ENGINE CONTROL SYSTEM
20170313298 · 2017-11-02
Assignee
Inventors
Cpc classification
B60W20/11
PERFORMING OPERATIONS; TRANSPORTING
Y10S903/93
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60W2552/15
PERFORMING OPERATIONS; TRANSPORTING
B60W20/12
PERFORMING OPERATIONS; TRANSPORTING
B60W10/26
PERFORMING OPERATIONS; TRANSPORTING
B60W2552/20
PERFORMING OPERATIONS; TRANSPORTING
B60W2556/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60W20/11
PERFORMING OPERATIONS; TRANSPORTING
B60W20/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a method for managing the drive system of a hybrid vehicle comprising an internal combustion engine and an electric machine having an energy storage means, wherein the vehicle has information on the topology of an approaching downward section of road. Said method includes: predicting a power need of the vehicle according to at least one slope degree of said section of road; predicting the mode of operation of the drive system as well, said mode of operation being selected from at least: a freewheel descent, a descent assisted by the drive system, preferably by the electric machine only, a descent braked by energy recovery; and adjusting the energy level in the storage system prior to arrival on the section of road according to said predictions.
Claims
1. A method of managing a drive system of a hybrid vehicle including a thermal engine and an electrical machine with an energy storage means, the hybrid vehicle having information on the topology of an upcoming downgrade road section, the method comprising: predicting a power demand of the hybrid vehicle as a function at least of the slope of said upcoming downgrade road section; and predicting an operating mode of the drive system, said operating mode being at least one selected from a group consisting of: coasting descent, descent assisted by the electrical machine alone, and descent braked by recovery of energy, wherein a level of energy in the energy storage means is adapted before arrival at the upcoming downgrade road section as a function of both predictions.
2. The method according to claim 1, the energy storage means being electrochemical.
3. The method as claimed in claim 1, wherein when the predicted operating mode is descent braked by recovery of energy, the level of energy in the energy storage means is modified before arriving at the upcoming downgrade road section so that on leaving the upcoming downgrade road section, the level of energy in the storage means is higher than on arriving at the upcoming downgrade road section, and wherein the level of energy in the storage means on leaving the upcoming downgrade road section reaches an upper limit.
4. The method as claimed in claim 1, the level of energy in the storage means being increased before arrival at said section.
5. The method as claimed in claim 4, the level of energy in the storage means being increased before commencing the descent so that the energy storage means supplies all the energy necessary for maintaining an authorized limit speed for the hybrid vehicle throughout the descent, wherein the operating mode is driving by the electric motor only.
6. The method as claimed in claim 1, wherein the power demand is also predicted on the basis of a known limit speed authorized for the hybrid vehicle on said upcoming downgrade road section.
7. The method as claimed in claim 1, wherein the level of energy in the storage means evolves between minimum and maximum limits when the hybrid vehicle travels over said section.
8. The method as claimed in claim 1, the information concerning the topology being received by the vehicle from one selected from a group consisting of: a geolocation system and from another vehicle.
9. The method as claimed in claim 1, in which the vehicle maintains a constant speed when it travels over the upcoming road section.
10. A drive system equipped with a calculation means configured to perform the method as claimed in claim 1.
11. A hybrid vehicle equipped with a drive system as claimed in claim 10.
Description
[0020] The invention will be better understood after reading the following detailed description of one nonlimiting embodiment thereof and examining the appended drawing, in which:
[0021]
[0022]
[0023]
[0024] The invention applies to a hybrid vehicle including a drive system 10, also known as a powertrain, said drive system including a thermal engine and an electrical machine with energy storage means.
[0025] The thermal engine delivers a torque that can be used to drive the wheels of the vehicle via an appropriate transmission. This thermal engine is an internal combustion engine, for example, such as a diesel or petrol engine, or an engine operating with other liquid or gas fuels such as ethanol or hydrogen, for example.
[0026] The electric motor can be a motor capable of operating reversibly as an electrical generator.
[0027] The storage means can be electrochemical and/or inertial, preferably being electrochemical such as a battery or one or more supercapacitors.
[0028] The vehicle includes information means making it possible to have available the topology of the road to come.
[0029] Said means include for example a geolocation data receiver 12 such as a GPS receiver. The geolocation data makes it possible to know the position of the vehicle in real time and, by interrogating a map database, the topology of the road to come and notably the presence of slopes and the degree of the slopes. The source of map data can be an onboard source.
[0030] The topology data can equally come from other sensors 14, notably in the case of an interactive road network where the vehicles exchange data with one another, notably when passing one another.
[0031] The map data source can also supply information as to the possible presence of a speed limit that would cause the driver to slow down.
[0032] The vehicle includes calculation means 40 such as an electronic circuit for management of the operation of the drive system 10 which, in a step 20 of the
[0033] The calculations can be effected on the basis of various hypotheses, notably the hypothesis that the speed of the vehicle is held equal to the authorized speed limit, in particular when the traffic is circulating freely.
[0034] It is seen in
[0035] If the power demand P allowing for the slope and the speed is above a threshold x.sub.2, energy recovery is not possible and the drive system must remain in driving mode, preferably using the electric motor (electric mode) as the source of motive power, if the level of energy in the storage means allows this, or otherwise the thermal engine (hybrid mode).
[0036] The calculation means 40 determine the commands to be sent to the drive system 10 as a function of this situation 30. In particular, they are able to impose operation in electric or hybrid mode during the descent.
[0037] If the power demand P is below a threshold x.sub.1, then the slope can be used to regenerate the energy storage means and the drive system 10 is controlled as a function of said situation 50. The calculation means can impose operation in recovery mode on the drive system.
[0038] If the power demand P is between the two, that is to say x.sub.1≦P≦x.sub.2, then the drive system 10 is controlled as a function of said situation 60 to disconnect the wheels and to allow the vehicle to coast.
[0039] The downgrade section may be divided into a plurality of portions with different slopes in which the operating mode changes.
[0040] According to the identified power demand and the operating mode adopted, a target level of energy to be reached is also determined, for example the level of energy required for the vehicle to be able to maintain the intended speed over the downgrade road section.
[0041] Based on the difference between the required energy level and the current energy level, it is possible to start to adapt the level of energy in the upstream storage means under favorable conditions in terms of the output of the thermal engine and/or to save fuel, in order for the level in the latter storage means to be the optimum when the vehicle commences its descent.
[0042] For example, there will be described with reference to
[0043] After evaluating the power demand to travel the downgrade section 70, given the predicted speed of the vehicle, the high energy level N.sub.i that the storage means must have to enable it by discharging its energy to a low level N.sub.g to supply the power necessary to overcome the friction of the air and to enable the vehicle to maintain its speed. The high level N.sub.i may correspond to the upper limit of energy storage and the low level N.sub.g to the low speed.
[0044] At the time t.sub.0 at which the high energy level N.sub.i is determined, the current energy level in the storage means is N.sub.c, with N.sub.c<N.sub.i.
[0045] It is therefore necessary to store more energy, which the vehicle begins to do from the time t.sub.0 to arrive at the energy level N.sub.i at the start of the descent at the time t.sub.i>t.sub.0.
[0046] Once the descent has been traveled at the time t.sub.2 the energy reserve that has reached its low level N.sub.g in the storage means can be reconstituted, the operating mode going for example from the hybrid mode between t.sub.0 and t.sub.1 to the electric mode between t.sub.1 and t.sub.2 and then again to the hybrid mode starting from t.sub.2.
[0047] In the
[0048] During the descent, between t.sub.1 and t.sub.2 the drive system operates in recovery mode, the energy recovered being stored in the storage means.
[0049] The invention is not limited to the example that has just been described.
[0050] In particular it is possible to determine the power demand and/or the energy level to be stored before commencing a descent from other parameters such as the driving habits of the driver, which can make it possible to correct the intended speed of the vehicle to a value other than the authorized speed limit.
[0051] The expression “including a” must be understood as being synonymous with “comprising at least one”.