Claims
- 1. A method for controlling an internal combustion engine, the engine including an engine block defining a plurality of cylinders, an intake manifold for supplying air to the plurality of cylinders, a controller, and an exhaust gas recirculation (EGR) system, the EGR system introducing a metered portion of exhaust gases to the intake manifold, the controller communicating with the EGR system to control the engine, the method comprising:
determining an air mass flow rate through the intake manifold at a location upstream of the exhaust gas introduction; determining an engine speed; determining an intake manifold air density; determining an engine volumetric efficiency based on the engine speed and the intake manifold air density; determining an EGR flow rate based on the volumetric efficiency, the intake manifold air density, an engine displacement volume, the engine speed, and the intake manifold air mass flow rate; and controlling the engine based on the EGR flow rate.
- 2. The method of claim 1 wherein determining the engine volumetric efficiency further comprises:
determining an engine exhaust to intake pressure ratio; and determining a correction factor based on the engine exhaust to intake pressure ratio, wherein the engine volumetric efficiency is further based on the correction factor.
- 3. The method of claim 1 wherein determining the engine volumetric efficiency further comprises:
establishing a neural network that receives the engine speed, an intake manifold air pressure, an intake manifold air temperature, and an exhaust pressure as inputs, and provides the engine volumetric efficiency as an output.
- 4. The method of claim 1 wherein determining the EGR flow rate further comprises:
determining the EGR flow rate according to {dot over (m)}EGR=ηvρa,iVdN/2−{dot over (m)}charge where ηv is the engine volumetric efficiency, ρa,i is the intake manifold air density, Vd is the engine displacement volume, N is the engine speed, {dot over (m)}charge is the intake manifold air mass flow rate, and {dot over (m)}EGR is the EGR flow rate.
- 5. An internal combustion engine, the engine including an engine block defining a plurality of cylinders, an intake manifold for supplying air to the plurality of cylinders, a controller, and an exhaust gas recirculation (EGR) system, the EGR system introducing a metered portion of exhaust gases to the intake manifold, the controller communicating with the EGR system to control the engine, the controller being programmed to control the internal combustion engine by:
determining an air mass flow rate through the intake manifold at a location upstream of the exhaust gas introduction; determining an engine speed; determining an intake manifold air density; determining an engine volumetric efficiency based on the engine speed and the intake manifold air density; determining an EGR flow rate based on the volumetric efficiency, the intake manifold air density, an engine displacement volume, the engine speed, and the intake manifold air mass flow rate; and controlling the engine based on the EGR flow rate.
- 6. The engine of claim 5 wherein determining the engine volumetric efficiency further comprises:
determining an engine exhaust to intake pressure ratio; and determining a correction factor based on the engine exhaust to intake pressure ratio, wherein the engine volumetric efficiency is further based on the correction factor.
- 7. The engine of claim 5 wherein determining the engine volumetric efficiency further comprises:
establishing a neural network that receives the engine speed, an intake manifold air pressure, an intake manifold air temperature, and an exhaust pressure as inputs, and provides the engine volumetric efficiency as an output.
- 8. The engine of claim 5 wherein determining the EGR flow rate further comprises:
determining the EGR flow rate according to {dot over (m)}EGR=ηvρa,iVdN/2−{dot over (m)}charge where ηv is the engine volumetric efficiency, ρa,i is the intake manifold air density, Vd is the engine displacement volume, N is the engine speed, {dot over (m)}charge is the intake manifold air mass flow rate, and {dot over (m)}EGR is the EGR flow rate.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH AND DEVELOPMENT
[0001] This invention was made with United States Government support, and the United States Government has certain rights in this invention.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US02/29781 |
9/19/2002 |
WO |
|