METHOD FOR MANAGING THE BRAKING OF A MOTOR VEHICLE

FR3165848B1Active Publication Date: 2026-07-17STELLANTIS AUTO SAS
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Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
STELLANTIS AUTO SAS
Filing Date
2024-09-05
Publication Date
2026-07-17
Patent Text Reader

Abstract

The invention relates to a method for managing the braking of a motor vehicle, said vehicle comprising an engine control unit configured to determine a first wheel torque setpoint as a function of the first compression rate, said vehicle comprising a speed control device capable of determining a second wheel torque setpoint, said speed control device being capable of determining a third wheel torque setpoint when said determined wheel torque is greater than said second wheel torque setpoint, characterized in that said method comprises a step of maintaining the third wheel torque setpoint by the engine control unit when said second compression rate is strictly greater than 0, said second wheel torque setpoint decreasing proportionally to the increase in the second compression rate. Figure 1
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Description

Title of the invention: METHOD FOR MANAGING THE BRAKING OF A MOTOR VEHICLE

[0001] The invention relates to the management of braking in motor vehicles.

[0002] Prior art patent application EP3363696 is known, describing a speed control system with several disengagement modes selected by a brake pedal of an automated vehicle. The system comprises the brake pedal and a controller. Each disengagement mode is determined by the pressure exerted on the brake pedal, the duration of the pressure, or a combination of the pressure exerted on the brake pedal and the duration of the pressure. A first disengagement mode is the disengagement of the vehicle's acceleration control, while maintaining the vehicle's deceleration control. A second disengagement mode is the disengagement of both the vehicle's acceleration control and the vehicle's deceleration control. Another disengagement mode is the complete deactivation of the speed control system.The pressure applied to the brake pedal and / or the duration of brake pedal pressure is transmitted to the controller, which is responsible for providing a command to implement one of the disengagement modes. However, a drawback remains. When the vehicle is descending and / or heavily loaded, its speed may exceed the speed commanded by the cruise control system. Therefore, the driver will not exert the same force over the same duration to slow the vehicle down compared to driving on level ground. Similarly, when going uphill, the driver will not exert the same force and pressure duration to achieve the same braking effect as when going downhill, for example. The disengagement modes do not take into account the terrain on which the vehicle is traveling. They are therefore not suitable for all types of terrain.

[0003] The objective of the present invention is to remedy these drawbacks and to allow linear braking of the vehicle when the cruise control is deactivated by the driver.

[0004] To achieve this objective, the invention proposes a method for managing the braking of a motor vehicle, said vehicle comprising an accelerator pedal configured to have a first depressment rate and a brake pedal configured to have a second depressment rate, said vehicle comprising an engine control unit configured to determine a first torque setpoint at the wheel as a function of the first depressment rate, said vehicle having a determined wheel torque, said vehicle comprising a regulation device of the speed capable of determining a second wheel torque setpoint when said speed control device is activated by the driver, said speed control device being capable of determining a third wheel torque setpoint when said determined wheel torque is greater than said second wheel torque setpoint and when said speed control device is activated, the second torque setpoint and the third wheel torque setpoint determining the determined wheel torque, the third wheel torque setpoint being less than the second wheel torque setpoint, notable in that said method includes a step of maintaining the third wheel torque setpoint by the engine control unit when said second rate of descent is strictly greater than 0, said second wheel torque setpoint decreasing proportionally to the increase in the second rate of descent..

[0005] Thanks to the invention, braking is linear because it is solely linked to the driver's will.

[0006] Advantageously, said method includes a step of canceling the third torque setpoint to the wheel when said second sinking rate decreases to a predetermined threshold value.

[0007] In this way, the reduction imposed by the third wheel torque setting is canceled at an appropriate time, that is, when the driver releases at least partially the brake pedal, rather than when he wishes to reduce the wheel torque more strongly.

[0008] Advantageously, during said step of cancellation of the third wheel torque setting, said third wheel torque setting increases proportionally to the decrease of the second compression rate, said second compression rate decreasing when the driver releases said brake pedal, said third wheel torque setting being cancelled when said second compression rate decreases to the predetermined threshold value.

[0009] Thus, the increase in the determined wheel torque is done gradually so as not to surprise the driver.

[0010] Advantageously, said predetermined threshold value is equal to 0%.

[0011] Thus, the speed regulation device is completely deactivated as soon as the driver fully releases the brake pedal.

[0012] Preferably, said speed control device is an adaptive speed regulator, a fixed speed regulator, a speed limiter or a speed limiting device.

[0013] The invention also relates to a computer program comprising instructions which, when said program is executed by a computer, lead this one to implement the steps of the braking management process of a motor vehicle previously described.

[0014] Furthermore, the invention relates to a motor vehicle comprising an engine control unit configured to implement the motor vehicle braking management method described above.

[0015] Preferably, said vehicle is of the electric, hybrid or hydrogen type.

[0016] The invention will be further detailed by the description of a non-limiting embodiment, and on the basis of the attached figure illustrating the invention, in which [Fig.1] represents a graph representing several parameters related to the braking of the vehicle as a function of time t.

[0017] The invention relates to a method for managing the braking of a motor vehicle. Preferably, the motor vehicle is electric, hybrid, or hydrogen-powered. The vehicle includes an accelerator pedal configured to have a first depress rate and a brake pedal configured to have a second depress rate. Furthermore, the vehicle includes an engine control unit configured to determine a first wheel torque setpoint based on the first depress rate, i.e., based on the depress rate of the accelerator pedal. The vehicle has a predetermined wheel torque. The wheel torque is positive when the vehicle accelerates. The wheel torque is negative when the vehicle brakes.Furthermore, the vehicle is equipped with a speed control system configured to determine a second wheel torque setting when the driver activates the speed control system. For example, the speed control system is activated when the driver moves a lever located on the steering wheel. The primary function of the speed control system is to maintain a constant vehicle speed, regardless of the terrain. Thus, when the vehicle is traveling on a downhill slope, it is necessary to reduce the wheel torque to prevent acceleration contrary to the driver's intent. Preferably, the speed control system is selected from among adaptive cruise control, fixed cruise control, a speed limiter, or a speed-limiting device.Adaptive cruise control, also known as adaptive cruise control (ACC), is a speed regulation system that, in addition to maintaining a constant speed, automatically adjusts the vehicle's speed based on the distance to the vehicle in front. Fixed speed control is another system that maintains a constant speed, regardless of the position of surrounding vehicles. A speed limiter is a system that... The driver sets a maximum speed that the vehicle must not exceed. Unlike adaptive or fixed cruise control, the driver must manually maintain acceleration, but the system will prevent the vehicle from exceeding the preset speed. Speed ​​limiting is a safety feature that restricts a vehicle's maximum speed to a predetermined value. This may be mandated by the manufacturer for safety reasons or activated voluntarily by the driver. Speed ​​limiting is designed to prevent the risk of excessive speeds. Furthermore, the cruise control system is capable of determining a third wheel torque setting when the set wheel torque exceeds the second wheel torque setting and the cruise control system is activated.The wheel torque is determined based on the second and third wheel torque setpoints. During a step to maintain the third wheel torque setpoint, the engine control unit commands that the third wheel torque setpoint be maintained when the second brake pedal deflection is strictly greater than 0. In other words, the third wheel torque setpoint is maintained when the driver applies force to the brake pedal. However, a second brake pedal deflection strictly greater than 0 causes the second wheel torque setpoint to decrease. The decrease in the second wheel torque setpoint is proportional to the increase in the second brake pedal deflection. Indeed, as in the prior art, the speed control device is deactivated when the driver presses the brake pedal.This results in a decrease in the second wheel torque setting. The invention prevents the third wheel torque setting from being canceled simultaneously with the cancellation of the second wheel torque setting. This is because the third wheel torque setting is lower than the second wheel torque setting. When applied, the third wheel torque setting constantly reduces the vehicle's speed, resulting in braking. If the driver presses the brake pedal and the third wheel torque setting is canceled at the same time as the second wheel torque setting decreases, the braking effect of the third wheel torque setting is interrupted, which is contrary to the driver's intention to brake more aggressively.Thanks to the invention, maintaining the third wheel torque setting as long as the driver applies force to the brake pedal allows for linear braking, adapted to the driver's intent. In this case, the third wheel torque setting is canceled by the engine control unit when the driver releases the brake pedal. Optionally, the method includes a step of canceling the third wheel torque setting when said second... The compression rate decreases to a predetermined threshold value. Preferably, during the cancellation step of the third wheel torque setting, the third wheel torque setting increases proportionally to the decrease in the second compression rate. This is because the second compression rate decreases as the driver gradually releases the brake pedal. Therefore, the third wheel torque setting increases gradually to achieve smoother braking, which is less likely to surprise the driver. The third setting is completely canceled when the second compression rate decreases to the predetermined threshold value. Preferably, the predetermined threshold value is 0%. In other words, the brake pedal is fully released.

[0018] Figure 1 is a graph representing several parameters related to vehicle braking as a function of time t. Part A represents the period during which the third wheel torque setting is maintained. Part B represents the transition period during which said third wheel torque setting increases proportionally to the decrease in the second compression rate. A first curve C1 represents the predetermined wheel torque, taking into account the second and third wheel torque settings, as a function of time t. A second curve C2 represents the evolution of the third wheel torque setting as a function of time t. A third curve C3 represents the evolution of the second wheel torque setting as a function of time t.A fourth curve, C4, represents the evolution of the second brake pedal pressure, that is, the evolution of the force exerted by the driver on the brake pedal, as a function of time t. During period A, the third wheel torque setting is constant, as shown on the second curve, C2, while the third curve, C3, decreases to progressively reduce the predetermined wheel torque represented by the first curve, C1. The evolution of the third curve, C3, is inversely proportional to the evolution of the fourth curve, C4. Indeed, as the driver increases the pressure on the brake pedal, the second wheel torque setting decreases proportionally. The third wheel torque setting is not affected because it remains constant as long as the driver applies force to the brake pedal.This results in an overall decrease in the wheel torque, as represented by the first curve CL. During period B, the fourth curve C4 gradually decreases as the driver progressively releases the brake pedal. This causes the second wheel torque setting to increase proportionally. The third wheel torque setting, represented by the second curve C2, increases proportionally to the decrease in the second brake pedal travel, represented by the fourth curve C4.

[0019] The invention also relates to a computer program configured to implement the method described above. Furthermore, the invention relates to a motor vehicle comprising an engine control unit configured to implement said method.

Claims

Demands

1. A method for managing the braking of a motor vehicle, said vehicle comprising an accelerator pedal configured to have a first depressment rate and a brake pedal configured to have a second depressment rate, said vehicle comprising an engine control unit configured to determine a first wheel torque setpoint as a function of the first depressment rate, said vehicle having a determined wheel torque, said vehicle comprising a speed control device capable of determining a second wheel torque setpoint when said speed control device is activated by the driver, said speed control device being capable of determining a third wheel torque setpoint when said determined wheel torque is greater than said second wheel torque setpoint and when said speed control device is activated,the second torque setpoint and the third wheel torque setpoint determining the determined wheel torque, the third wheel torque setpoint being lower than the second wheel torque setpoint, characterized in that said method comprises a step of maintaining the third wheel torque setpoint by the motor control unit when said second penetration rate is strictly greater than 0, said second wheel torque setpoint decreasing proportionally to the increase in the second penetration rate.

2. The method according to claim 1 characterized in that said method comprises a step of canceling the third torque setpoint to the wheel when said second sinking rate decreases to a predetermined threshold value.

3. The method according to claim 2 characterized in that, during said step of canceling the third wheel torque setting, said third wheel torque setting increases proportionally to the decrease in the second compression rate, said second compression rate decreasing when the driver releases said brake pedal, said third wheel torque setting being canceled when said second compression rate decreases to the predetermined threshold value.

4. A method according to claim 2 or 3 characterized in that said predetermined threshold value is equal to 0%.

5. A method according to any one of claims 1 to 4 characterized in that said speed control device is an adaptive speed regulator, a fixed speed regulator, a speed limiter or a speed restrictor device.

6. A computer program comprising instructions which, when said program is executed by a computer, cause the computer to carry out the steps of the method for managing the braking of a motor vehicle according to any one of claims 1 to 5.

7. A motor vehicle comprising an engine control unit configured to implement the method of managing the braking of a motor vehicle according to any one of claims 1 Q

8. 1 d J. Vehicle according to claim 7 characterized in that said vehicle is of the electric, hybrid or hydrogen type.