Method for operating a supercharged internal combustion engine and device for providing combustion air for a supercharged internal combustion engine
US-2024344477-A1 · Oct 17, 2024 · US
US9803573B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9803573-B2 |
| Application number | US-201414317039-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 27, 2014 |
| Priority date | Jun 27, 2014 |
| Publication date | Oct 31, 2017 |
| Grant date | Oct 31, 2017 |
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An engine control system for a vehicle includes a target torque module that determines a target torque output of an engine based on at least one driver input. A target air per cylinder (APC) module determines a target APC for the engine based on the target torque. A target mass airflow (MAF) module determines a target MAF through a throttle valve of the engine based on the target APC, a number of activated cylinders of the engine, and a total number of cylinders of the engine. A throttle control module determines a target throttle opening based on the target MAF and controls opening of the throttle valve based on the target throttle opening.
Opening claim text (preview).
What is claimed is: 1. An engine control system for a vehicle, comprising: a target torque circuit that determines a target torque output of an engine based on at least one driver input; a target air per cylinder (APC) circuit that determines a target APC for the engine based on the target torque; a first target mass airflow (MAF) circuit that determines a first target MAF through a throttle valve of the engine based on a first set of parameters including the target APC, an APC of the engine, a temperature of air within an intake manifold of the engine, a volumetric efficiency of the engine, a predetermined response time value, a number of activated cylinders of the engine, and a total number of cylinders of the engine; a second target MAF circuit that determines a second target MAF through the throttle valve based on a second set of parameters including the target APC, an engine speed, and the total number of cylinders of the engine, wherein at least one parameter of the first set of parameters is not included in the second set of parameters, and wherein at least one parameter of the second set of parameters is not included in the first set of parameters; a selection circuit that: selects the first target MAF as a selected target MAF while at least one cylinder of the engine is transitioned (a) from activated to deactivated or (b) from deactivated to activated; and selects the second target MAF as the selected target MAF when both (a) zero cylinders of the engine are being transitioned from activated to deactivated and (b) zero cylinders of the engine are being transitioned from deactivated to activated; and a throttle control circuit that determines a target throttle opening based on the selected target MAF and that controls opening of the throttle valve based on the target throttle opening. 2. The engine control system of claim 1 wherein the target MAF circuit determines the first target MAF using one of a function and a mapping that relates the target APC, the number of activated cylinders, the total number of cylinders, the APC, the temperature, the volumetric efficiency, and the predetermined response time value to the first target MAF. 3. The engine control system of claim 1 wherein the selection circuit selects the first target MAF for a predetermined period before the at least one cylinder of the engine is transitioned from activated to deactivated. 4. The engine control system of claim 1 wherein the selection circuit selects the first target MAF for a predetermined period before the at least one cylinder of the engine is transitioned from deactivated to activated. 5. The engine control system of claim 1 wherein the throttle control circuit determines the target throttle opening further based on a target intake manifold pressure. 6. An engine control method comprising: determining a target torque output of an engine based on at least one driver input; determining a target air per cylinder (APC) for the engine based on the target torque; determining a first target mass airflow (MAF) through a throttle valve of the engine based on a first set of parameters including the target APC, an APC of the engine, a temperature of air within an intake manifold of the engine, a volumetric efficiency of the engine, a predetermined response time value, a number of activated cylinders of the engine, and a total number of cylinders of the engine; determining a second target MAF through the throttle valve based on a second set of parameters including the target APC, an engine speed, and the total number of cylinders of the engine, wherein at least one parameter of the first set of parameters is not included in the second set of parameters, and wherein at least one parameter of the second set of parameters is not included in the first set of parameters; selecting the first target MAF as a selected target MAF while at least one cylinder of the engine is transitioned (a) from activated to deactivated or (b) from deactivated to activated; selecting the second target MAF as the selected target MAF when both (a) zero cylinders of the engine are being transitioned from activated to deactivated and (b) zero cylinders of the engine are being transitioned from deactivated to activated; determining a target throttle opening based on the selected target MAF; and controlling opening of the throttle valve based on the target throttle opening. 7. The engine control method of claim 6 further comprising determining the first target MAF using one of a function and a mapping that relates the target APC, the number of activated cylinders, the total number of cylinders, the APC, the temperature, the volumetric efficiency, and the predetermined response time value to the first target MAF. 8. The engine control method of claim 6 further comprising selecting the first target MAF for a predetermined period before the at least one cylinder of the engine is transitioned from activated to deactivated. 9. The engine control method of claim 6 further comprising selecting the first target MAF for a predetermined period before the at least one cylinder of the engine is transitioned from deactivated to activated. 10. The engine control method of claim 6 further comprising determining the target throttle opening further based on a target intake manifold pressure.
Volumetric efficiency · CPC title
characterised by the function converting demand to actuation, e.g. a map indicating relations between an accelerator pedal position and throttle valve opening or target engine torque · CPC title
Control of the engine output torque · CPC title
rendering engines inoperative or idling, e.g. caused by abnormal conditions (dependent on lubricating conditions F01M1/22; dependent on cooling F01P5/14) · CPC title
Controlling intake air · CPC title
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