Air Maintenance System
20190001767 ยท 2019-01-03
Inventors
- Jeffrey Silver Taggart (Cleveland Heights, OH, US)
- Shawn William DELLINGER (University Heights, OH, US)
- Cheng-Hsiung Lin (Hudson, OH, US)
- Norman David ANDERSON (Hartville, OH, US)
Cpc classification
B60C23/131
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An air maintenance system for use with a pneumatic tire is described. The air maintenance system includes a pumping mechanism that is preferably mounted on the interior surface of a wheel rim to keep the pneumatic tire from becoming underinflated. The pumping mechanism includes at least one dual chamber pump, preferably at least two dual chamber pumps configured in series. More preferably, the dual chamber pumps are driven by an external mass that moves as the tire rotates. The tire's rotational energy operates the pump to ensure the tire cavity is maintained at the desired pressure level. An optional control valve shuts off airflow to the pumping mechanism when the tire cavity pressure is at the desired level.
Claims
1. A pneumatic tire and rim assembly comprising: a pump assembly mounted to a wheel rim of the rim assembly, said pump assembly having a piston mounted in a chamber, wherein an external sliding mass is connected to a distal end of the piston, wherein said external mass operates the pump assembly during rotation of the tire.
2. The pneumatic tire and rim assembly of claim 1 wherein said pump is a double acting pump having a first and second chamber.
3. The pneumatic tire and rim assembly of claim 1 further including a plurality of check valves for maintaining air flow in the pumps in a single direction.
4. The pneumatic tire and rim assembly of claim 2 wherein the first and second pump chambers are connected in series.
5. The pneumatic tire and rim assembly of claim 4 wherein a check valve is provided between the first and second pump chambers.
7. The pneumatic tire and rim assembly of claim 1 further including an inlet control valve for controlling inlet air into at least one of the pump assemblies.
8. The pneumatic tire and rim assembly of claim 1 wherein the external sliding mass is connected to a leaf spring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The invention will be described by way of example and with reference to the accompanying drawings in which:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF AN EXAMPLE OF THE PRESENT INVENTION
[0035] The present invention is directed to an air maintenance system 10, and is shown in
[0036] The pump assembly 100 of the present invention is preferably mounted in the tire cavity to the wheel rim inner surface 206 of the wheel 200. The rim surface may preferably comprise a groove 203 for mounting the pump assembly 100. The pump assembly may alternatively be located on the outer wheel surface 205, opposite the inner surface 206, so that the pump assembly is located on the wheel, and outside of the tire cavity.
[0037] The pump assembly 100 as shown in
[0038] As shown in
[0039] To facilitate motion of the external mass, a leaf spring member 200 is preferably mounted to the external mass. The leaf spring 200 has a first end mounted to the external mass and a second end mounted to a fixed point such as the outer surface of the guide slots 132. Preferably, there are at least two leaf spring members.
[0040] Preferably, each pump 110 is a double acting pumpi.e., has two chambers. More preferably, the pump chambers are connected in series. Thus first pump 110 has a first pump chamber 111 and a second pump chamber 113. The piston forms a seal to allow for the two internal chambers of each pump.
[0041] As shown in
[0042]
[0043] Airflow is introduced into the pump assembly 100 via a modified valve stem assembly 300. The modified valve stem assembly 300 is shown in
[0044] The inlet control valve 400 is shown in
[0045] Preferably, there are at least two pump assemblies 100 are connected together so that each pump chamber is connected in series with another pump chamber, as shown in
R=(r).sup.2n
[0046] where
[0047] R: system compression ratio
[0048] r: single chamber compression ratio
[0049] n: number of pump in the system
Thus, a high compression ratio for each pump chamber is not necessary to achieve a high compression ratio (e.g., low force and/or deformation may produce high compression).
[0050] The pump assembly of the present invention is bi-directional. Hence, the rotation direction or installation direction will not have significant effect on pumping performance.
[0051] The pump driving mechanism of the present invention is based on gravitation change of the external mass during tire rotation. As the wheel is rotated, the sliding action of each external mass causes actuation of each piston pump due to the coupling of the external mass to the piston. Higher vehicle speed provides higher pumping frequency. The pumping action only depends on the external mass, and will not be affected by tire load or any other external conditions.
[0052] While certain representative examples and details have been shown for the purpose of illustrating the present invention, it will be apparent to those skilled in this art that various changes and modifications may be made therein without departing from the spirit or scope of the present invention.