control apparatus according to claim 4, wherein the intake-air-temperature correction control apparatus is controlled by a microcomputer or an LSI mounted in the intake-air physical quantity measurement apparatus.
13. The internal-combustion-engine control apparatus according to claim 1, wherein the intake-air flow rate detection apparatus and the intake-air temperature detection apparatus are mounted on one and the same substrate so as to be integrated with each other, and wherein the intake-air flow rate detection apparatus is heated by a heater to be energized through supply of a power source to the intake-air physical quantity measurement apparatus and detects a flow rate of the intake air, based on an electric quantity supplied to the heater.
14. The internal-combustion-engine control apparatus according to claim 2, wherein the intake-air flow rate detection apparatus and the intake-air temperature detection apparatus are mounted on one and the same substrate so as to be integrated with each other, and wherein the intake-air flow rate detection apparatus is heated by a heater to be energized through supply of a power source to the intake-air physical quantity measurement apparatus and detects a flow rate of the intake air, based on an electric quantity supplied to the heater.
15. The internal-combustion-engine control apparatus according to claim 3, wherein the intake-air flow rate detection apparatus and the intake-air temperature detection apparatus are mounted on one and the same substrate so as to be integrated with each other, and wherein the intake-air flow rate detection apparatus is heated by a heater to be energized through supply of a power source to the intake-air physical quantity measurement apparatus and detects a flow rate of the intake air, based on an electric quantity supplied to the heater.
16. The internal-combustion-engine control apparatus according to claim 4, wherein the intake-air flow rate detection apparatus and the intake-air temperature detection apparatus are mounted on one and the same substrate so as to be integrated with each other, and wherein the intake-air flow rate detection apparatus is heated by a heater to be energized through supply of a power source to the intake-air physical quantity measurement apparatus and detects a flow rate of the intake air, based on an electric quantity supplied to the heater.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0045]
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[0050]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
Embodiment 1
[0054] Hereinafter, an internal-combustion-engine control apparatus according to Embodiment 1 will be explained in detail.
[0055] A control apparatus for controlling the internal combustion engine 110 includes an ECU (Electronic Control Unit) 200 and an intake-air physical quantity measurement apparatus 300 for detecting a flow rate and a temperature of intake air 30, as a fluid to be measured, that is sucked into a main path 124 of the internal combustion engine 110 through an air cleaner 122. The intake-air physical quantity measurement apparatus 300 is configured in such a way that an intake-air flow rate detection device, as an intake-air flow rate detection apparatus for detecting an intake-air flow rate, and an intake-air temperature detection device, as an intake-air temperature detection apparatus for detecting an intake-air temperature, are arranged on one and the same substrate so as to be integrated with each other. Each of the intake-air flow rate detection device and the intake-air temperature detection device is configured with a semiconductor device formed of a thin film having a thickness, for example, in the order of microns.
[0056] In addition, the internal-combustion-engine control apparatus includes a throttle opening degree sensor 144 for detecting an opening degree of a throttle valve 132 provided in a throttle body 126, an idle-air control valve 156 provided in the throttle body 126, an fuel injection valve 152 for injecting a fuel into an intake port in an intake manifold 128, a rotation angle sensor 146 for detecting an rotation angle of the internal combustion engine 110, and an oxygen sensor 148 that is provided in an exhaust pipe of the internal combustion engine 110 and detects an amount of oxygen included in an exhaust gas 24.
[0057] The intake air 30 travels in the following manner, based on the operation of the internal combustion engine 110. That is to say, the intake air 30 sucked from the outside by an intake system of the internal combustion engine 110 firstly passes through the air cleaner 122 and then is introduced into the combustion chamber in the cylinder 112 of the internal combustion engine 110 through the intake valve 116, by way of the throttle body 126 and the intake manifold 128 provided in the main path 124. The intake-air flow rate and the intake-air temperature, which are physical quantities of the intake air 30, are detected by the foregoing intake-air physical quantity measurement apparatus 300.
[0058] The fuel injection valve 152 is provided, for example, in the intake port of the internal combustion engine 110 and injects a fuel into the intake port; the amount of the foregoing fuel is calculated based on the intake-air flow rate and the intake-air temperature, as the physical quantities detected by the intake-air physical quantity measurement apparatus 300. The fuel injected into the intake port is mixed with the intake air 30, which is air, so as to form a fuel-air mixture and then is introduced into the combustion chamber of the internal combustion engine 110 through the intake valve 116. The fuel-air mixture introduced into the combustion chamber is combusted through spark ignition by the ignition plug 154 so as to produce mechanical energy.
[0059] The gas combusted in the combustion chamber of the internal combustion engine 110 is introduced into the exhaust pipe through the exhaust valve 118 and then is discharged, as the exhaust gas 24, to the outside of the vehicle. The intake-air flow rate is controlled by the throttle valve 132 whose opening degree changes based on the operation of the accelerator pedal. The fuel supply amount is controlled based on the intake-air flow rate. A driver of the vehicle can control mechanical energy produced by the internal combustion engine 110 by adjusting the opening degree of the throttle valve 132 through the accelerator pedal so as to control the air-fuel ratio of a fuel-air mixture to be introduced into the combustion chamber.
[0060] The intake-air physical quantity measurement apparatus 300 inputs an intake-air flow rate detection signal, as an electric signal corresponding to a detected intake-air flow rate, and an intake-air temperature detection signal, as an electric signal corresponding to a detected intake-air temperature, to the ECU 200. The throttle opening degree sensor 144 inputs a throttle opening degree detection signal, as an electric signal corresponding to a detected opening degree of the throttle valve 132, to the ECU 200.
[0061] In addition, electric signals corresponding to the respective positions or states of the piston 114, the intake valve 116, and the exhaust valve 118 of the internal combustion engine 110 are inputted to the ECU 200. Moreover, the rotation angle sensor 146 inputs a rotation speed detection signal, as an electric signal corresponding to a rotation speed of the internal combustion engine 110, to the ECU 200. In addition, the oxygen sensor 148 inputs an oxygen amount detection signal, as an electric signal corresponding to an amount of oxygen included in the exhaust gas 24, to the ECU 200. The oxygen amount detection signal is utilized in a calculation of the air-fuel ratio of a mixer.
[0062] The ECU 200 calculates a fuel injection amount and an ignition timing, based on the intake-air flow rate detection signal from the intake-air physical quantity measurement apparatus 300 and the rotation speed detection signal from the rotation angle sensor 146; then, based on the results of the calculation, the ECU 200 controls the amount of the fuel supplied through the fuel injection valve 152 and the ignition timing at which the ignition plug 154 ignites the fuel. In practice, the fuel supply amount and the ignition timing are further finely controlled based on the intake-air temperature detection signal from the intake-air physical quantity measurement apparatus 300, the throttle opening degree detection signal from the throttle valve 132, the rotation speed detection signal from the rotation angle sensor 146, and the oxygen amount detection signal from the oxygen sensor 148.
[0063] The ECU 200 further controls the rotation speed of the internal combustion engine 110 in an idle driving state, by controlling intake air that bypasses the throttle valve 132, by means of the idle-air control valve 156, while the internal combustion engine 110 is in an idle driving state.
[0064] Next, an intake-air-temperature correction control apparatus that corrects an intake-air temperature will be explained.
[0065]
[0066] The processor 400 executes a program inputted from the storage device 400M. In this case, the program is inputted from the auxiliary storage device to the processor 400P by way of the volatile storage device. Moreover, the processor 400P may output data such as a calculation result either to the volatile storage device of the storage device 400M or to the auxiliary storage device by way of the volatile storage device.
[0067] In
[0068] The output of the first-order advance compensation means 201 is inputted to a first-order delay compensation means 203 in which noise in the output is eliminated; then, the output is outputted, as a corrected intake-air temperature detection signal Temp_out, and is utilized as a signal for ignition control and fuel control of the internal combustion engine 110.
[0069]
[0070] In
[0071] The time constant τ1 to be set by the time constant setting means 2021 is set based on the intake-air flow rate detection signal Qsig; because being a time constant for improving the responsiveness of the intake-air temperature detection signal Temp, the time constant τ1 becomes smaller in inverse proportion to an increase in the intake-air flow rate detection signal Qsig. Meanwhile, the upper limit value τmax to be set by the upper-limit-value setting means 2022 is set in accordance with the time to be counted after the intake-air physical quantity measurement apparatus 300 has been supplied with a power source, and becomes the upper limit value of the time constant τsel to be outputted from the time constant determination means 202.
[0072] The upper limit value τmax of the time constant in the time constant map represented in
[0073] As represented in
[0074] A minimum value selection means 2023 represented in
[0075] In the case where the intake-air temperature detection device in the intake-air physical quantity measurement apparatus 300 is disposed in the measurement path or the circuit containing portion having a large heat capacity, detection of a temperature change by the intake-air temperature detection device is delayed from a temperature change in the intake air 30 flowing in the main path 124. Accordingly, in order to improve the delay in the detection of the intake-air temperature by the intake-air temperature detection device, the first-order advance compensation means 201 is provided. However, a temperature change based on a temperature increase of the heater, which is caused when the intake-air physical quantity measurement apparatus 300 is supplied with the power source, is faster than a change in the intake-air temperature; thus, when first-order advance compensation is implemented by use of the time constant τ1 to be set by the time constant setting means 2021 represented in
[0076] Therefore, until a predetermined time elapses after the intake-air physical quantity measurement apparatus 300 is supplied with the power source, the time constant to be set by the time constant setting means 2021 in the time constant determination means 202 is limited to the upper limit value τmax1. When as described above, the time constant to be set by the time constant setting means 2021 is limited to the upper limit value τmax1, it is made possible to suppress excessive correction by the first-order advance compensation means that is caused at a time when the intake-air physical quantity measurement apparatus 300 is supplied with the power source.
[0077] For example, until a predetermined time elapses after the ECU 200 has supplied the power source to the intake-air physical quantity measurement apparatus 300, the minimum value selection means 2023 selects the upper limit value τmax1 set by the upper-limit-value setting means 2022 and outputs the selected upper limit value τmax1. Because even when the intake-air temperature detection device in the intake-air physical quantity measurement apparatus 300 detects a temperature change based on a temperature increase of the heater, which is faster than a temperature change in the intake air 30, the first-order advance compensation means 201 receives the time constant limited to the upper limit value τmax1 so as to calculate a first-order advance compensation value, excessive correction caused when the heater temperature increases can be suppressed.
[0078] In addition, the temperature increase in the intake-air physical quantity measurement apparatus 300, caused by the heater, is largest at a time immediately after the intake-air physical quantity measurement apparatus 300 is supplied with the power source; thus, as described above, the upper limit value τmax of the time constant is changed from the upper limit value τmax1 to the upper limit value τmax1 in accordance with the time elapsed after the intake-air physical quantity measurement apparatus 300 is supplied with the power source. When a predetermined time elapses after the intake-air physical quantity measurement apparatus 300 has been supplied with the power source and then the heater temperature reaches a constant temperature, the effect of a temperature increase by the heater is reduced; thus, setting the upper limit value of the time constant to the upper limit value τmax2, which is ineffective, as the upper limit value, makes it possible that the first-order advance compensation value is calculated based on the time constant τ1 for improving the response delay of the intake-air temperature detection signal Temp and that the temperature of the intake air 30 is accurately calculated.
[0079] Next, the operation of the intake-air-temperature correction control apparatus 400 will be explained.
[0080] Next, in the step S102, the upper-limit-value setting means 2022 calculates the upper limit value τmax of the time constant τ1 calculated in the step S101, based on the elapsed time from a time point when power supply for the intake-air physical quantity measurement apparatus 300 has been started. In this situation, from the upper limit value map represented in
[0081] In the step S103, the time constant τ1 calculated in the step S101 and the upper limit value τmax calculated in the step S102 are inputted to the minimum value selection means 2023. The minimum value selection means 2023 compares the inputted time constant τ1 with the inputted upper limit value τmax, selects the minimum value out of them, and then outputs the minimum value, as the time constant τsel.
[0082] Next, in the step S104, the intake-air temperature detection signal Temp, which is the output of the intake-air physical quantity measurement apparatus 300, and the time constant τsel, which is the output of the time constant determination means 202, are inputted to the first-order advance compensation means 201 so that advance compensation is applied to the intake-air temperature detection signal Temp.
[0083] In the step S105, the intake-air temperature detection signal to which advance compensation has been applied in the step S104 is inputted to the first-order delay compensation means 203 so that in order to eliminate noise, delay compensation is applied to the intake-air temperature detection signal to which advance compensation has been applied; then, the processing is ended. The signal obtained by applying delay compensation to the intake-air temperature detection signal to which advance compensation has been applied is outputted from the first-order delay compensation means 203, as a corrected intake-air temperature detection signal Temp_out to be outputted from the intake-air-temperature correction control apparatus 400.
[0084] As described above, the time constant determination means 202 can suppress excessive correction of the intake-air temperature that is caused when the intake-air physical quantity measurement apparatus 300 is supplied with the power source, by comparing the output of the time constant setting means 2021 with the output of the upper-limit-value setting means 2022 and then by selecting and outputting the minimum value out of them.
[0085]
[0086] In the internal-combustion-engine control apparatus according to Embodiment 1 of the present disclosure, the foregoing configuration makes it possible to suppress such excessive correction of the intake-air temperature detection signal, caused in the conventional apparatus.
Embodiment 2
[0087] Next, an internal-combustion-engine control apparatus according to Embodiment 2 will be explained. In the following explanation, the portion thereof different from those of the internal-combustion-engine control apparatus according to Embodiment 1 will mainly be explained.
[0088] In Embodiment 1, the upper-limit-value setting means 2022 sets the upper limit value τmax of the time constant; however, when the intake-air flow rate changes concurrently with the power-source supply to the intake-air physical quantity measurement apparatus 300, the first-order advance compensation corresponding to the intake-air flow rate cannot be implemented because the upper limit value is a constant value; thus, the accuracy of the temperature compensation value may be deteriorated. Embodiment 2 solves the foregoing deterioration in the accuracy of the temperature compensation value.
[0089] In
[0090]
[0091] As represented in
[0092]
[0093] In the step S202, the time constant selection means 2026 receives the first time constant τ1 and the second time constant τ2 and then calculates the time constant τsel. In the case where a predetermined time has not elapsed from the start of power-source supply to the intake-air physical quantity measurement apparatus 300, the time constant selection means 2026 selects the second time constant τ2; in the case where the predetermined time has elapsed from the start of power-source supply to the intake-air physical quantity measurement apparatus 300, the time constant selection means 2026 selects the first time constant τ1.
[0094] When the second time constant τ2 is switched to the first time constant τ1, excessive correction may be caused depending on the setting difference between the time constants; therefore, after any one of the first time constant τ1 and the second time constant τ2 is selected, the selected time constant is made to pass through a filter so as to change continuously, so that the corrected intake-air temperature detection signal Temp_out is prevented from suddenly changing due to switching of the time constants.
[0095] Next, in the step S203, the intake-air temperature detection signal Temp, which is the output of intake-air physical quantity measurement apparatus 300, and the time constant τsel, which is the output of the time constant determination means 202, are inputted to the first-order advance compensation means 201 so that first-order advance compensation is applied to the intake-air temperature detection signal Temp.
[0096] In the step S204, the first-order delay compensation means 203 receives and then applies first-order delay compensation to the intake-air temperature detection signal to which the first-order advance compensation has been applied, so that noise is eliminated therefrom. The signal obtained by applying delay compensation to the intake-air temperature detection signal to which advance compensation has been applied is outputted from the first-order delay compensation means 203, as a corrected intake-air temperature detection signal Temp_out to be outputted from the intake-air-temperature correction control apparatus 400.
[0097] As described above, the respective time constants for the first-order advance compensation based on the intake-air flow rate detection signal Qsig are set by the first time constant determination means 2024 and the second time constant determination means 2025, and then the time constants are switched from each other, based on the elapsed time from the start of power-source supply to the intake-air physical quantity measurement apparatus 300; as a result, it is made possible to suppress excessive correction, of the intake-air temperature detection signal, that is caused when the intake-air physical quantity measurement apparatus 300 is supplied with the power source.
[0098] Moreover, the second time constant determination means 2025 can set the second time constant τ2, based on the intake-air flow rate detection signal Qsig; thus, even when the flow rate changes concurrently with the start of the power-source supply to the intake-air physical quantity measurement apparatus 300, a high-accuracy intake air temperature can be calculated.
[0099] In addition, in each of Embodiment 1 and Embodiment 2, the intake-air flow rate detection signal and the intake-air temperature detection signal to be measured by the intake-air physical quantity measurement apparatus 300 may be inputted, as analogue voltages, to the ECU 200; alternatively, the foregoing signals may be inputted, as communication signals, to the ECU 200 though CAN (Controller Area Network), SENT (Single Edge Nibble Transmission), or LIN (Local Interconnect Network).
[0100] As described above, it is made possible to improve a response delay in the intake-air temperature measured by the intake-air physical quantity measurement apparatus 300 and to suppress excessive correction by the first-order advance compensation from being implemented due to an increase in the temperature of the heater at a time when power-source supply to the intake-air physical quantity measurement apparatus 300 is started.
[0101] In each of Embodiment 1 and Embodiment 2, the ECU 200 controls the intake-air-temperature correction control apparatus 400 so as to suppress excessive correction by the first-order advance compensation; however, in the case where when the intake-air physical quantity measurement apparatus 300 is provided with a microcomputer or an LSI (Large Scale Integration) circuit corresponding to a microcomputer, the microcomputer or the LSI provided in the intake-air physical quantity measurement apparatus 300 controls the intake-air-temperature correction control apparatus 400 so as to suppress excessive correction by the first-order advance compensation, there can be obtained a result the same as that at a time when the ECU 200 performs the correction.
[0102] Although the present application is described above in terms of various exemplary embodiments and implementations, it should be understood that the various features, aspects and functions described in one or more of the individual embodiments are not limited in their applicability to the particular embodiment with which they are described, but instead can be applied, alone or in various combinations to one or more of the embodiments. Therefore, an infinite number of unexemplified variant examples are conceivable within the range of the technology disclosed in the present application. For example, there are included the case where at least one constituent element is modified, added, or omitted and the case where at least one constituent element is extracted and then combined with constituent elements of other embodiments.
[0103] Next, the respective features of the internal-combustion-engine control apparatuses disclosed in the present disclosure will be described as appendixes.
(Appendix 1) An internal-combustion-engine control apparatus comprising: [0104] an intake-air physical quantity measurement apparatus having [0105] an intake-air flow rate detection apparatus that detects a flow rate of intake air to be sucked into an internal combustion engine and then outputs an intake-air flow rate detection signal, and [0106] an intake-air temperature detection apparatus that detects a temperature of the intake air and then outputs an intake-air temperature detection signal; and [0107] an intake-air-temperature correction control apparatus having [0108] a first-order advance compensation means that applies advance compensation to the intake-air temperature detection signal by use of the intake-air temperature detection signal, [0109] a time constant determination means that calculates a time constant for performing the advance compensation and then input the time constant to the first-order advance compensation means, and [0110] a first-order delay compensation means that applies delay compensation to a calculation value of the first-order advance compensation means, and outputting an output of the first-order delay compensation means, as a corrected intake-air temperature detection signal, [0111] wherein the time constant determination means has [0112] a time constant setting means that sets the time constant, based on the intake-air flow rate detection signal, [0113] an upper-limit-value setting means that sets an upper limit value of the time constant, and [0114] a minimum value selection means that selects and outputs a minimum value of a time constant set by the time constant setting means and the upper limit value set by the upper-limit-value setting means, and [0115] wherein the first-order advance compensation means applies advance compensation to the intake-air temperature detection signal, based on the output of the minimum value selection means, and controls the internal combustion engine by use of the corrected intake-air temperature detection signal to be outputted from the intake-air-temperature correction control apparatus.
(Appendix 2) The internal-combustion-engine control apparatus according to Appendix 1, wherein until a predetermined time elapses after a power source is supplied to the intake-air physical quantity measurement apparatus, the upper-limit-value setting means keeps the upper limit value constant.
(Appendix 3) An internal-combustion-engine control apparatus comprising: [0116] an intake-air physical quantity measurement apparatus having [0117] an intake-air flow rate detection apparatus that detects a flow rate of intake air to be sucked into an internal combustion engine and then outputs an intake-air flow rate detection signal, and [0118] an intake-air temperature detection apparatus that detects a temperature of the intake air and then outputs an intake-air temperature detection signal; and [0119] an intake-air-temperature correction control apparatus having [0120] a first-order advance compensation means that applies advance compensation to the intake-air temperature detection signal by use of the intake-air temperature detection signal, [0121] a time constant determination means that calculates a time constant for performing the advance compensation and then input the time constant to the first-order advance compensation means, and [0122] a first-order delay compensation means that applies delay compensation to a calculation value of the first-order advance compensation means, and outputting an output of the first-order delay compensation means, as a corrected intake-air temperature detection signal, [0123] wherein the time constant determination means has [0124] a first time constant setting means that sets a first time constant, based on the intake-air flow rate detection signal, [0125] a second time constant setting means that sets a second time constant, based on the intake-air flow rate detection signal, and [0126] a time constant selection means that selects any one of the first time constant set by the first time constant setting means and the second time constant set by the second time constant setting means, and [0127] wherein the first-order advance compensation means applies advance compensation to the intake-air temperature detection signal, based on said any one of said time constants, selected by the time constant selection means, and controls the internal combustion engine by use of the corrected intake-air temperature detection signal to be outputted from the intake-air-temperature correction control apparatus.
(Appendix 4) The internal-combustion-engine control apparatus according to Appendix 3, [0128] wherein the second time constant is set to be smaller than the first time constant, and [0129] wherein in the case where a predetermined time has not elapsed after a power source has been supplied to the intake-air physical quantity measurement apparatus, the time constant selection means selects the second time constant; in the case where the predetermined time has elapsed, the time constant selection means selects the first time constant.
(Appendix 5) The internal-combustion-engine control apparatus according to any one of Appendixes 1 through 4, wherein the intake-air-temperature correction control apparatus is controlled by an ECU for controlling the internal combustion engine.
(Appendix 6) The internal-combustion-engine control apparatus according to any one of Appendixes 1 through 4, wherein the intake-air-temperature correction control apparatus is controlled by a microcomputer or an LSI mounted in the intake-air physical quantity measurement apparatus.
(Appendix 7) The internal-combustion-engine control apparatus according to any one of Appendixes 1 through 6, [0130] wherein the intake-air flow rate detection apparatus and the intake-air temperature detection apparatus are mounted on one and the same substrate so as to be integrated with each other, and [0131] wherein the intake-air flow rate detection apparatus is heated by a heater to be energized through supply of a power source to the intake-air physical quantity measurement apparatus and detects a flow rate of the intake air, based on an electric quantity supplied to the heater.