Adaptive cruise control system and method for vehicle
The present invention provides a vehicular adaptive cruise control system and method that can adapt in real-time to tire and road conditions, vehicular weight, dynamics of the host vehicle, as well as other factors, to offer improved collision avoidance and warning.
1. An adaptive cruise control method, comprising:
calculating a maximum friction coefficient of a road;
calculating a minimum safety distance to a preceding vehicle based on the calculated maximum friction coefficient and a current running speed of a host vehicle;
setting a reference safety index based on the calculated minimum safety distance;
calculating a current safety index based on a relative distance to the preceding vehicle; and
controlling a vehicular distance from the preceding vehicle by comparing the current safety index with the reference safety index and accordingly operating an actuator.
2. The method of claim 1 , wherein the safety index is a time gap, said time gap defined as time it takes the host vehicle to travel the minimum safety distance at the current running speed thereof.
3. The method of claim 1 , wherein calculating the maximum friction coefficient of the road comprises:
calculating a brake gain;
calculating a traction force applied on each tire;
calculating a normal force applied on each tire;
calculating a friction coefficient of the road on which the host vehicle is running;
detecting tire and road information;
calculating a slip ratio and detecting a gradient thereof; and
estimating the maximum friction coefficient based on the friction coefficient and the gradient of the slip ratio.
4. The method of claim 3 , wherein the brake gain is calculated from a brake pressure that is applied by a brake actuator and an angular velocity of each wheel.
5. The method of claim 3 , wherein the traction force is calculated from a transmission torque and the brake gain.
6. The method of claim 5 , wherein the transmission torque is calculated from a torque converter torque and the angular velocity of each wheel.
7. The method of claim 6 , wherein the torque converter torque is calculated from an engine torque, a carrier speed, and a gear condition.
8. The method of claim 7 , wherein the engine torque is calculated from a degree of throttle opening and an engine speed.
9. The method of claim 3 , wherein the normal force is calculated from a total vehicular weight and dynamics of the host vehicle.
10. The method of claim 3 , wherein the tire information comprises information of the brake gain, the traction force, the normal force, and a tire effective radius.
11. The method of claim 10 , wherein the tire effective radius is defined as the distance between the road and a center of each wheel.
12. The method of claim 3 , wherein the road information comprises a wheel speed of each wheel, current running speed of the host vehicle, and slip ratio of each wheel.
13. The method of claim 12 , wherein the wheel speed of each wheel is detected by an angular velocity detector mounted on each wheel.
14. The method of claim 12 , wherein the current running speed of the host vehicle is detected by a vehicular speed detector mounted on an output shaft of a transmission.
15. The method of claim 3 , wherein the slip ratio is calculated from the angular velocity of each wheel, the current running speed, and the tire effective radius.
16. A system of an adaptive cruise control of a vehicle, comprising:
a friction coefficient calculator for calculating a friction coefficient of a road;
a slip ratio calculator for calculating a slip ratio between the road and each tire;
a vehicular distance detector for detecting a current vehicular distance to a preceding vehicle;
a slip ratio gradient detector for detecting a gradient of the slip ratio based on the friction coefficient and the slip ratio, the slip ratio gradient detector receiving a signal of the friction coefficient from the friction coefficient calculator and a signal of the slip ratio from the slip ratio calculator;
a maximum friction coefficient calculator for calculating a maximum friction coefficient between the road and each tire based on the gradient of the slip ratio, the maximum friction coefficient calculator receiving a signal of the gradient of the slip ratio from the slip ratio gradient detector;
a minimum safety distance calculator for calculating a minimum safety distance corresponding to the current running speed of the host vehicle based on the maximum friction coefficient, the minimum safety distance calculator receiving a signal of the maximum friction coefficient from the maximum friction coefficient calculator;
a safety index calculator for calculating a reference safety index and a current safety index corresponding to the minimum safety distance and the current vehicular distance to the preceding vehicle respectively, the safety index calculator receiving a signal of the minimum safety distance from the minimum safety distance calculator and a signal of the current vehicular distance from the vehicular distance detector;
a processor for comparing the current safety index with the reference safety index and generating a control signal thereby, the processor receiving a signal of the reference safety index and the current safety index from the safety index calculator; and
an actuator for controlling the current running speed of the host vehicle, the actuator receiving the control signal from the processor.
17. The system of claim 16 , wherein the friction coefficient calculator comprises:
a traction force calculator for calculating a traction force applied on each tire; and
a normal force calculator for calculating a normal force applied on each tire.
18. The system of claim 16 , wherein the slip ratio calculator comprises:
a tire effective radius detector for detecting a distance between the road and a center of each tire;
an angular velocity detector mounted on each wheel for detecting an angular velocity thereof; and
a vehicular speed detector for detecting the current running speed of the host vehicle.
19. The system of claim 17 , wherein the traction force calculator comprises:
a brake gain calculator for calculating a brake gain based on brake pressure and the angular velocity of each wheel; and
a transmission torque calculator for calculating a transmission torque based on a torque converter torque and the angular velocity of each wheel.
20. The system of claim 18 , wherein the angular velocity detector comprises an angular velocity sensor mounted on each wheel.
21. The system of claim 18 , wherein the vehicular speed detector comprises a vehicular speed sensor mounted on an output shaft of the transmission.