IP Library Granted Patent US 11,560,185
Granted Patent B2
US 11,560,185 · App. 16/382,954 · Granted Jan 24, 2023

System and method for controlling deployment of a vehicle air dam

Inventors: Andrew G. Kelly (Columbus, OH); Adham Nidal Noubani (Findlay, OH); Jesse P. Stout (Columbus, OH); Benjamin Russel Marchese (Columbus, OH)
Assignee: HONDA MOTOR CO., LTD.
B62D35/02B62D35/005B62D37/02H02P6/16
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,560,185
App. No.
16/382,954
Granted
Jan 24, 2023
Kind
B2
Abstract

A system and method for controlling deployment of a vehicle air dam that include receiving vehicle data associated with a vehicle operating condition. The system and method also include analyzing the vehicle data to determine if an elevated engine load condition is present to implement a normal air dam deployment mode or a prohibitive air dam deployment mode. The system and method further include controlling an actuator associated with the vehicle air dam to deploy or retract the vehicle air dam based on the implementation of the normal air dam deployment mode or the prohibitive air dam deployment mode.

Claims (30)

1. A computer-implemented method for controlling deployment of a vehicle air dam, comprising:

receiving vehicle data associated with a vehicle operating condition, wherein a real-time air intake pressure value reading and a real-time throttle position value reading are analyzed to determine a real-time engine load percentage;

analyzing the vehicle data by comparing the real-time engine load percentage to a predetermined engine load threshold percentage to determine if the real-time engine load percentage is equal to or above the predetermined engine load threshold percentage, wherein the deployment of the vehicle air dam is based on a speed of a vehicle, a vehicle transmission mode of the vehicle, and on the real-time engine load percentage being below the predetermined engine load threshold percentage, wherein the deployment of the vehicle air dam is prohibited based on the real-time engine load percentage being equal to or above the predetermined engine load threshold percentage; and

controlling an actuator associated with the vehicle air dam to deploy or retract the vehicle air dam based on the speed of the vehicle, the transmission mode of the vehicle and the real-time engine load percentage being below, equal to, or above the predetermined engine load threshold percentage, wherein the actuator is connected to a linkage and is configured to be extended during deployment of the air dam and retracted during retraction of the air dam, wherein the linkage is connected to a clutch that is configured to be disengaged and re-engaged protect the actuator against a range of potential impact loads on the air dam.

2. The computer-implemented method of claim 1 , wherein receiving vehicle data associated with the vehicle operating condition includes receiving an engine coolant temperature reading from an engine coolant temperature sensor.

3. The computer-implemented method of claim 2 , wherein analyzing the vehicle data to determine if an elevated engine load condition is present includes analyzing the engine coolant temperature reading as a vehicle operational value that is utilized to determine if the elevated engine load condition is present.

4. The computer-implemented method of claim 3 , wherein analyzing the vehicle data to determine if the elevated engine load condition is present includes comparing the engine coolant temperature reading to a predetermined coolant temperature threshold that is associated with a baseline elevated engine load.

5. The computer-implemented method of claim 4 , wherein it is determined that the elevated engine load condition is present based on determining that the engine coolant temperature reading meets or surpasses the predetermined coolant temperature threshold.

6. The computer-implemented method of claim 1 , wherein controlling the actuator associated with the vehicle air dam includes controlling the actuator to deploy the vehicle air dam based on determining that the speed of the vehicle meets or surpasses a predetermined speed threshold and based on the vehicle transmission mode of the vehicle.

7. The computer-implemented method of claim 1 , wherein controlling the actuator associated with the vehicle air dam includes controlling the actuator to deploy or retract the air dam based on a vehicle driving style mode of the vehicle, wherein the vehicle driving style mode includes at least one of a fuel efficient mode and a sport driving operational mode.

8. A computer-implemented method for controlling deployment of a vehicle air dam, comprising:

receiving vehicle data associated with a vehicle operating condition;

analyzing the vehicle data to determine if an uneven travel path condition is expected and comparing a real-time engine load percentage to a predetermined engine load threshold percentage to determine if the real-time engine load percentage is equal to or above the predetermined engine load threshold percentage to implement a normal air dam deployment mode or a prohibitive air dam deployment mode, wherein the deployment of the vehicle air dam is based on a speed of a vehicle and based on a vehicle transmission mode of the vehicle during implementation of the normal air dam deployment mode, wherein the deployment of the vehicle air dam is prohibited during the implementation of the prohibitive air dam deployment mode based on the determination that the uneven travel path condition is expected that is caused by at least one of: road conditions and environmental conditions that occur at a future point in time and on the real-time engine load percentage associated with an engine load of an engine of the vehicle being equal to or above the predetermined engine load threshold percentage, wherein the determination that the uneven travel path condition is expected is based on comparing a travel path condition value that indicates an amount of travel path unevenness that is expected in front of the vehicle against a predetermined travel path unevenness threshold value that pertains to an expected baseline level of unevenness of the travel path to determine if the travel path condition value meets or exceeds the predetermined travel path unevenness threshold value; and

controlling an actuator associated with the vehicle air dam to deploy or retract the vehicle air dam based on the implementation of the normal air dam deployment mode or the prohibitive air dam deployment mode.

9. The computer-implemented method of claim 8 , wherein analyzing the vehicle data to determine if the uneven travel path condition expected includes analyzing vehicle data output by a vehicle stability system to determine an amount of wheel slip of at least one wheel of the vehicle as a vehicle operational value, wherein the amount of wheel slip of the at least one wheel of the vehicle is compared to a predetermined wheel slip threshold that is associated with the expected baseline level of unevenness of the travel path.

10. The computer-implemented method of claim 9 , wherein it is determined that the uneven travel path condition is expected based on determining that the amount of wheel slip of the at least one wheel of the vehicle meets or surpasses the predetermined wheel slip threshold.

11. The computer-implemented method of claim 10 , wherein analyzing the vehicle data to determine the uneven travel path condition is expected includes analyzing data output by a climate sensor to determine an outside ambient temperature as an environmental value, wherein the outside ambient temperature is compared to a predetermined ambient temperature threshold that is associated with the expected baseline level of unevenness of the travel path.

12. The computer-implemented method of claim 11 , wherein it is determined that the uneven travel path condition is expected based on determining that the outside ambient temperature is below or meets the predetermined ambient temperature threshold.

13. The computer-implemented method of claim 8 , wherein controlling the actuator associated with the vehicle air dam includes controlling the actuator to deploy the vehicle air dam during the implementation of the normal air dam deployment mode based on determining that the speed of the vehicle meets or surpasses a predetermined speed threshold and based on the vehicle transmission mode of the vehicle.

14. The computer-implemented method of claim 13 , wherein controlling the actuator associated with the vehicle air dam during implementation of the prohibitive air dam deployment mode includes controlling the actuator to retract the vehicle air dam based on determining that the vehicle air dam is already deployed based on the speed of the vehicle during a prior implementation of the normal air dam deployment mode.

15. A system for controlling deployment of a vehicle air dam, comprising:

a memory storing instructions when executed by a processor cause the processor to:

receive vehicle data from at least one sensor of a vehicle, wherein the vehicle data is associated with a vehicle operating condition, wherein a real-time air intake pressure value reading and a real-time throttle position value reading are analyzed to determine a real-time engine load percentage;

analyze the vehicle data by comparing the real-time engine load percentage to a predetermined engine load threshold percentage to determine if the real-time engine load percentage is equal to or above the predetermined engine load threshold percentage, wherein the deployment of the vehicle air dam is based on a speed of a vehicle, a vehicle transmission mode of the vehicle, and on the real-time engine load percentage being below the predetermined engine load threshold percentage, wherein the deployment of the vehicle air dam is prohibited based on the real-time engine load percentage being equal to or above the predetermined engine load threshold percentage; and

control an actuator associated with the vehicle air dam to deploy or retract the vehicle air dam based on the speed of the vehicle, the transmission mode of the vehicle, and the real-time engine load percentage being below, equal to, or above the predetermined engine load threshold percentage, wherein the actuator is connected to a linkage that is connected to a clutch and is configured to be extended during deployment of the air dam and retracted during retraction of the air dam, wherein the linkage is connected to a clutch that is configured to be disengaged and re-engaged to protect the actuator against a range of potential impact loads on the air dam.

16. The system of claim 15 , wherein receiving vehicle data associated with the vehicle operating condition includes receiving an engine coolant temperature reading from an engine coolant temperature sensor.

17. The system of claim 16 , wherein analyzing the vehicle data to determine if an elevated engine load condition is present includes analyzing the engine coolant temperature reading as a vehicle operational value that is utilized to determine if the elevated engine load condition is present.

18. The system of claim 17 , wherein analyzing the vehicle data to determine if the elevated engine load condition is present includes comparing the engine coolant temperature reading to a predetermined coolant temperature threshold that is associated with a baseline elevated engine load.

19. The system of claim 18 , wherein it is determined that the elevated engine load condition is present based on determining that the engine coolant temperature reading meets or surpasses the predetermined coolant temperature threshold.

20. The system of claim 15 , wherein controlling the actuator associated with the vehicle air dam includes controlling the actuator to deploy or retract the air dam based on and a vehicle driving style mode of the vehicle, wherein the vehicle driving style mode includes at least one of a fuel efficient mode and a sport driving operational mode.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2019
From: KELLY, ANDREW G.; NOUBANI, ADHAM NIDAL; STOUT, JESSE P.; MARCHESE, BENJAMIN RUSSEL
To: HONDA MOTOR CO., LTD.
Reel/Frame 048873/0333 →
Continuity (1)
Related Publication 20200324834A1 · Oct 15, 2020
Cited By (3)
US 12,420,876 US 12,534,139 US 12,662,111