Claims
- 1. An idle speed control for an internal combustion engine comprising:a first source providing a signal corresponding to ambient air temperature; a second source providing a signal corresponding to engine coolant temperature; a third source providing a signal indicating that an engine is running substantially in an idle condition; and a processor that processes the signals from the first source, the second source, and the third source to develop an idle speed control signal for controlling engine idle speed by regulating the engine coolant temperature to a defined coolant temperature when the engine is running in an idle condition and the ambient air temperature does not concurrently exceed a defined air temperature for any ambient air temperature below the defined air temperature, but not when ambient air temperature exceeds the defined air temperature.
- 2. An idle speed control for an internal combustion engine as set forth in claim 1 in which the processor processes the signals from the first source, the second source, and the third source for controlling engine idle speed by regulating the engine coolant temperature to a defined temperature when the engine is running in an idle condition and the ambient air temperature does not concurrently exceed substantially 0° C. (32° F.).
- 3. An idle speed control for an internal combustion engine as set forth in claim 1 in which the processor processes the signals from the first source, the second source, and the third source for controlling engine idle speed by regulating the engine coolant temperature to substantially 63° C. (145.4° F.) when the engine is running in an idle condition and the ambient air temperature does not concurrently exceed the defined air temperature.
- 4. An idle speed control for an internal combustion engine as set forth in claim 1 in which the processor processes the signals from the first source, the second source, and the third source for controlling engine idle speed by regulating the engine coolant temperature to substantially 63° C. (145.4° F.) when the engine is running in an idle condition and the ambient air temperature does not concurrently exceed substantially 0° C. (32° F.).
- 5. An idle speed control for an internal combustion engine as set forth in claim 1 in which the processor comprises a first hysteresis characteristic that defines upper and lower air temperature switch points for ambient air temperature, the upper air temperature switch point being defined by an upper air temperature above which an air temperature signal from the first source that is increasing from below the upper air temperature switch point will disallow the idle speed control from exercising control of idle speed, and the lower air temperature switch point being defined by a lower air temperature below which an air temperature signal from the first source that is decreasing from above the lower air temperature switch point will allow the idle speed control to exercise control of idle speed, and the processor comprises a second hysteresis characteristic that defines upper and lower coolant temperature switch points for engine coolant temperature, the upper coolant temperature switch point being defined by an upper coolant temperature above which a coolant temperature signal from the second source that is increasing from below the upper coolant temperature switch point will disallow the idle speed control from exercising control of idle speed, and the lower coolant temperature switch point being defined by a lower coolant temperature below which a coolant temperature signal from the second source that is decreasing from above the lower coolant temperature switch point will allow the idle speed control to exercise control of idle speed.
- 6. An idle speed control for an internal combustion engine as set forth in claim 1 in which the processor comprises a proportional and integral control that processes an error signal developed from engine coolant temperature feedback to the processor to develop the idle speed control signal.
- 7. An idle speed control for an intern combustion engine comprising:a first source providing a signal corresponding to bent air temperature; a second source providing a signal corresponding to engine coolant temperature; a third source providing a signal indicating that an engine is running substantially in an idle condition; and a processor that processes the signals from the first source, the second source, and the third source to develop an idle speed control signal for controlling engine idle speed by regulating the engine coolant temperature to a defined coolant temperature when the engine is running in an idle condition and the ambient air temperature does not concurrently exceed a defined air temperature; in which the processor comprises a proportional and integral control that processes an error signal developed from engine coolant temperature feedback to the processor to develop the idle speed control signal, and in which the processor further includes at least one limiter circuit having an input coupled to an output of the proportional and integral control for limiting at least one of, maximum value of and maximum rate-of-change of, an output signal of the proportional and integral control, and in which the at least one limiter circuit further comprises an output at which the idle speed control signal is provided.
- 8. An idle speed control for an internal combustion engine as set forth in claim 7 in which the at least one limiter circuit comprises two limiter circuits, one for limiting maximum value of an output signal of the proportional and integral control, and another for limiting maximum rate-of-change of the output signal of the proportional and integral control.
- 9. An idle speed control for an internal combustion engine comprising:a first source providing a signal corresponding ambient air temperature a second source providing a signal corresponding to engine coolant temperature; a third source providing a signal indicating that an engine is running substantially in an idle condition; and a processor that processes the signals from the first source, the second source, and the third source to develop an idle speed control signal for controlling engine idle speed by regulating the engine coolant temperature to a defined coolant temperature when the engine is ruing in an idle condition and the ambient air temperature does not concurrently exceed a defined air temperature; and further including an error detector associated with the processor for issuing a fault signal when the engine idle speed exceeds a defined maximum idle speed and the temperature of engine coolant fails to decrease to at least a defined coolant temperature.
- 10. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain comprising:multiple sources providing respective signals relating to respective parameters of automotive vehicle operation, one of which signals is an ambient air temperature signal; and a processor that processes the respective signals to develop an idle speed control signal that controls engine idle speed when the engine is running in an idle condition and the ambient air temperature does not concurrently exceed a defined temperature for any ambient air temperature below the defined temperature, but not when ambient air temperature exceeds the defined temperature.
- 11. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain as set forth in claim 10 in which another of the signals from the sources is an engine coolant temperature signal, and the processor processes the engine coolant temperature signal as feedback to cause the idle speed control signal to regulate the engine coolant temperature to a defined coolant temperature.
- 12. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain as set forth in claim 11 in which the processor processes the engine coolant temperature signal as feedback to cause the idle speed control signal to regulate the engine coolant temperature to substantially 63° C. (145.4° F.).
- 13. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain as set forth in claim 11 in which the processor processes the engine coolant temperature signal as feedback to cause the idle speed control signal to regulate the engine coolant temperature to a defined coolant temperature when the ambient air temperature does not concurrently exceed substantially 0° C. (32° F.).
- 14. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain as set forth in claim 11 in which the processor processes the engine coolant temperature signal as feedback to cause the idle speed control signal to regulate the engine coolant temperature to substantially 63° C. (145.4° F.) when the ambient air temperature does not concurrently exceed substantially 0° C. (32° F.).
- 15. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain as set forth in claim 11 in which the processor comprises a first hysteresis characteristic that defines upper and lower air temperature switch points for ambient air temperature, the upper air temperature switch point being defined by an upper air temperature above which the ambient air temperature signal, when increasing from below the upper air temperature switch point, will disallow the idle speed control from exercising control of idle speed, and the lower air temperature switch point being defined by a lower air temperature below which the ambient air temperature signal, when decreasing from above the lower air temperature switch point will allow the idle speed control to exercise control of idle speed, and the processor comprises a second hysteresis characteristic that defines upper and lower coolant temperature switch points for engine coolant temperature, the upper coolant temperature switch point being defined by an upper coolant temperature above which the coolant temperature signal, when increasing from below the upper coolant temperature switch point, will disallow the idle speed control from exercising control of idle speed, and the lower coolant temperature switch point being defined by a lower coolant temperature below which the coolant temperature signal, when decreasing from above the lower coolant temperature switch point, will allow the idle speed control to exercise control of idle speed.
- 16. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain as set forth in claim 11 in which the processor comprises a proportional and integral control that processes an error signal developed from engine coolant temperature feedback to the processor to develop the idle speed control signal.
- 17. An idle speed control for an internal combustion engine that powers an automotive vehicle via a vehicle drivetrain as set forth in claim 11 further including an error detector associated with the processor for issuing a fault signal when the engine idle speed exceeds a defined maximum idle speed and the temperature of engine coolant fails to decrease to at least a defined coolant temperature.
- 18. An idle speed control for an internal combustion engine that power an automotive vehicle via a vehicle drivetrain comprising:multiple sources providing respective signals relating to respective parameters of automotive vehicle operation, one of which signals is an ambient air temperature signal; and a processor that processes the respective signals to develop an idle speed control signal that controls engine idle speed when the engine is running in an idle condition and the ambient air temperature does not concurrently exceed a defined temperature; in which the processor comprises a proportional and integral control that processes an error signal developed from engine coolant temperature feedback to the processor to develop the idle speed control signal, and in which the processor further includes at least one limiter circuit having an input coupled to an output of the proportional and integral control for limiting at least one of, maximum value of and maximum rate-of-change of, an output signal of the proportional and integral control, and in which the at least one limiter circuit further comprises an output at which the idle speed control signal is provided, the at least one limiter circuit comprises two limiter circuits, one for limiting maximum value of an output signal of the proportional and integral control, and another for limiting maximum rate-of-change of the output signal of the proportional and integral control.
Parent Case Info
This is a division of application Ser. No. 08/962,587, filed Oct. 31, 1997.
US Referenced Citations (7)