Method and system for fuel control in a vehicle propulsion system
10161348 ยท 2018-12-25
Inventors
Cpc classification
F02D2200/0608
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2250/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/3854
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/3082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel system for a vehicle propulsion system includes a fuel temperature determination module that determines a temperature of a fuel, a fuel pressure determination module that determines a pressure of the fuel, a prime determination module that determines whether the determined fuel temperature is above a vaporization temperature on a predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature, and a controller programmed to command operation of a fuel pump in response to the prime determination module determining that the determined fuel temperature is above a vaporization temperature on the predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature.
Claims
1. A fuel system for a vehicle propulsion system, the system comprising: a fuel temperature determination module that determines a temperature of a fuel; a fuel pressure determination module that determines a pressure of the fuel; a prime determination module that determines whether the determined fuel temperature is above a vaporization temperature on a predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature; and a controller programmed to command operation of a fuel pump in response to the prime determination module determining that the determined fuel temperature is above a vaporization temperature on the predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature.
2. The fuel system of claim 1, further comprising an engine oil temperature sensor that senses a temperature of engine oil in the vehicle propulsion system, wherein the fuel temperature determination module estimates a temperature of the fuel based upon the engine oil temperature.
3. The fuel system of claim 1, further comprising a coolant temperatures sensor that senses a temperature of a coolant in the vehicle propulsion system, wherein the fuel temperature determination module estimates a temperature of the fuel based upon the coolant temperature.
4. The fuel system of claim 1, further comprising a fuel rail pressure sensor that senses a temperature at the fuel rail pressure sensor, wherein the fuel temperature determination module estimates a temperature of the fuel based upon the temperature at the fuel rail pressure sensor.
5. The fuel system of claim 1, further comprising: a fuel tank; a low pressure fuel pump having an inlet in communication with the fuel tank; a first fuel line in communication with an outlet of the low pressure fuel pump and in communication with an inlet of a high pressure fuel pump; and a second fuel line in communication with an outlet of the high pressure fuel pump an in communication with a fuel inlet of an engine in the vehicle propulsion system, and wherein the controller commands operation of the low pressure fuel pump in response to the prime determination module determining that the determined fuel temperature is above a vaporization temperature on the predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature.
6. The fuel system of claim 5, further comprising a fuel pressure sensor that senses a fuel pressure within the first fuel line and wherein the fuel pressure determination module determines a pressure of the fuel based upon a fuel pressure signal from the fuel pressure sensor.
7. The fuel system of claim 1, wherein the predetermined distillation curve is offset below a distillation curve of an actual fuel by a predetermined amount.
8. The fuel system of claim 1, wherein the controller commands operation of the fuel pump to a pressure above the predetermined distillation curve in response to the prime determination module determining that the determined fuel temperature is above a vaporization temperature on the predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature.
9. A vehicle propulsion system for a vehicle, the vehicle propulsion system comprising: an internal combustion engine; a fuel rail in communication with the internal combustion engine; a high pressure fuel pump having an outlet in communication with the fuel rail; a fuel line in communication with an inlet of the high pressure fuel pump; a low pressure fuel pump having an outlet in communication with the fuel line and having an inlet in communication with fuel tank; a controller that is programmed to: determine a temperature of the fuel; determine a pressure of the fuel; determine whether the determined fuel temperature is above a vaporization temperature on a predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature; and command operation of the low pressure fuel pump in response to the prime determination module determining that the determined fuel temperature is above a vaporization temperature on the predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature.
10. The vehicle propulsion system of claim 9, further comprising an engine oil temperature sensor that senses a temperature of engine oil in the vehicle propulsion system, wherein the fuel temperature determination module estimates a temperature of the fuel based upon the engine oil temperature.
11. The vehicle propulsion system of claim 9, further comprising a coolant temperatures sensor that senses a temperature of a coolant in the vehicle propulsion system, wherein the fuel temperature determination module estimates a temperature of the fuel based upon the coolant temperature.
12. The vehicle propulsion system of claim 9, further comprising a fuel rail pressure sensor that senses a temperature at the fuel rail pressure sensor, wherein the fuel temperature determination module estimates a temperature of the fuel based upon the temperature at the fuel rail pressure sensor.
13. The fuel system of claim 9, further comprising a fuel pressure sensor that senses a fuel pressure within the fuel line and wherein the fuel pressure determination module determines a pressure of the fuel based upon a fuel pressure signal from the fuel pressure sensor.
14. The fuel system of claim 9, wherein the predetermined distillation curve is offset below a distillation curve of an actual fuel by a predetermined amount.
15. The fuel system of claim 9, wherein the controller commands operation of the low pressure fuel pump to a pressure above the predetermined distillation curve in response to the prime determination module determining that the determined fuel temperature is above a vaporization temperature on the predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature.
16. A method for operating a vehicle propulsion system having an internal combustion engine, a fuel rail in communication with the internal combustion engine, a high pressure fuel pump having an outlet in communication with the fuel rail, a fuel line in communication with an inlet of the high pressure fuel pump, and a low pressure fuel pump having an outlet in communication with the fuel line and having an inlet in communication with fuel tank, the method comprising determining a temperature of the fuel; determining a pressure of the fuel; determining whether the determined fuel temperature is above a vaporization temperature on a predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature; and commanding operation of the low pressure fuel pump in response to the prime determination module determining that the determined fuel temperature is above a vaporization temperature on the predetermined distillation curve and the fuel pressure is below the predetermined distillation curve at the determined fuel temperature.
17. The method of claim 16, wherein the vehicle propulsion system further includes an engine oil temperature sensor that senses a temperature of engine oil in the vehicle propulsion system, and wherein estimating a temperature of the fuel is based upon the engine oil temperature.
18. The method of claim 16, wherein the vehicle propulsion system further includes a coolant temperatures sensor that senses a temperature of a coolant in the vehicle propulsion system, and estimating a temperature of the fuel is based upon the coolant temperature.
19. The method of claim 16, wherein the vehicle propulsion system further includes a fuel rail pressure sensor that senses a temperature at the fuel rail pressure sensor, wherein estimating a temperature of the fuel is based upon the temperature at the fuel rail pressure sensor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
(2)
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DETAILED DESCRIPTION
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(8) In an exemplary embodiment, the fuel temperature estimation module 206 may receive temperature, fuel flow, and pressure signals and estimate a temperature of the fuel in the fuel system based upon those signals. For example, the fuel temperature estimation module 206 may calculate an estimated fuel temperature based upon the following:
Ft=(X*Ot)+(Y*Ct)+(Z*Ff)(1)
(9) Where: Ft is the estimated fuel temperature, Ot is an engine oil temperature, X is a coefficient relating the engine oil temperature to the estimated fuel temperature, Ct is a coolant temperature, Y is a coefficient relating coolant temperature to estimated fuel temperature, Ff is a fuel flow, and Z is a coefficient relating fuel flow to the estimated fuel temperature. The coefficients may be determined experimentally. The fuel temperature estimation module 206 sends the estimated fuel temperature to the comparison module 204. In response, the comparison module 204 compares the estimated fuel temperature to a boil point temperature on a predetermined fuel distillation curve based upon a given fuel pressure to determine whether that estimated fuel temperature is above the boil point temperature. If the comparison module 204 determines that the estimated fuel temperature is above the boil point temperature, then the comparison module 204 may send a prime signal to the low pressure pump controller 202 which, in response, actuates the low pressure pump.
(10) Referring now to
(11) In general, given a fuel temperature and pressure, a fuel distillation curve may indicate whether the fuel may be in a vapor phase suspect state or not and a decision may then be made about whether a fuel pump should be actuated to prime the fuel system and return the fuel to a liquid phase. The area above any fuel distillation curve as indicated generally by arrow 310 indicates that any temperature and pressure that is located above a corresponding fuel distillation curve indicates that the fuel may be in a vapor phase suspect state. The area below any fuel distillation curve as indicated generally by arrow 312 indicates that any temperature and pressure that is located below a corresponding fuel distillation curve indicates that the fuel should be in a liquid phase and priming of the fuel system might not be necessary.
(12)
(13) In step 408, the fuel temperature estimation module 206 estimates a fuel temperature based upon the available signals, and provides the estimated fuel temperature to the comparison module 204. The method then continues to step 410 where the comparison module 204 compares the estimate fuel temperature received from the fuel temperature estimation module 206 to a vaporization temperature on a predetermined fuel distillation curve 308, a representation of which is stored in the threshold distillation curve module 200. If, in step 410, the comparison module 204 determines that the estimated fuel temperature is above the corresponding vaporization temperature, then the method continues to step 412. In step 412, the comparison module 204 sends a prime command signal to the low pressure pump controller 202 which, in response, operates the low pressure pump 104 to prime the fuel system.
(14) If, however, in step 404, the fuel system controller 118 determines that a trigger event has not occurred, or if in step 410, the comparison module 204 determines that the estimated fuel temperature is not above the vaporization temperature, then the method continues to step 414 where the method ends.
(15) The trigger event referenced in the above discussion may take the form of any number of potential conditions. For example, a trigger event may correspond to a vehicle wake up where the vehicle may receive a signal that indicates that an engine start might be imminent such as some form of driver input that may be detected. In some instances, a vehicle may wake up in response to a door opening, a key input or the like without limitation. When the vehicle wakes up the system/method may then sense the relevant temperatures and pressures and make a determination whether a prime is necessary or not.
(16) This description is merely illustrative in nature and is in no way intended to limit the disclosure, its application, or uses. The broad teachings of the disclosure can be implemented in a variety of forms. Therefore, while this disclosure includes particular examples, the true scope of the disclosure should not be so limited since other modifications will become apparent upon a study of the drawings, the specification, and the following claims.