IP Library Granted Patent US 11,130,370
Granted Patent B2
US 11,130,370 · App. 15/954,452 · Granted Sep 28, 2021

Fuel efficiency system for a vehicle

Inventor: Richard Bryan Wood (Denton, TX)
Assignee: PACCAR Inc
B60C5/22B60C5/02B60C17/01B60C19/00B60C23/001B60C23/003
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Quick Facts
Patent No.
US 11,130,370
App. No.
15/954,452
Granted
Sep 28, 2021
Kind
B2
Abstract

Vehicle systems and components are set forth, which aim to reduce rolling friction caused in part by the contact between the vehicle's tires and the ground surface over which the vehicle is traversing. These systems and/or components thereof may increase the overall fuel efficiency of a vehicle. In the examples provided, the systems and/or components change the tread contact patch of one or more tires during movement of the vehicle.

Claims (33)

1. A method for increasing the efficiency of a vehicle having at least one wheel in contact with a ground surface, the wheel including a tubeless tire mounted to a rim and forming an inner cavity, the tubeless tire having sidewalls that extend outwardly from the rim to shoulders that are interconnected via a tread at a crown area of the tubeless tire, the method comprising:

sensing at least one vehicle operational parameter selected from a group comprising of vehicle speed, vehicle acceleration, vehicle deceleration, vehicle yaw, and vehicle roll; and

adjusting the tread of the tubeless tire from a first contact patch having a first width contacting the ground surface to a second contact patch spaced inwardly from the first contact patch having a second width contacting the ground surface based on the sensed vehicle operational parameter, the adjusting the tread of the tubeless tire including:

adjusting a volume of a sealed cavity defined by a first plate sealing a first end of a bellows, a second plate sealing a second end of the bellows, and the bellows being distinct from the first plate and the second plate of an actuator within the inner cavity of the tubeless tire, the adjusting the volume of the sealed cavity of the actuator including:

applying a first force through the first plate to an inner surface of the tubeless tire by inflating the bellows with a gas pushing the gas against a first plate, and applying a second force to the rim by the second plate to the rim by inflating the bellows with the gas pushing the gas against the second plate.

2. The method of claim 1 , wherein adjusting the tread of the tubeless tire from the first contact patch to the second contact patch further comprises increasing a first dimension of the actuator in a direction directed outward from the rim towards the tubeless tire increasing a second dimension of the tubeless tire in the direction.

3. The method of claim 1 , wherein adjusting the actuator further comprises adjusting a pressure in the sealed cavity of the actuator.

4. The method of claim 3 , wherein adjusting the pressure in the sealed cavity of the actuator further comprises increasing a dimension of the actuator extending in a direction outward from the rim towards the tubeless tire.

5. The method of claim 3 , wherein adjusting the pressure in the sealed cavity of the actuator further comprises inflating the actuator utilizing an air-valve in fluid communication with the actuator.

6. The method of claim 1 , wherein adjusting the tread of the tubeless tire further comprises adjusting a sidewall of the tubeless tire spaced outward from the tread of the tubeless tire.

7. The method of claim 1 , adjusting the tread of the tubeless tire from the second contact patch to the first contact patch based on the sensed vehicle operational parameter.

8. A method, comprising:

sensing at least one vehicle operational parameter selected from a group comprising of vehicle speed, vehicle acceleration, vehicle deceleration, vehicle yaw, and vehicle roll;

adjusting a ground contact surface of a tubeless tire from a first width to a second width based on the at least one vehicle operational parameter, adjusting the ground contact surface including:

adjusting a pressure in a sealed cavity of an actuator defined by a first plate, a second plate, and a bellows distinct from the first plate and the second plate of the actuator positioned within an interior cavity of the tubeless tire, adjusting the pressure by utilizing a valve in fluid communication with the sealed cavity of the actuator, the second width being different from the first width, the adjusting the pressure in the sealed cavity of the actuator including:

applying a first force to a rim on which the tubeless tire is mounted through a first plate of the actuator physically contacting the rim by introducing a gas into the sealed cavity through the valve such that the first plate applies the first force to the rim in a first direction; and

applying a second force to an inner surface of the tubeless tire through a second plate of the actuator physically contacting the inner surface of the tubeless tire by introducing the gas into the sealed cavity through the valve moving the second plate in a second direction opposite to the first direction.

9. The method of claim 8 , wherein adjusting the pressure in the sealed cavity of the actuator further comprises increasing the pressure in the sealed cavity from a first pressure to a second pressure that is greater than the first pressure.

10. The method of claim 9 , wherein increasing the pressure in the sealed cavity of the actuator further comprises increasing a dimension of the actuator in a direction directed outward from the rim on which the tubeless tire is mounted.

11. The method of claim 10 , wherein increasing the dimension of the actuator in the direction further comprises increasing a dimension of the tubeless tire in the direction.

12. The method of claim 8 , wherein adjusting a ground contact surface of the tubeless tire from the first width to the second width based on the at least one vehicle operational parameter further comprises adjusting the ground contact surface of the tubeless tire from the first width to the second width when the at least one vehicle operational parameter is above a selected threshold value.

13. The method of claim 12 , further comprising adjusting the ground contact surface of the tubeless tire from the second width to the first width based on the at least one vehicle operational parameter.

14. The method of claim 13 , wherein adjusting the ground contact surface of the tubeless tire from the second width to the first width based on the at least one vehicle operational parameter further comprises adjusting the ground contact surface of the tubeless tire from the first width to the second width when the at least one vehicle operational parameter is below a selected threshold value.

15. A method, comprising:

adjusting a ground contact surface of a tubeless tire from a first width to a second width based on at least one vehicle operation parameter, and adjusting profiles of shoulders of the tubeless tire based on the at least one vehicle operation parameter, the adjusting the ground contact surface and the adjusting the profiles of the shoulders including:

adjusting a pressure in a sealed cavity of a bellows within an inner cavity of the tubeless tire, the adjusting the pressure in the sealed cavity including:

applying a first force to a rim on which the tubeless tire is mounted by a first plate distinct from the bellows and coupled to a first end of the bellows by inflating the bellows with a gas pushing the gas against the first plate, the first plate sealing a first end of the bellows and physically contacting the rim; and

applying a second force to an inside surface of the tubeless tire through a second plate distinct from the bellows by inflating the bellows with the gas pushing the gas against the second plate, the second plate sealing a second end of the bellows and physically contacting the inner surface of the tubeless tire.

16. The method of claim 15 , wherein adjusting the pressure in the sealed cavity of the bellows further comprises adjusting the pressure from a first pressure to a second pressure, the second pressure being greater than the first pressure.

17. The method of claim 16 , wherein adjusting the pressure from the first pressure to the second pressure further comprises introducing air into the sealed cavity through an air fitting extending through the rim and in fluid communication with a port in fluid communication with the sealed cavity.

18. The method of claim 15 , wherein adjusting the pressure in the sealed cavity of the bellows further comprises adjusting the pressure from a first pressure to a second pressure, the first pressure being greater than the second pressure.

19. The method of claim 18 , wherein adjusting the pressure from the first pressure to the second pressure further comprises removing air from the sealed cavity through an air fitting extending through the rim and in fluid communication with a port in fluid communication with the sealed cavity.

20. The method of claim 1 , wherein the second width is less than half of the first width.

Continuity (2)
Division 14605743 · Jan 26, 2015
Related Publication 20180229555A1 · Aug 16, 2018