GB2059633A - Fuel control system for an internal combustion engine - Google Patents

Fuel control system for an internal combustion engine Download PDF

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Publication number
GB2059633A
GB2059633A GB8030298A GB8030298A GB2059633A GB 2059633 A GB2059633 A GB 2059633A GB 8030298 A GB8030298 A GB 8030298A GB 8030298 A GB8030298 A GB 8030298A GB 2059633 A GB2059633 A GB 2059633A
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United Kingdom
Prior art keywords
engine
fuel
power
delivered
signal
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Granted
Application number
GB8030298A
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GB2059633B (en
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Bendix Corp
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Bendix Corp
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Publication date
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Publication of GB2059633A publication Critical patent/GB2059633A/en
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Publication of GB2059633B publication Critical patent/GB2059633B/en
Expired legal-status Critical Current

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Classifications

    • 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
    • F02D41/02Circuit arrangements for generating control signals
    • F02D41/0205Circuit arrangements for generating control signals using an auxiliary engine speed control

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Electrical Control Of Air Or Fuel Supplied To Internal-Combustion Engine (AREA)
  • Control Of Vehicle Engines Or Engines For Specific Uses (AREA)

Abstract

A fuel control system for improving the driveability of a high power to weight ratio vehicle by using power as the controlled parameter. In the system, an operator power command signal is compared to a signal representative of the product of the quantity of fuel being delivered to the engine and of the engine speed to develop an error signal proportional to the difference between actual power being delivered from the engine and operator commanded power.

Description

SPECIFICATION Fuel control system for an internal combustion engine This invention relates generally to a fuel control system for an internal combustion engine and more particularly to such a fuel control system for a vehicle having a high power to weight ratio wherein an operator commanded power signal is compared to a sensed power signal for controlling the engine response to the difference therebetween.
While the invention will be described in conjunction with a diesel-type engine, it is to be understood that the basic principles of the invention also apply to a spark-ignited engine.
In a conventional diesel engine with an electronic fuel control unit including an electronic governor, the controller typically operates as a speed controller and for many purposes this type of control is entirely satisfactory. However, in a passenger car with a relatively high power to weight ratio, high relative to for example trucks, the vehicle response, or driveability, suffers somewhat with a conventional speed control device since small changes in the operator's input result in large changes in torque output of the engine.
In conventional spark ignition engines, prior to the application of severe emission control constraints and very lean operation for better fuel economy, the engines were operated in the rich regime. In such a mode of operation, the torque output of the engine is proportional to manifold pressure which results from air flowing into the cylinder past the throttle plate. The throttle plate acts as a restriction to the air flowing into the engine. When the pressure across any orifice, for example the throttle plate orifice, exceeds a certain ratio to the total inlet pressure, the velocity of the air particles through the orifice become sonic.
This type of flow is referred to as sonic, critical or choked flow. In that condition, the quantity of air flowing through the orifice is independent of the pressure downstream of the orifice, and is only influenced by the upstream pressure and the orifice area.
When a conventional spark ignited engine operates at heavily throttled conditions (part load), the engine is operated with a nominally constant air/fuel ratio and the power output is directly related to air flow. Since this air flow is only related to throttle area during sonic flow conditions, the power output of the engine is therefore directly related to throttle area which, in turn is directly related to throttle rotation caused by the operator.
Such performance characteristics, the direct relationship of throttle plate movement to power output, is considered by most drivers to represent good driveability, or to have a good response characteristic of the operation of the engine in response to a throttle change. This invention describes an apparatus for achieving this good driveability type power control over a wide range of throttle inputs. The description will proceed as the invention is applied to a diesel engine fuel control to improve the throttle response characteristics of the engine and make the engine generally more satisfactory to the driver without sacrificing emissions or performance characteristics.
Accordingly, it is a primary object of the present invention to improve the driveability characteristics of internal combustion engine vehicles.
Other objects, features and advantages of the present invention will become readily apparent upon analyzing this specification and the associated drawing in which the single figure of the drawing is a schematic block diagram illustrating the principles of the present invention.
In a diesel engine which is always operated lean of stoichiometric, generally very lean, the torque output of the engine has been found empirically to be directly related to the quantity of fuel injected per cycle. Power, of course, can be derived from speed-torque in the following fashion: Power = K(torque x rpm) where the quantity K is a proportionality constant. Therefore, in the system of the present invention, the operator input will reflect a power level requirement. Through calculation in an electronic control unit, the actual power being delivered is computed by sensing the fuel quantity being delivered and the engine speed to drive a fuel quantity per engine revolution signal and this signal is utilized to represent actual power being delivered. This computed power signal is compared to the commanded power signal from the operator's input to develope an error signal.The error signal drives the system to minimize the error and thereby maintain the commanded power level. Obviously, there is an upper limit for any given speed or power output for the engine. This upper limit is recognized by the control unit, the power limit being generally proportional to speed, and the amount of fuel to the engine is limited to that quantity useable by the engine. Also, smoke characteristics, stress levels, and other parameters are taken into consideration in the design of the control unit. Upon generation of the error signal, the correction process utilized in the system of the present invention operates the fuel control system to produce a suitable pulse for the fuel injectors to ensure that the operator commanded power level is achieved by the engine.
This same process can be applied to spark ignition engines with some calculation corrections due to varying air/fuel ratios, although as long as the engine is lean of stoichiometric, the torque output can still be considered directly related to the fuel input per cycle. In cases where the air/fuel ratio varies or the engine is rich of stoichiometric, thereby using up essentially all the available oxygen in the cylinder, corrections will need to be made based on manifold density parameters such as manifold pressure and temperature. Accordingly, as soon as the throttle is moved, the power level goes up in the new power point as determined by the throttle area at the new throttle position and, as the engine speed picks up, the power remains the same.Further, the torque is reduced causing the engine performance to traverse a road load curve on a torque versus engine speed graph under power control conditions.
Engines with this transient response characteristic are considered to provide excellent driveability. However, for purpose of emission control and fuel economy, it may be desirable to omit the sharp peak which occurs when transferring from one'power level to another on initial throttle change. Also, near desired speed, as represented by the new power level, the slope of the engine torque versus speed characteristic may be slightly steeper to give better road speed stability.
Referring to the single figure of the drawing there is shown that an operator command signal representative of commanded power is applied to an input conductor 10. The command signal on conductor 10 is representative of the power level desired by the operator as commanded by positioning the throttle plate.
This command signal, appropriately scaled, is fed to a comparator 1 2 as one input thereof.
The other input to the comparator is a fuel quantity per engine revolution signal which has been generated on input conductor 14.
The signal on conductor 14 is representative of the power being generated by the engine and will be explained more clearly hereafter.
In the event the power commanded by the operator, as represented by the signal on conductor 10, and the power being generated by the engine, as represented by the signal on conductor 14, are different, an error signal is applied to conductor 1 6 which is representative of the difference of power expressed by the difference between the two input signals.
The signal on conductor 1 6 is fed to an updown counter 20 having a set count therein, Which signal increments or decrements the counter depending on the polarity of the signal on conductor 1 6. The output of the counter 20 is fed to a pulse generator 22 through a limiter 24. The limiter is utilized to limit at a maximum value the signal which can be fed to the pulse generator. The output of the pulse generator 22 is a fuel pulse signal which is fed to the injector by means of a power amplifier 24 and an output conductor 26. The output signal to the injector solenoid connected to conductor 26 is controlled by a trigger pulse generated by the electronic control unit and fed to input conductor 28.
The feedback circuit to generate the actual power signal on conductor 14 includes a multiplier 30 having plural inputs, one of which is a fuel pulse width signal on conductor 32. This signal is the pulse width signal fed out of the pulse generator, the duration of which representative of.fuel quantity for that particular fuel pulse. This signal is multiplied by an engine speed signal fed to the other input of multiplier 30 by means of a conductor 36 which is connected to an engine speed sensor. Thus, the output of multiplier 30 is representative of the quantity of fuel being fed to the engine. As was seen from the description above, this fuel quantity is directly related to the power being generated by the engine.
The limiter 24 is provided by means of a conductor 44 with an input from an air/fuel limiter table storage means 40 which is provided with an engine speed signal from the conductor 36 and a mass air density signal from a mass air density sensor connected to input conductor 42. Thus, the combination of the engine speed and mass air density signals provides an output signal on conductor 44 which dictates the maximum pulse width that can be generated by the pulse generator 22.
The limiter 24 acts to limit at a maximum value the signal to which the up/down counter 20 can be incremented.
In operation, the operator changes throttle position and, for example, increases the throttle angle. This changes the input signal on conductor 10 and creates an error signal out of comparator 1 2 due to the fact that the signal on conductor 14 represents the previous power setting. The error signal changes the count in counter 20 to increase the pulse width of the signal out of amplifier 24. This is true as long as the limit of table storage means 40 is not exceeded.
Accordingly, it is seen that a fuel control system has been described to control fuel being fed to an engine in accordance with the desired power from the engine. While the signal attained by multiplying the fuel pulse width and engine speed does not exactly correspond to engine power, it is obviously monotonically related to engine power in a straight-forward fashion. This multiplication of the two signals is adequate for the purposes of the power control scheme in order to produce a preferred level of driveability. Modifications to the circuit may be made to refine the control scheme or change the manner in which the data signals am processed without departing from the scope of the invention. For example, a time delay mechanism in the feedback circuit may be provided between the pulse generator 22 and the multiplier 30 to maintain stability of the system. AlsQ, the system could be modified to incorporate the air/fuel ratio limiter into the.operators input command signal circuitry so that the operator's commanded power signal would be a percent of the maximum or limit fuel quantity per cycle which could be fed to the engine.

Claims (4)

1. A fuel control system for controlling the fuel quantity being delivered to an internal combustion engine.in accordance with the operator desired power to be delivered from the engine, characterized in that it comprises: means for generating an operator power command signal; means for sensing engine parameters representative of the power being delivered from the engine including means for providing a signal representative of the quantity of fuel being delivered to the engine and means for providing a signal representative of engine speed; means for multiplying the fuel quantity and engine speed signals and providing a signal representative of the power delivered from the engine; means for comparing the last mentioned signal with the operator power command signal and generating an error signal representative of the difference therebetween; and means connected to receive the error signal from said comparing means for changing the fuel quantity being delivered to the engine to drive said error signal toward zero.
2. A system as claimed in claim 1, wherein the engine is a pulsed fuel injected engine and said means for changing the fuel quantity being delivered is adapted to vary the width of the fuel pulses.
3. A system as claimed in claim 1 or 2, wherein there is provided means for limiting to a maximum value the quantity of fuel to be fed to the engine.
4. A fuel control system for controlling the fuel quantity being delivered to an internal combustion engine in accordance with the operator desired power to be delivered from the engine constructed and adapted to operate substantially as herein described with reference to and as illustrated in the accompanying drawing.
GB8030298A 1979-10-01 1980-09-19 Fuel control system for an internal combustion engine Expired GB2059633B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US8036779A 1979-10-01 1979-10-01

Publications (2)

Publication Number Publication Date
GB2059633A true GB2059633A (en) 1981-04-23
GB2059633B GB2059633B (en) 1983-05-05

Family

ID=22156928

Family Applications (1)

Application Number Title Priority Date Filing Date
GB8030298A Expired GB2059633B (en) 1979-10-01 1980-09-19 Fuel control system for an internal combustion engine

Country Status (7)

Country Link
JP (1) JPS5660833A (en)
AT (1) ATA487780A (en)
CA (1) CA1146241A (en)
DE (1) DE3036363A1 (en)
FR (1) FR2466618B1 (en)
GB (1) GB2059633B (en)
IT (1) IT1132772B (en)

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3204842A1 (en) * 1982-02-11 1983-08-18 Volkswagenwerk Ag, 3180 Wolfsburg Device for controlling a spark-ignition internal-combustion engine
JPS60156942A (en) * 1984-01-25 1985-08-17 Nissan Motor Co Ltd Controller for driving power of automobile
DE3403394A1 (en) * 1984-02-01 1985-08-01 Robert Bosch Gmbh, 7000 Stuttgart FUEL-AIR MIXING SYSTEM FOR AN INTERNAL COMBUSTION ENGINE
JPS6143244A (en) * 1984-08-06 1986-03-01 Nissan Motor Co Ltd Control device of engine
DE3839462A1 (en) * 1988-11-23 1990-05-31 Kloeckner Humboldt Deutz Ag Drive system with steplessly adjustable output transmission ratio

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1911828C3 (en) * 1969-03-08 1979-04-26 Robert Bosch Gmbh, 7000 Stuttgart Electronic controller for the speed of an internal combustion engine, especially a diesel engine
US3808882A (en) * 1971-07-21 1974-05-07 Dresser Ind Engine torque control system
GB1416861A (en) * 1971-12-03 1975-12-10 Cav Ltd Control systems for internal combustion engines
US3973537A (en) * 1971-12-03 1976-08-10 C.A.V. Limited Fuel supply systems for internal combustion engines
DE2807924A1 (en) * 1978-02-24 1979-09-06 Bosch Gmbh Robert PROCEDURE AND DEVICE FOR CORRECTING THE AMOUNT OF FUEL ADJUSTED TO A COMBUSTION ENGINE
DE2811574A1 (en) * 1978-03-17 1979-09-27 Bosch Gmbh Robert DEVICE FOR THE CONTROL OF A DRIVE MOTOR-GEAR UNIT OF A MOTOR VEHICLE

Also Published As

Publication number Publication date
CA1146241A (en) 1983-05-10
JPS6321817B2 (en) 1988-05-09
IT1132772B (en) 1986-07-02
JPS5660833A (en) 1981-05-26
FR2466618A1 (en) 1981-04-10
DE3036363A1 (en) 1981-04-16
IT8024946A0 (en) 1980-09-26
FR2466618B1 (en) 1986-05-30
ATA487780A (en) 1983-02-15
GB2059633B (en) 1983-05-05

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Date Code Title Description
PE20 Patent expired after termination of 20 years

Effective date: 20000918