Vehicle
09944198 ยท 2018-04-17
Assignee
Inventors
Cpc classification
B60T7/22
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60W30/09
PERFORMING OPERATIONS; TRANSPORTING
B60T1/10
PERFORMING OPERATIONS; TRANSPORTING
B60T2201/022
PERFORMING OPERATIONS; TRANSPORTING
Y10S903/947
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
B60K6/52
PERFORMING OPERATIONS; TRANSPORTING
B60K6/22
PERFORMING OPERATIONS; TRANSPORTING
B60L7/10
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/62
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
Y02T10/72
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
B60W20/10
PERFORMING OPERATIONS; TRANSPORTING
B60Y2300/89
PERFORMING OPERATIONS; TRANSPORTING
B60L15/10
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/64
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
B60W20/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60L15/10
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
B60L7/10
PERFORMING OPERATIONS; TRANSPORTING
B60L15/20
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60T7/22
PERFORMING OPERATIONS; TRANSPORTING
B60W30/09
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A vehicle, such as an automobile, is provided with friction and regenerative braking systems. A sensor detects an obstacle in the vehicle's path and a brake controller, when operated by a user, automatically deploys either or both braking systems to decelerate the vehicle so that its speed corresponds to that of the obstacle when the vehicle is a predetermined distance from the obstacle. The brake controller is arranged to deploy the braking systems in order to optimize recovery of kinetic energy by the regenerative braking system. The brake controller may be operated in a standard mode, in which it deploys the braking systems to provide a retarding force on the vehicle which depends on a driver's input. The brake controller may be controlled by a brake pedal. The pedal may have a position part way along its travel at which resistance to further travel temporarily increases and operation of the pedal beyond that position causes the brake controller to operate in the standard mode.
Claims
1. A vehicle comprising friction and regenerative braking systems, a sensor operative to detect an obstacle in the vehicle's path and a brake controller operable by a user in an automatic mode in which the brake controller automatically deploys at least one of the friction and regenerative braking systems in order to decelerate the vehicle so that its speed corresponds to that of the obstacle when the vehicle is a predetermined distance from the obstacle, the brake controller being arranged to deploy the braking systems in order to optimise recovery of kinetic energy by the regenerative braking system, and a user operable brake control, the control having a position part way along its travel at which resistance to further travel temporarily increases wherein initial operation of the control causes the brake controller to operate in the automatic mode and operation of the control beyond the position at which resistance to further travel temporarily increases causes the brake controller to operate in a standard mode in which it deploys the braking systems to provide a retarding force on the vehicle which depends on the user's input.
2. A vehicle as claimed in claim 1 wherein the brake controller is operative to maximize use of the regenerative braking system, as compared to the friction braking system, when decelerating the vehicle.
3. A vehicle as claimed in claim 1 wherein the brake controller deploys the braking systems in order to achieve a substantially linear deceleration of the vehicle.
4. A vehicle as claimed in claim 1 wherein the brake controller is arranged to determine a desired deceleration rate when operated by a user.
5. A vehicle as claimed in claim 4 wherein when the deceleration rate is below a threshold the brake controller applies only regenerative braking.
6. A vehicle as claimed in claim 4 wherein when the deceleration rate is above a threshold the brake controller applies both regenerative and friction braking.
7. A vehicle as claimed in claim 1, comprising an actuator operative to increase resistance to travel of the brake control.
8. A vehicle as claimed in claim 1 wherein, in the event that the sensor cannot detect any obstacle, the brake controller operates in the standard mode.
9. A vehicle as claimed in claim 1 wherein the regenerative braking system comprises an electrical motor drivingly connected to one or more road wheels of the vehicle and operative to generate electrical current when rotated by the vehicle's wheels, and a storage device operative to store electrical energy.
10. A vehicle as claimed in claim 1 wherein the vehicle is an automobile.
11. A vehicle as claimed in claim 1 wherein the brake control comprises a brake pedal.
Description
DETAILED DESCRIPTION OF THE INVENTION
(1) In order that the invention may be more clearly understood an embodiment thereof will now be described, by way of example only, with reference to the accompanying drawings, of which:
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(9) Referring to the drawing, and initially figure an automobile is provided with a friction braking system. This comprises conventional hydraulically actuated disc brakes 1, one for each of the four road wheels 2 of the vehicle. The automobile is also provided with a regenerative braking system. This comprises an electric motor 3 drivingly connected to the rear wheels of the automobile. To retard the automobile the motor 3 is operated as an electrical generator to convert kinetic energy of the moving automobile to electrical energy which is stored in an electric battery 4.
(10) The electric motor 3 may also be used to drive the automobile using energy from the battery 4 and/or from energy generated by an internal combustion engine. The automobile could thus be an electric vehicle or a hybrid vehicle.
(11) The friction and regenerative braking systems are controlled by a brake control system 5, shown in greater detail in
(12) The disc brakes 1 are actuated by a hydraulic actuation system 6 operating a master cylinder 7, with an associated fluid reservoir, which is operable to pressurise hydraulic fluid in pipes which run from the master cylinder 7 to each disc brake 1 via a stability control unit 8. The friction brakes are operated by a brake pedal 9 connected to the hydraulic actuation system 6. Progressive operation of the master cylinder causes a progressive increase in fluid pressure in the hydraulic system and thus a generally progressively increasing braking force. The stability control unit 8 may operate, depending on sensed parameters, to alter the pressure in brake fluid applied to the disc brake 1 associated with one or more of the wheels 2 in order to maintain vehicle stability, such as, for example, to prevent a wheel locking.
(13) The brake pedal 9 is resiliently biased towards a release position, at which braking effort is applied, by a suitable resilient means such as a spring.
(14) The regenerative braking system is actuated by a brake controller 10, also connected to the brake pedal 9. The brake controller 10 comprises a sensor 11 for determining the position of the brake pedal 9, an electrical control system 12 for causing the motor 3 to feed current to the battery 4 and thus brake the automobile, an actuator 13 for providing an additional feedback force to the drive through the brake pedal 9 by urging it towards the release position and a processor 14 operatively linked to the other components of the brake controller 10 and to the hydraulic actuation system 6. The actuator 13 is operative to selectively provide resistance to the operation of the brake pedal 9. The processor 14 is also operatively connected to a headway detector 15, such as a forward facing camera and/or radar. The headway detector 15 is operative to sense the presence of and determine the distance between the automobile, an obstacle in the automobile's path. This could be, for example, a physical obstacle such as another vehicle, either moving or stationary, or a traffic control sign such as a traffic light or a STOP sign at which the automobile is obliged to stop.
(15) The brake controller 10 is operative, on a demand for braking signalled by the driver by depressing the brake pedal, to control application of friction (by way of the hydraulic actuation system 6) and regenerative (by way of the electrical control system 12) brakes to apply a desired retarding force to the automobile whilst optimising recover of energy to the battery. The brake control system has two, user selectable, modes of operation.
(16) The first mode is a standard one. In this node the brake control system seeks to apply a retarding force which is dependent on the position of the brake pedal. In this mode, the brake control system seeks to provide the driver with the feel of a conventional friction braking system whilst optimising energy recovery. Thus, when the battery is not fully charged, the control system seeks to maximise use of the regenerative braking system to recover energy, but will apply the friction brakes as necessary to obtain the desired retarding force. Such a mode of operation is known for vehicles equipped with regenerative and friction brakes, and is therefore not described in further detail.
(17) The second mode is an automatic one. In this mode, when an obstacle in the automobile's path is detected by the headway detector 15 and the driver presses on the brake pedal 9, the brake control system automatically determines the retarding force to apply dependent upon the available headway. Operation of the mode is illustrated by the flow chart in
(18) A desired deceleration rate is then calculated in order to reduce the speed of the automobile to that of the obstacle over its headway, so that the speed of the vehicle is the same as that of the obstacle when the desired separation is reached, whilst optimising energy recovery. The appropriate way to optimise energy recovery will vary from vehicle to vehicle, but in general a generally linear deceleration is preferred. On application of the brakes by the driver, the brake controller selectively applies either or both of the braking systems depending upon the rate of deceleration required. If the rate of deceleration is below a threshold value only the regenerative braking system may be deployed. If it above the threshold both regenerative and friction systems may be deployed. The controller may also selectively apply either or both braking systems depending on vehicle speed. For example friction brakes only may be applied if the vehicle speed fails below a level at which the regenerative brakes become less effective.
(19) As the automobile is decelerating the process illustrated in
(20) A driver may choose whether or not to have the automatic braking mode available to use by selecting an operating mode for the vehicle. For example, a vehicle might have Normal and Eco overall operating modes, and when the Eco mode is selected the automatic braking mode is made available. When the automatic mode is made available this is achieved as shown in
(21) The headway detector continually seeks to identify an obstacle, and thus enable a headway to be calculated for the automobile. If no obstacle is detected the braking system operates in the standard mode. If an obstacle is detected, and this enables a headway and desired deceleration rate to be calculated, the automatic braking mode is made available. On depression of the brake pedal the automatic system is activated and the brake controller 10 will apply the brakes to obtain an optimised deceleration aimed at maximising energy recovery. At the same time the actuator 13 is operated to provide resistance to depression of the brake pedal beyond a position about 20% of the way between its released position and a fully depressed position. Whilst the pedal remains in the first 20% of its travel the braking systems operates in automatic mode, and the rate of deceleration is controlled automatically irrespective of pedal position.
(22) On depressing the brake pedal to 20% of its travel the driver will feel resistance as the decent position is approached. This signals to the driver that the braking system is operating in the automatic mode. If the driver does not depress the brake pedal beyond the point of resistance the braking system will remain in the automatic mode. If the driver depresses the brake pedal beyond the point of resistance the actuator will cease to resist depression of the pedal and the braking system will immediately revert to the standard mode and apply a retarding force dependent on pedal position. Once the system has switched to standard mode it will not revert to automatic mode until the brake pedal is fully released and reapplied and an obstacle is detected by the vehicle headway detector. The enables a driver to easily deselect the automatic mode and means that in the event of any failure of the automatic mode leading to a potential collision the driver's instinct to push harder on the brake pedal to stop the vehicle will cause the automatic mode to be disengaged.
(23) Provision of the automatic braking mode helps drivers to optimise energy recovery when driving a vehicle equipped with a regenerative braking system. Generally, the degree of deceleration available from a regenerative braking system is limited compared to that available from friction braking system. Under heavy braking, therefore, the friction braking system must be applied in order to achieve the desired deceleration. When the friction braking system is applied energy is dissipated as heat which might otherwise have been recovered by the regenerative system.
(24) The above embodiment is described by way of example only. Many variations are possible without departing from the scope of the invention as defined in the appended claims.