Method for a more efficient use of a combustion engine in a vehicle
10330029 · 2019-06-25
Assignee
Inventors
Cpc classification
F02D2250/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/701
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2059/363
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2059/366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D31/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
F02D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W50/0097
PERFORMING OPERATIONS; TRANSPORTING
B60W30/1882
PERFORMING OPERATIONS; TRANSPORTING
B60W50/087
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
F02D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W30/188
PERFORMING OPERATIONS; TRANSPORTING
B60W50/08
PERFORMING OPERATIONS; TRANSPORTING
F16H61/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method for a more efficient use of a vehicle combustion engine during driving, the vehicle including an automatic step geared transmission. The method includes the steps of sensing current engine rotational speed and engine rotational speed increase, estimating necessary minimum upshift engine rotational speed for a coming gear upshift, registering that the engine rotational speed stops increasing without reaching the minimum upshift engine rotational speed, and where the engine rotational speed stops increasing relatively close to a maximum engine rotational speed where engine efficiency is relatively low and, automatically controlling engine output torque in order to limit the engine rotational speed to a first predetermined engine speed where engine efficiency is relatively high.
Claims
1. A method for a more efficient use of a combustion engine in a vehicle during driving of the vehicle, the vehicle comprising an automatic step geared transmission for automatic gear ratio adaptation of a gear ratio between an engine rotational speed and a rotational speed of driving wheels of the vehicle, comprising: sensing current engine rotational speed and engine rotational speed increase, estimating necessary minimum upshift engine rotational speed for a coming gear upshift; registering that the engine rotational speed has stopped increasing without reaching the minimum upshift engine rotational speed, and where the engine rotational speed stops increasing at a first engine rotational speed within a predetermined distance of a maximum engine rotational speed where engine efficiency at the first engine rotational speed is below a first predetermined efficiency, and automatically controlling engine output torque in order to limit the engine rotational speed to a first predetermined engine rotational speed where engine efficiency at the first predetermined engine rotational speed is above a second predetermined efficiency that is above the engine efficiency at the first engine rotational speed.
2. A method as in claim 1, wherein the step of registering that the engine rotational speed has stopped increasing without reaching the minimum upshift engine rotational speed is performed in advance before reaching the first engine rotational speed where engine efficiency is below the first predetermined engine efficiency.
3. A method as in claim 2, wherein the registering step performed in advance is done through an estimation based on present prevailing vehicle conditions.
4. A method as in claim 3, wherein the estimation is based on present prevailing vehicle conditions and vehicle conditions estimated likely to occur in near future of the vehicle.
5. A method as in claim 1, wherein the automatic controlling of the engine torque is performed after activating a cruise control arranged in the vehicle.
6. A method as in claim 1, wherein the automatic controlling of the engine torque is performed when a first vehicle driving mode is activated, which first driving mode differs from a second driving mode of the vehicle.
7. A method as in claim 1, comprising deactivating the automatic controlling of the engine torque is when a driver of the vehicle demands full power to the wheels.
8. A method as in claim 1, comprising deactivating the automatic controlling of the engine torque when a predetermined vehicle condition is registered.
9. A method as in claim 8, wherein the predetermined vehicle condition is a decrease of vehicle travel resistance to under a first predetermined level.
10. A method as in claim 9, wherein the automatic controlling of the engine torque is activated when the vehicle travel resistance has increased to above a second predetermined level.
11. A method as in claim 1, wherein the automatic controlling of the engine torque is independent of whether a driver of the vehicle demands maximum engine output torque.
12. A vehicle comprising a computer programmed with program code for executing a method for a more efficient use of a combustion engine in the vehicle during driving of the vehicle, the vehicle comprising an automatic step geared transmission for automatic gear ratio adaptation of a gear ratio between an engine rotational speed and a rotational speed of driving wheels of the vehicle, the method comprising: sensing current engine rotational speed and engine rotational speed increase, estimating necessary minimum upshift engine rotational speed for a coming gear upshift; registering that engine rotational speed has stopped increasing without reaching the minimum upshift engine rotational speed, and where the engine rotational speed stops increasing at a first engine rotational speed within a predetermined distance of a maximum engine rotational speed where engine efficiency at the first engine rotational speed is below a first predetermined efficiency, and automatically controlling engine output torque in order to limit the engine rotational speed to a first predetermined engine rotational speed where engine efficiency at the first predetermined engine rotational speed is above a second predetermined efficiency that is above the engine efficiency at the first engine rotational speed.
13. A vehicle comprising a computer comprising a non-transitory computer readable medium comprising program code for executing a method for a more efficient use of a combustion engine in the vehicle during driving of the vehicle, the vehicle comprising an automatic step geared transmission for automatic gear ratio adaptation of a gear ratio between an engine rotational speed and a rotational speed of driving: wheels of the vehicle, comprising: sensing current engine rotational speed and engine rotational speed increase, estimating necessary minimum upshift engine rotational speed for a coming gear upshift; registering that the engine rotational speed has stopped increasing without reaching the minimum upshift engine rotational speed, and where the engine rotational speed stops increasing at a first engine rotational speed within a predetermined distance of a maximum engine rotational speed where engine efficiency at the first engine rotational speed is below a first predetermined efficiency, and automatically controlling engine output torque in order to limit the engine rotational speed to a first predetermined engine rotational speed where engine efficiency at the first predetermined engine rotational speed is above a second predetermined efficiency that is above the engine efficiency at the first engine rotational speed.
14. A vehicle comprising a computer comprising a non-transitory computer program product directly loadable into an internal memory in the computer, which computer program product comprises a computer program for executing a method for a more efficient use of a combustion engine in the vehicle during driving of the vehicle, the vehicle comprising an automatic step geared transmission for automatic gear ratio adaptation of a gear ratio between an engine rotational speed and a rotational speed of driving wheels of the vehicle, comprising: sensing current engine rotational speed and engine rotational speed increase, estimating necessary minimum upshift engine rotational speed for a coming gear upshift; registering that the engine rotational speed has stopped increasing without reaching the minimum upshift engine rotational speed, and where the engine rotational speed stops increasing at a first engine rotational speed within a predetermined distance of a maximum engine rotational speed where engine efficiency at the first engine rotational speed is below a first predetermined efficiency, and automatically controlling engine output torque in order to limit the engine rotational speed to a first predetermined engine rotational speed where engine efficiency at the first predetermined engine rotational speed is above a second predetermined efficiency that is above the engine efficiency at the first engine rotational speed.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The present invention will be described in greater detail below with reference to the accompanying drawing which, for the purpose of exemplification, shows further preferred embodiments of the invention and also the technical background, and in which:
(2)
(3)
DETAILED DESCRIPTION
(4) In one embodiment the vehicle is equipped with an internal combustion engine, an automatic step geared transmission and driven wheels, to which drive power from the engine can be transmitted via different gears in the transmission. The different gears are selected and engaged by a transmission control unit. Each selectable gear has a predetermined gear ratio.
(5) Gear selections and shift decisions are made by said control unit based on certain measured and/or calculated parameters such as vehicle speed, engine speed, rate of change of vehicle speed, rate of change of engine speed, throttle control position, rate of change of throttle control position, actuation of a vehicle braking system, currently engaged gear ratio and the like are known from prior art.
(6) In a first preferred embodiment of the invention said control unit is programmed to estimate if a selected, not yet performed upshift is feasible. This estimation is based on a calculation with input parameters such as at least current vehicle travel resistance, engine rotational speed, engine rotational speed increase, current engaged gear and torque demand (driver demand or for example cruise control demand). These parameters could also be supplemented by parameters such as estimated vehicle travel resistance of the nearest future in order to be able to achieve a better estimation.
(7)
(8) Said control unit can be programmed to estimate an upshift engine rotational speed, which has to be reached in order to manage to; ramp down engine torque, disengage the presently engaged gear, synchronize engine speed to the new selected gear, engage the new gear and finally ramp up engine torque to meet torque demand from for example driver or a cruise control. Further, the control unit evaluates if there is enough torque available when the new gear will be engaged at a certain engine rotational speed in order to meet the vehicle travel resistance.
(9) According to the invention said control unit is programmed to estimate if the engine will be able to reach the upshift rotational speed or not under at least present prevailing condition, i.e. calculations are performed with at least above mentioned parameters; current vehicle travel resistance, engine rotational speed, engine rotational speed increase, current engaged gear and torque demand as input information. If the engine is estimated to not reach the upshift rotational speed then an upshift will not be initiated since the engine would be stuck at a relatively high inefficient rpm just below said upshift rotational speed. According to the invention the control unit is further programmed to not increase the engine speed when the result of the above estimation is that the engine speed will not be able to reach the upshift rotational speed.
(10) There could be a situation in an uphill slope where the control unit has estimated that an upshift is possible, thus the engine rotational speed is allowed to increase towards the upshift rotational speed. But before the upshift rotational speed has been reached it can happen that the vehicle travel resistance increases to a level where the engine torque will not be enough to keep on accelerating the vehicle and, thus, the engine rotational speed increase ceases at a relatively high but inefficient engine rotational speed without having reached the upshift rotational speed. According to another embodiment of the invention the control unit is during such a condition programmed to register that the vehicle acceleration has ceased and if there is no other possible gear to upshift to, then the control unit will automatically decrease engine rotational speed down to a more efficient engine rotational speed, for example according to the example shown in
(11) In an alternative embodiment of the invention the control unit can be programmed to take a future vehicle condition into account when estimating if the engine will be able to reach the upshift rotational speed or not. According to known art this could be done byproviding the control unit with information from an electronic map and a GPS (Global Positioning System) or the like. The electronic map would need to have information about the topography of the landscape in order to foresee for example uphill slopes and its gradients. An alternative known solution would be to use a learning system that memorizes the topography first time passing a position and then use this information for above mentioned estimation second time traveling the same position.
(12) In a further developed embodiment of the invention the control unit is programmed to return to normal engine control as soon as the vehicle travel resistance is estimated by the control unit to be below a first predetermined level, which first predetermined level is dependent of prevailing vehicle condition and coming upshift rotational speed. The same first predetermined level could be used in order to activate said automatic controlling of the engine torque. It is also possible to have a second predetermined level, which differs from said first, and which second predetermined level is used for activation of said automatic controlling of the engine torque. Said first and second predetermined levels can of coarse be dynamic, thus being adapted to current and future vehicle conditions.
(13) In a further embodiment of the invention said automatic controlling of the engine torque can be inactivated when engine output torque needed for holding a predetermined engine rotational speed during prevailing vehicle travel resistance is below a predetermined engine output torque, for example under 65% of maximum engine output torque. The same or other predetermined engine out torque value can be used the opposite way, that is, in order to activate said automatic controlling of the engine torque.
(14) The above mentioned embodiments of the invention could be programmed to be active only when a cruise control in the vehicle is activated. Thus, if the control unit during cruise control limits the engine speed to a more efficient rpm level then the control unit could be programmed to allow engine speed increase only if the driver manually demands it through for example an accelerator pedal.
(15) In a further embodiment the control unit could be programmed to activate said engine rotational speed limiting function only when the vehicle is driven in a special mode, for example an economy mode.
(16) In a further embodiment the control unit could be programmed to override said engine rotational speed limiting function when the driver is using, for example, a kick down function (known prior art) by depressing an accelerator pedal. This function to override said engine rotational speed limiting function could also be used in the embodiment above where no cruise control is used.
(17)
(18) The apparatus 500 can be enclosed in, for example, said control unit. The data-processing unit 510 can comprise, for example, a microcomputer.
(19) The memory 520 also has a second memory part 540, in which a program for said automatic controlling of the engine torque according to the invention is stored. In an alternative embodiment, the program for automatic controlling of the engine torque is stored in a separate nonvolatile data storage medium 550, such as, for example, a CD or an exchangeable semiconductor memory. The program can be stored in an executable form or in a compressed state.
(20) When it is stated below that the data-processing unit 510 runs a specific function, it should be clear that the data-processing unit 510 is running a specific part of the program stored in the memory 540 or a specific part of the program stored in the nonvolatile recording medium 550.
(21) The data-processing unit 510 is tailored for communication with the memory 550 through a data bus 514. The data-processing unit 510 is also tailored for communication with the memory 520 through a data bus 512. In addition, the data-processing unit 510 is tailored for communication with the memory 560 through a data bus 511. The data-processing unit 510 is also tailored for communication with a data port 590 by the use of a data bus 515.
(22) The method according to the present invention can be executed by the data-processing unit 510, by the data-processing unit 510 running the program stored in the memory 540 or the program stored in the nonvolatile recording medium 550.
(23) The invention should not be deemed to be limited to the embodiments described above, but rather a number of further variants and modifications are conceivable within the scope of the following patent claims.