WO2017174465A1 - Fuel injection equipment and control method - Google Patents

Fuel injection equipment and control method Download PDF

Info

Publication number
WO2017174465A1
WO2017174465A1 PCT/EP2017/057746 EP2017057746W WO2017174465A1 WO 2017174465 A1 WO2017174465 A1 WO 2017174465A1 EP 2017057746 W EP2017057746 W EP 2017057746W WO 2017174465 A1 WO2017174465 A1 WO 2017174465A1
Authority
WO
WIPO (PCT)
Prior art keywords
pressure
fuel
pump
high pressure
transfer pump
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/EP2017/057746
Other languages
French (fr)
Inventor
Andrew Male
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Delphi International Operations Luxembourg SARL
Original Assignee
Delphi International Operations Luxembourg SARL
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Delphi International Operations Luxembourg SARL filed Critical Delphi International Operations Luxembourg SARL
Publication of WO2017174465A1 publication Critical patent/WO2017174465A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02MSUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
    • F02M63/00Other fuel-injection apparatus having pertinent characteristics not provided for in groups F02M39/00 - F02M57/00 or F02M67/00; Details, component parts, or accessories of fuel-injection apparatus, not provided for in, or of interest apart from, the apparatus of groups F02M39/00 - F02M61/00 or F02M67/00; Combination of fuel pump with other devices, e.g. lubricating oil pump
    • F02M63/02Fuel-injection apparatus having several injectors fed by a common pumping element, or having several pumping elements feeding a common injector; Fuel-injection apparatus having provisions for cutting-out pumps, pumping elements, or injectors; Fuel-injection apparatus having provisions for variably interconnecting pumping elements and injectors alternatively
    • F02M63/0225Fuel-injection apparatus having a common rail feeding several injectors ; Means for varying pressure in common rails; Pumps feeding common rails
    • F02M63/023Means for varying pressure in common rails
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02MSUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
    • F02M63/00Other fuel-injection apparatus having pertinent characteristics not provided for in groups F02M39/00 - F02M57/00 or F02M67/00; Details, component parts, or accessories of fuel-injection apparatus, not provided for in, or of interest apart from, the apparatus of groups F02M39/00 - F02M61/00 or F02M67/00; Combination of fuel pump with other devices, e.g. lubricating oil pump
    • F02M63/02Fuel-injection apparatus having several injectors fed by a common pumping element, or having several pumping elements feeding a common injector; Fuel-injection apparatus having provisions for cutting-out pumps, pumping elements, or injectors; Fuel-injection apparatus having provisions for variably interconnecting pumping elements and injectors alternatively
    • F02M63/0225Fuel-injection apparatus having a common rail feeding several injectors ; Means for varying pressure in common rails; Pumps feeding common rails
    • F02M63/0265Pumps feeding common rails
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D41/00Electrical control of supply of combustible mixture or its constituents
    • F02D41/30Controlling fuel injection
    • F02D41/3082Control of electrical fuel pumps
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D41/00Electrical control of supply of combustible mixture or its constituents
    • F02D41/30Controlling fuel injection
    • F02D41/38Controlling fuel injection of the high pressure type
    • F02D41/3809Common rail control systems
    • F02D41/3836Controlling the fuel pressure
    • F02D41/3845Controlling the fuel pressure by controlling the flow into the common rail, e.g. the amount of fuel pumped
    • F02D41/3854Controlling the fuel pressure by controlling the flow into the common rail, e.g. the amount of fuel pumped with elements in the low pressure part, e.g. low pressure pump
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02MSUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
    • F02M63/00Other fuel-injection apparatus having pertinent characteristics not provided for in groups F02M39/00 - F02M57/00 or F02M67/00; Details, component parts, or accessories of fuel-injection apparatus, not provided for in, or of interest apart from, the apparatus of groups F02M39/00 - F02M61/00 or F02M67/00; Combination of fuel pump with other devices, e.g. lubricating oil pump
    • F02M63/02Fuel-injection apparatus having several injectors fed by a common pumping element, or having several pumping elements feeding a common injector; Fuel-injection apparatus having provisions for cutting-out pumps, pumping elements, or injectors; Fuel-injection apparatus having provisions for variably interconnecting pumping elements and injectors alternatively
    • F02M63/0225Fuel-injection apparatus having a common rail feeding several injectors ; Means for varying pressure in common rails; Pumps feeding common rails
    • F02M63/0275Arrangement of common rails
    • F02M63/028Returnless common rail system
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D2200/00Input parameters for engine control
    • F02D2200/02Input parameters for engine control the parameters being related to the engine
    • F02D2200/06Fuel or fuel supply system parameters
    • F02D2200/0602Fuel pressure

Definitions

  • the present invention relates to a fuel injection equipment and to a method of operating such equipment.
  • a fuel injection equipment comprises a low pressure (LP) system wherein a transfer pump (TP) sucking fuel from a low pressure tank flows said fuel toward a high pressure (HP) system wherein a high pressure pump (HPP) pressurizes said fuel and flows it toward a high pressure reservoir, also known as a common rail, prior to deliver the pressurized fuel to a plurality of fuel injectors that spray the pressurized fuel upon demand into combustion chambers of an internal combustion engine.
  • LP low pressure
  • HP high pressure
  • HP high pressure pump
  • HP high pressure pump
  • HP high pressure pump
  • the total quantity of fuel flowing from the HP system into the engine is dependent on the demanded engine power output.
  • the transfer pump is mechanically driven from the HPP, or directly from the engine and, its delivery is not closely linked to the requirements of the HP system.
  • IMV inlet metering valve
  • the function of the IMV causes pressure drop in the fuel that passes though it meaning that the pressure generated by the TP is higher than that required by the HPP, this results in more energy being lost in surplus of the fuel flowing back to the low pressure tank.
  • a fuel injection equipment comprising a transfer pump adapted to suck fuel from a low pressure tank and, a high pressure pump adapted to receive fuel from said transfer pump.
  • the fuel injection equipment is arranged so that, in use, the fuel flow exiting the transfer pump is integrally pressurized in the high pressure pump.
  • the transfer pump is actuated by an electrical motor and, in use, the electric transfer pump is operated and controlled to regulate the output flow of the high pressure pump.
  • the fuel injection equipment further comprises a high pressure reservoir, such as a well-known common-rail, adapted to store fuel received from the high pressure pump, a pressure sensor adapted to measure the pressure inside the high pressure reservoir and, an electronic command unit adapted to control the transfer pump as a function of the pressure information received from the pressure sensor.
  • a high pressure reservoir such as a well-known common-rail, adapted to store fuel received from the high pressure pump
  • a pressure sensor adapted to measure the pressure inside the high pressure reservoir
  • an electronic command unit adapted to control the transfer pump as a function of the pressure information received from the pressure sensor.
  • the invention further extends to an electronic command unit adapted to control a fuel injection equipment as set in the preceding paragraphs.
  • the invention further extends to a method for controlling a fuel injection equipment when executed by an ECU as described in the previous paragraph, the method comprising the steps of:
  • the method may further comprise the following step:
  • the method may further comprise the following step:
  • FS is the flow rate of fuel supplied by the transfer pump to the high pressure pump
  • FI is the flow rate of fuel injected into the engine.
  • LI is the pump leakage
  • L2 is the injector leakage
  • the determining step b) may be performed by executing the following step:
  • the transfer pump is operated by a variable revolution speed electrical motor and wherein step c) is performed by tuning the electric power sent to the motor so that the revolution speed of the motor is adjusted.
  • the invention further extends to a software able to execute the steps of the previous method when said software is loaded onto an ECU as previously mentioned.
  • Figure 1 is a schematic representation of a fuel injection equipment as per the invention.
  • Figure 2 is a diagram of a method controlling the equipment of figure 1.
  • a fuel injection equipment 10 comprising a low pressure supply system 12, a high pressure pump 14, a high pressure reservoir 16, also known as a common rail, which internal pressure P16 is measured by a pressure sensor 18.
  • six fuel injectors 20 are connected to the common rail, each injector 20 being adapted to spray fuel in a combustion chamber of an internal combustion engine, not represented.
  • the figure represents six injectors, the invention can perfectly be adapted to any other engine having another number of cylinders, three, four, eight...
  • the low pressure supply system 12 comprises a transfer pump 22 operated by an electric motor 24, said pump 22 sucking fuel from a general low pressure tank, not represented.
  • the quantity of fuel exiting the transfer pump 22 is proportional, or at least directly linked, to the revolution speed RPM24 of the motor 24.
  • the output flow exiting the transfer pump 22 is filtered through a filter 26 prior to delivery to the high pressure pump 14.
  • the equipment 10 is not provided with any inlet metering valve controlling the high pressure pump inlet.
  • An electronic command unit (ECU) 28 receives from the engine a plurality of signals SI informing the ECU 28 about the state of operation of the engine and about the performance expected from the engine.
  • Engine revolution speed, vehicle speed, throttle pedal position are examples of information signals SI received by the ECU 28.
  • the ECU 28 generates a plurality of command signals S2 sent to the components of the engine 10.
  • the ECU 28 determines the flow rate of fuel FI required to be injected into the engine in order in order for the engine to match said engine demand ED. Opening and closing of the injectors, fuel pressure are examples of command signals S2.
  • the ECU 28 permanently receives from the sensor 18 an information signal SI 8, that is one of the signals SI, corresponding to the rail pressure P16 also, the ECU 28 generates and sends to the electric motor 24 a command signal S24, that is one of the signals S2, adjusting the revolution speed RPM24 of the motor 24 to the engine demand ED.
  • the ECU 28 performs a dynamic and permanent closed loop control between the rail pressure P16 and the electric motor revolution speed RPM24.
  • the ECU 28 determines, as a function of the received information signals SI, SI 8, a flow rate FI of fuel required to be injected in the engine and the corresponding pressure required PR in the common rail 16 in order for the engine to match the engine demand ED.
  • the ECU 28 compares said pressure required PR to the actual rail pressure P16 and, it calculates a necessary fuel flow that must be pressurized and that must enter the rail.
  • the electric motor revolution speed RPM24 can be determined using an open loop method, whereby the information signals S 1 are evaluated by the ECU 28. Information on the rail pressure P16, engine speed and injection delivery period are used to calculate flow from the high pressure pump 14.
  • a plunger reciprocally translates in a bore therein performing a pumping cycle, between a bottom dead centre (BDC) position and a top dead centre (TDC) position, during which the volume of a compression chamber is varied and fuel is pressurized.
  • BDC bottom dead centre
  • TDC top dead centre
  • the pump leakage LI occurs when the pressure in the compression chamber rises and, said leakage LI depends upon said pressure in the compression chamber, upon the fuel viscosity, which is temperature dependent and, upon the pumping period. Indeed if the pump operates at full capacity, the compression chamber is totally filled with fuel and, the pressure rises as soon as the plunger lifts from BDC toward TDC and, if the pump only operates at half capacity, the compression chamber is only half filled with fuel and, the pressure starts rising after the plunger has already lifted for half the stroke between BDC and TDC.
  • the pump leakage LI varies from one pump to another as being dependent upon the specific functional clearance between a plunger and its bore.
  • the pressurized fuel enters the injector 20 and, part of said fuel is not injected and is returned, via a return line, to the low pressure tank.
  • the pressurized fuel entering in the injector flows directly back to an outlet.
  • This injector leakage L2 is typically function of the pressure of the entering fuel and also of the operational temperature of said fuel. Should the pump or injector be individually characterized at the end of the production line, the individual leakages LI, L2, of each unit can be measured under a full range of operational conditions and can be recorded for future use in the ECU 28.
  • pump leakage LI or injector leakage L2 would be statistically determined and recorded for future use in the ECU 28.
  • injectors are individually characterized and pump are statistically characterized.
  • a flow rate FS of fuel supplied by the transfer pump to the high pressure pump can be determined by adding the pump leakage LI and the injector leakage L2 to the flow rate FI of fuel injected into the engine required to match the engine demand ED. This can be expressed in the following equation:
  • the ECU 28 Once the flow rate FI of fuel required to be injected into the engine is determined, the ECU 28 generates the adapted electric motor command signal S24 ordering to adjust the revolution speed RPM24 of the motor 24 so that the transfer pump 22 adjusts and only sucks from the low pressure tank said necessary quantity of fuel and transfers it integrally to the high pressure pump 18. Since this is a dynamic closed loop process, the ECU 28 regulates the rail pressure P16 by managing the electric motor 24 and, there is no need of any metering valve arranged on the inlet of the high pressure pump. The metering of the inlet flow is directly done by regulating the electric motor revolution speed.
  • the ECU 28 performs this dynamic closed loop control by running a software 30 embedded into the ECU 28, the software 30 executing the steps of a method 100 now described in reference to figure 2.
  • the method 100 comprises the steps:
  • - determining 110 the flow rate FI of fuel required to be injected in the engine and the pressure required PR in the high pressure reservoir so the engine demand ED is met. This determination is done upon reception of a plurality of information signals SI, S I 8, informing about the state of operation of the engine and about the performance demanded to the engine.
  • the signal S18 informing about the actual pressure P16 in the high pressure reservoir 16 is one of the information signals S 1 ;
  • determining the necessary fuel flow FF is done by the method 100 in adding a third alternative to the comparing step 120, said third alternative being:
  • the method 100 continues to the following step:
  • the method executes the equation (eq.), this is calculation step 122, and rapidly determines a good approximate of the electric engine speed RPM24.
  • the method can perform a searching step 124 where the necessary fuel flow FF required to enter the high pressure reservoir 16 is searched in the computed map M recorded in a memory of the ECU 28, so that the pressure P16 in the rail 16 matches said required pressure PR.

Landscapes

  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Fuel-Injection Apparatus (AREA)
  • Electrical Control Of Air Or Fuel Supplied To Internal-Combustion Engine (AREA)

Abstract

A fuel injection equipment (10) comprising a transfer pump (22), a high pressure pump (14) wherein, in use, the fuel flow exiting the transfer pump (22) is integrally pressurized in the high pressure pump (14).

Description

Fuel injection equipment and control method TECHNICAL FIELD
The present invention relates to a fuel injection equipment and to a method of operating such equipment.
BACKGROUND OF THE INVENTION
A fuel injection equipment comprises a low pressure (LP) system wherein a transfer pump (TP) sucking fuel from a low pressure tank flows said fuel toward a high pressure (HP) system wherein a high pressure pump (HPP) pressurizes said fuel and flows it toward a high pressure reservoir, also known as a common rail, prior to deliver the pressurized fuel to a plurality of fuel injectors that spray the pressurized fuel upon demand into combustion chambers of an internal combustion engine. The total quantity of fuel flowing from the HP system into the engine is dependent on the demanded engine power output. In conventional systems the transfer pump is mechanically driven from the HPP, or directly from the engine and, its delivery is not closely linked to the requirements of the HP system. Consequently the flow from the LP system to the HP system must be controlled to meet the HP system requirements and this is achieved with an inlet metering valve (IMV) arranged on the inlet of the HPP. A command unit generally controls the equipment and, in particular, it controls the IMV which varies the HPP inlet flow according to a command signal computed in
consideration of the actual rail pressure measured by a sensor and, of the fuel pressure demanded by the engine. The surplus of fuel flown from the TP is sent back to the low pressure tank, this return representing an energy loss.
The function of the IMV causes pressure drop in the fuel that passes though it meaning that the pressure generated by the TP is higher than that required by the HPP, this results in more energy being lost in surplus of the fuel flowing back to the low pressure tank.
Furthermore the inclusion of the IMV represents additional cost. SUMMARY OF THE INVENTION
Accordingly, it is an object of the present invention to resolve the above mentioned problems in providing a fuel injection equipment comprising a transfer pump adapted to suck fuel from a low pressure tank and, a high pressure pump adapted to receive fuel from said transfer pump.
Advantageously, the fuel injection equipment is arranged so that, in use, the fuel flow exiting the transfer pump is integrally pressurized in the high pressure pump. Specifically, the transfer pump is actuated by an electrical motor and, in use, the electric transfer pump is operated and controlled to regulate the output flow of the high pressure pump.
The fuel injection equipment further comprises a high pressure reservoir, such as a well-known common-rail, adapted to store fuel received from the high pressure pump, a pressure sensor adapted to measure the pressure inside the high pressure reservoir and, an electronic command unit adapted to control the transfer pump as a function of the pressure information received from the pressure sensor.
The invention further extends to an electronic command unit adapted to control a fuel injection equipment as set in the preceding paragraphs.
The invention further extends to a method for controlling a fuel injection equipment when executed by an ECU as described in the previous paragraph, the method comprising the steps of:
a) determining the flow rate of fuel required to be injected in the engine and, the corresponding pressure required to be in the high pressure reservoir; b) determining the necessary fuel flow required to enter the high pressure reservoir so the pressure in the rail matches said required pressure;
c) adjusting the actuation of the transfer pump so that said transfer pump adjusts to only suck and send to the high pressure pump the necessary fuel flow determined at step b).
The method may further comprise the following step:
dl) comparing the pressure required determined at step a to the actual pressure measured by the pressure sensor, wherein said step c) is performed in order to perform determining step b). The method may further comprise the following step:
d2) with input of the pressure required determined at step a),
executing a recorded equation
(eq.) FS = FI + LI + L2, where
FS is the flow rate of fuel supplied by the transfer pump to the high pressure pump;
FI is the flow rate of fuel injected into the engine.
LI is the pump leakage;
L2 is the injector leakage.
In a variant to the step d2), the determining step b) may be performed by executing the following step:
d3) with input of the pressure required determined at step a),
searching in a reference map, recorded in a memory of the ECU, the necessary fuel flow required to enter the high pressure reservoir so the pressure in the rail matches said required pressure.
Also, the transfer pump is operated by a variable revolution speed electrical motor and wherein step c) is performed by tuning the electric power sent to the motor so that the revolution speed of the motor is adjusted.
The invention further extends to a software able to execute the steps of the previous method when said software is loaded onto an ECU as previously mentioned.
BRIEF DESCRIPTION OF THE DRAWINGS
The present invention is now described by way of example with reference to the accompanying drawings in which:
Figure 1 is a schematic representation of a fuel injection equipment as per the invention.
Figure 2 is a diagram of a method controlling the equipment of figure 1.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
In reference to figure 1 is described a fuel injection equipment 10 comprising a low pressure supply system 12, a high pressure pump 14, a high pressure reservoir 16, also known as a common rail, which internal pressure P16 is measured by a pressure sensor 18. Also, six fuel injectors 20 are connected to the common rail, each injector 20 being adapted to spray fuel in a combustion chamber of an internal combustion engine, not represented. Although the figure represents six injectors, the invention can perfectly be adapted to any other engine having another number of cylinders, three, four, eight...
The low pressure supply system 12 comprises a transfer pump 22 operated by an electric motor 24, said pump 22 sucking fuel from a general low pressure tank, not represented. The quantity of fuel exiting the transfer pump 22 is proportional, or at least directly linked, to the revolution speed RPM24 of the motor 24. The output flow exiting the transfer pump 22 is filtered through a filter 26 prior to delivery to the high pressure pump 14. As can be noted on the figure, the equipment 10 is not provided with any inlet metering valve controlling the high pressure pump inlet.
An electronic command unit (ECU) 28 receives from the engine a plurality of signals SI informing the ECU 28 about the state of operation of the engine and about the performance expected from the engine..
Engine revolution speed, vehicle speed, throttle pedal position are examples of information signals SI received by the ECU 28. In turn, the ECU 28 generates a plurality of command signals S2 sent to the components of the engine 10. In particular the ECU 28 determines the flow rate of fuel FI required to be injected into the engine in order in order for the engine to match said engine demand ED. Opening and closing of the injectors, fuel pressure are examples of command signals S2.
In particular, the ECU 28 permanently receives from the sensor 18 an information signal SI 8, that is one of the signals SI, corresponding to the rail pressure P16 also, the ECU 28 generates and sends to the electric motor 24 a command signal S24, that is one of the signals S2, adjusting the revolution speed RPM24 of the motor 24 to the engine demand ED.
More precisely, the ECU 28 performs a dynamic and permanent closed loop control between the rail pressure P16 and the electric motor revolution speed RPM24. The ECU 28 determines, as a function of the received information signals SI, SI 8, a flow rate FI of fuel required to be injected in the engine and the corresponding pressure required PR in the common rail 16 in order for the engine to match the engine demand ED. The ECU 28 compares said pressure required PR to the actual rail pressure P16 and, it calculates a necessary fuel flow that must be pressurized and that must enter the rail.
Alternatively the electric motor revolution speed RPM24 can be determined using an open loop method, whereby the information signals S 1 are evaluated by the ECU 28. Information on the rail pressure P16, engine speed and injection delivery period are used to calculate flow from the high pressure pump 14.
In the high pressure pump 14, a plunger reciprocally translates in a bore therein performing a pumping cycle, between a bottom dead centre (BDC) position and a top dead centre (TDC) position, during which the volume of a compression chamber is varied and fuel is pressurized. During said pumping cycle the majority of the fresh fuel that has entered the compression chamber is pressurized and flown to the rail 16. A minor quantity of the fuel leaks between the plunger and the bore, said pump leakage LI being collected and sent back to the low pressure tank.
The pump leakage LI occurs when the pressure in the compression chamber rises and, said leakage LI depends upon said pressure in the compression chamber, upon the fuel viscosity, which is temperature dependent and, upon the pumping period. Indeed if the pump operates at full capacity, the compression chamber is totally filled with fuel and, the pressure rises as soon as the plunger lifts from BDC toward TDC and, if the pump only operates at half capacity, the compression chamber is only half filled with fuel and, the pressure starts rising after the plunger has already lifted for half the stroke between BDC and TDC.
Furthermore, due to manufacturing variations, the pump leakage LI varies from one pump to another as being dependent upon the specific functional clearance between a plunger and its bore.
Also, after the rail, the pressurized fuel enters the injector 20 and, part of said fuel is not injected and is returned, via a return line, to the low pressure tank. This represents injector leakage L2 from control valve clearances and control flow. The pressurized fuel entering in the injector flows directly back to an outlet. This injector leakage L2 is typically function of the pressure of the entering fuel and also of the operational temperature of said fuel. Should the pump or injector be individually characterized at the end of the production line, the individual leakages LI, L2, of each unit can be measured under a full range of operational conditions and can be recorded for future use in the ECU 28.
Should the pump or injector only be statistically characterized, pump leakage LI or injector leakage L2 would be statistically determined and recorded for future use in the ECU 28.
Generally, injectors are individually characterized and pump are statistically characterized.
Consequently, a flow rate FS of fuel supplied by the transfer pump to the high pressure pump can be determined by adding the pump leakage LI and the injector leakage L2 to the flow rate FI of fuel injected into the engine required to match the engine demand ED. This can be expressed in the following equation:
(eq.) FS = FI + LI + L2
This equation (eq.) or, alternatively a map M wherein are pre-recorded the results of the equation (eq.), can be recorded in the ECU 28. Consequently, the speed of the electric motor RPM24 can be rapidly calculated and, even if this may not be perfectly accurate it may be of use for transient operation where important adjustments in motor speed RPM24 are rapidly required. Once said transient situation resumed, engine speed and load have substantially stabilized, the ECU 28 reverts back to the closed loop process.
Once the flow rate FI of fuel required to be injected into the engine is determined, the ECU 28 generates the adapted electric motor command signal S24 ordering to adjust the revolution speed RPM24 of the motor 24 so that the transfer pump 22 adjusts and only sucks from the low pressure tank said necessary quantity of fuel and transfers it integrally to the high pressure pump 18. Since this is a dynamic closed loop process, the ECU 28 regulates the rail pressure P16 by managing the electric motor 24 and, there is no need of any metering valve arranged on the inlet of the high pressure pump. The metering of the inlet flow is directly done by regulating the electric motor revolution speed. In other words, since the closed loop process operated by the ECU 28 is between the rail pressure P16 and the motor 24, one hundred percent (100%) of the fuel sucked by the transfer pump 22 enters the compression chamber of the high pressure pump 14. Once said fuel quantity is pressurized and is flown into the rail 16, the rail pressure P16 equates the pressure required to fulfill the flow rate FI of fuel to be injected in the engine and, the engine demand ED. Here above "integrally" or "100%" are mentioned to clearly distinguish the invention from the prior art equipment's wherein a large portion of the flow exiting the transfer pump is deviated by a metering valve and is returned to the general low pressure tank. The pipe joining the transfer pump to the high pressure pump may be provided with a small hole enabling air to evacuate. Through said small hole may leak a very small quantity of the fuel exiting the transfer pump. Therefore, "integrally", "100%" or other words such "all the flow" are mentioned, and have to be understood, in the present disclosure "to the exception of minor leaks".
The ECU 28 performs this dynamic closed loop control by running a software 30 embedded into the ECU 28, the software 30 executing the steps of a method 100 now described in reference to figure 2.
The method 100 comprises the steps:
- determining 110 the flow rate FI of fuel required to be injected in the engine and the pressure required PR in the high pressure reservoir so the engine demand ED is met. This determination is done upon reception of a plurality of information signals SI, S I 8, informing about the state of operation of the engine and about the performance demanded to the engine. The signal S18 informing about the actual pressure P16 in the high pressure reservoir 16 is one of the information signals S 1 ;
- comparing 120 the required pressure PR to the actual pressure P16 measured by the pressure sensor 18;
- if, said required pressure PR equates the actual pressure PI 6, no adjustment is needed and the method returns to the previous determining 110 step;
- if, said required pressure PR does not equate the actual pressure PI 6, an adjustment is necessary, the method 100 continues to the following step:
- determining 130 the necessary fuel quantity required to enter the high pressure reservoir 16 so the pressure P16 in the rail 16 matches said required pressure PR and; - determining 140 the necessary revolution speed RPM24 of the electric motor 24 so that the transfer pump 22 adjusts to said necessary fuel quantity previously determined, the transfer pump 22 sucking and transferring only the necessary quantity of fuel;
- generating 150 a command signal S24 for piloting the electric motor 24 to the revolution speed determined at the previous step;
- sending 160 to the electric motor 24 said command signal S24.
In an alternative, determining the necessary fuel flow FF is done by the method 100 in adding a third alternative to the comparing step 120, said third alternative being:
- if the required pressure PR and the actual pressure PI 6 largely differ, a major adjustment is necessary, the method 100 continues to the following step:
- with input of the pressure required PR determined at the determining step 110, the method executes the equation (eq.), this is calculation step 122, and rapidly determines a good approximate of the electric engine speed RPM24.
In a variant to this alternative, instead of the calculation step, the method can perform a searching step 124 where the necessary fuel flow FF required to enter the high pressure reservoir 16 is searched in the computed map M recorded in a memory of the ECU 28, so that the pressure P16 in the rail 16 matches said required pressure PR.
LIST OF REFERENCES
P16 rail pressure
51 information signal
52 command signal
S 18 information signal from the pressure sensor
S24 command signal to the electric motor
PR pressure required
QF quantity of fuel
RPM24 revolution speed of the electric motor
M map
VE volumetric efficiency equation of the transfer pump
BDC bottom dead centre position
TDC top dead centre position
FI flow rate of fuel required to be injected in the engine FS flow rate of fuel supplied by the TP to the HPP;
LI pump leakage
L2 injector leakage
ED engine demand 10 fuel injection equipment
12 low pressure supply system
14 high pressure pump - HPP
16 high pressure reservoir - common rail
18 pressure sensor
20 fuel injector
22 transfer pump - TP
24 electric motor
26 filter
28 electronic command unit - ECU
30 software
100 method
1 10 determining step comparing step searching
executing and calculating determining step generating step sending step

Claims

1. Fuel injection equipment (10) comprising a transfer pump (22) adapted to suck fuel from a low pressure tank and, a high pressure pump (14) adapted to receive fuel from said transfer pump (22), characterized in that,
the fuel injection equipment (10) is arranged so that, in use, the fuel flow exiting the transfer pump (22) is integrally pressurized in the high pressure pump
(14) and wherein,
the transfer pump (22) is actuated by an electrical motor (24) and wherein,
in use, the electric transfer pump (22) is operated and controlled to regulate the output flow of the high pressure pump (14).
2. Fuel injection equipment (10) as claimed in the preceding claim further comprising a high pressure reservoir (16) adapted to store fuel received from the high pressure pump (14), a pressure sensor (18) adapted to measure the pressure (PI 6) inside the high pressure reservoir (18) and, an electronic command unit (28) adapted to control the transfer pump (22) as a function of the pressure information received from the pressure sensor (18).
3. Electronic command unit (28) adapted to control a fuel injection equipment (10) as set in any one of the preceding claims.
4. Method (100) for controlling a fuel injection equipment when executed by an ECU (28) as claimed in claim 3, the method comprising the steps of:
a) determining (110) the flow rate (FI) required to be injected in the engine and, the corresponding pressure (PR) required to be in the high pressure reservoir (16);
b) determining (130) the necessary fuel flow (FF) required to enter the high pressure reservoir (16) so the pressure (PI 6) in the rail (16) matches said required pressure (PR);
characterized in that the method (100) further comprises the step: c) adjusting (140, 150, 160) the actuation of the transfer pump (22) so that said transfer pump (22) adjusts to only suck and send to the high pressure pump (14) the necessary fuel flow (FF) determined at step b).
5. Method (100) as claimed in claim 4 further comprising the following step:
dl) comparing (120) the pressure required (PR) determined at step a) to the actual pressure (PI 6) measured by the pressure sensor (18),
and wherein said step c) is performed in order to perform determining (130) step b).
6. Method (100) as claimed in claim 4 wherein the determining (130) step b) is performed by executing the following step:
d2) with input of the flow rate (FI) required to be injected in the engine and of the corresponding pressure (PR) required to be in the high pressure reservoir (16) as determined at step a) executing a recorded equation
(eq.) FS = FI + LI + L2, where
FS is the flow rate of fuel supplied by the transfer pump to the high pressure pump;
FI is the flow rate of fuel injected into the engine.
LI is the pump leakage;
L2 is the injector leakage.
7. Method (100) as claimed in claim 4 wherein the determining (130) step b) is performed by executing the following step:
d3) with input of the flow rate (FI) of fuel required to be injected in the engine, and of the pressure required (PR) determined at step a),
searching (122) in a reference map (M), recorded in a memory of the ECU (28), the necessary fuel flow (FF) required to enter the high pressure reservoir (16) so the pressure (P16) in the rail (16) matches said required pressure (PR).
8. Method (100) as claimed in any one of the claims 5 or 6 wherein the transfer pump (22) is operated by a variable revolution speed electrical motor (24) and wherein step c) is performed by tuning the electric power sent to the motor (24) so that the revolution speed (RPM24) of the motor is adjusted.
9. Software (30) able to execute the steps of the method (100) as claimed in any one of the claims 4 to 8 when said software (30) is loaded onto an ECU (28) as claimed in claim 3.
PCT/EP2017/057746 2016-04-08 2017-03-31 Fuel injection equipment and control method Ceased WO2017174465A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB1605989.1A GB2549140A (en) 2016-04-08 2016-04-08 Fuel injection equipment and control method
GB1605989.1 2016-04-08

Publications (1)

Publication Number Publication Date
WO2017174465A1 true WO2017174465A1 (en) 2017-10-12

Family

ID=58464555

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/EP2017/057746 Ceased WO2017174465A1 (en) 2016-04-08 2017-03-31 Fuel injection equipment and control method

Country Status (2)

Country Link
GB (1) GB2549140A (en)
WO (1) WO2017174465A1 (en)

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1574704A2 (en) * 2004-03-11 2005-09-14 Denso Corporation Fuel injection system having electric low-pressure pump
US20060102149A1 (en) * 2004-11-18 2006-05-18 Toyota Jidosha Kabushiki Kaisha Fuel supply apparatus
WO2011076526A1 (en) * 2009-12-22 2011-06-30 Robert Bosch Gmbh System for feeding fuel from a tank to an internal combustion engine
GB2500889A (en) * 2012-04-02 2013-10-09 Gm Global Tech Operations Inc Method of operating a fuel injection system which corrects for pump efficiency and injector performance
WO2014189458A1 (en) * 2013-05-23 2014-11-27 Scania Cv Ab Method and device for functional control of a high pressure fuel pump
DE102013210816A1 (en) * 2013-06-10 2014-12-11 Robert Bosch Gmbh Fuel delivery device for a fuel injection device of an internal combustion engine

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015048983A1 (en) * 2013-10-04 2015-04-09 Volvo Truck Corporation Fuel injection system for low-viscosity fuels

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1574704A2 (en) * 2004-03-11 2005-09-14 Denso Corporation Fuel injection system having electric low-pressure pump
US20060102149A1 (en) * 2004-11-18 2006-05-18 Toyota Jidosha Kabushiki Kaisha Fuel supply apparatus
WO2011076526A1 (en) * 2009-12-22 2011-06-30 Robert Bosch Gmbh System for feeding fuel from a tank to an internal combustion engine
GB2500889A (en) * 2012-04-02 2013-10-09 Gm Global Tech Operations Inc Method of operating a fuel injection system which corrects for pump efficiency and injector performance
WO2014189458A1 (en) * 2013-05-23 2014-11-27 Scania Cv Ab Method and device for functional control of a high pressure fuel pump
DE102013210816A1 (en) * 2013-06-10 2014-12-11 Robert Bosch Gmbh Fuel delivery device for a fuel injection device of an internal combustion engine

Also Published As

Publication number Publication date
GB2549140A (en) 2017-10-11

Similar Documents

Publication Publication Date Title
US8459234B2 (en) Fuel injection device, fuel injection system, and method for determining malfunction of the same
US6694953B2 (en) Utilization of a rail pressure predictor model in controlling a common rail fuel injection system
US8539935B2 (en) Fuel injection device, fuel injection system, and method for determining malfunction of the same
CN105317574B (en) Adjusting pump volume command for direct injection fuel pump
RU2717863C2 (en) Method (versions) and system for double fuel injection
US7201148B2 (en) Pressure accumulation fuel injection controller
US10859025B2 (en) Systems and methods for operating a lift pump
CN100540880C (en) Fuel injection system capable of monitoring abnormal pressure at the inlet of fuel pump
CN105089891B (en) Direct injection pump control for low fuel pumping volumes
KR20150067352A (en) Method for operating a fuel injection system with a fuel filter heating process, and fuel injection system
CN105637203A (en) Method for operating an internal combustion engine and device for the open-loop and closed-loop control of an internal combustion engine, injection system, and internal combustion engine
US7784447B2 (en) Fuel injection system comprising a high-pressure variable-delivery pump
US7565898B2 (en) Controller for direct injection engine and controlling method
CN108317016B (en) System and method for operating a lift pump
JP6546105B2 (en) Control device for internal combustion engine
JP2004156578A (en) Accumulation type fuel injection device
US20180030916A1 (en) System for controlling fuel rail pressure in a common rail direct fuel injection system
JP2005256703A (en) Accumulated fuel injection system
JP3982516B2 (en) Fuel injection device for internal combustion engine
WO2017174465A1 (en) Fuel injection equipment and control method
JP2014005798A (en) Fuel injection control device
US9890735B2 (en) Method for controlling a pressure
CN104454281A (en) A method for operating an internal combustion engine in an emergency operating mode
CN112727651B (en) Pressure accumulation pump type fuel injection system control device and multi-cylinder piston engine
JP4214907B2 (en) Accumulated fuel injection system

Legal Events

Date Code Title Description
NENP Non-entry into the national phase

Ref country code: DE

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 17715121

Country of ref document: EP

Kind code of ref document: A1

122 Ep: pct application non-entry in european phase

Ref document number: 17715121

Country of ref document: EP

Kind code of ref document: A1