The present invention relates to a pump system and method for maintaining appropriate air pressure within a pneumatic tire. More specifically, the present invention relates to a wheel mounted system for directing air into a tire cavity of a pneumatic tire.
Conventional pneumatic tires are designed to perform for relatively long periods of time. In many cases, automobile tires are now expected to have a long useful service life. However, even long-life pneumatic tires are subject to air pressure losses due to puncture by nails and other sharp objects, temperature changes, and/or diffusion of air through the tire itself.
Since air diffusion reduces tire pressure over time, the pneumatic tires are often continually underinflated. Accordingly, drivers must repeatedly act to maintain tire pressures or fuel economy, tire life, and/or vehicle braking and handling performance will be reduced. Tire Pressure Monitoring Systems (TPMS) have been proposed to warn drivers when tire pressure is significantly low. Such systems, however, remain dependent upon a driver taking remedial action, when warned, to re-inflate a tire to the recommended pressure. It is desirable, therefore, to incorporate an air maintenance feature within a pneumatic tire that will maintain recommended air pressure without requiring bothersome driver intervention.
While pumping systems have been proposed, many are often too mechanically complex and costly as well as too bulky and heavy to commercialize. In addition, consumers are not willing to pay for an expensive pump system. Thus, an improved, low cost pump design that is simple, and easy to install is desired. The pump system must have a low-profile design so that is does not interfere with the mounting of the tire or other mechanical components.
A pumping mechanism in accordance with the present invention is used with a pneumatic tire mounted on a wheel to keep the pneumatic tire from becoming underinflated. The pumping mechanism includes a frame having a first chamber and a pump chamber, a strike plate positioned in the first chamber and being connected to a plunger plate, said plunger plate having a nose for engagement with a diaphragm mounted in the pump chamber; said pump chamber being in fluid communication with a pump inlet and a pump outlet; wherein actuation of the strike plate in the first chamber causes engagement of the nose with the diaphragm. Preferably the strike plate is actuated by a permanent magnet mounted on a stationary part, or the strike plate is actuated by an electrically driven magnet.
The following drawings are illustrative of examples of the present invention.
As shown in
The steel strike plate 220 is driven to reciprocate in the chamber 225 by the magnet 400 in the lower end of lower frame 210. Reciprocation of the strike plate 220 results in reciprocation of the guide rods 250 and the plunger plate 240. The bulbous nose 242 of the plunger plate engages a flexible diaphragm 280 positioned between the upper and lower frame. The flexible diaphragm 280 is positioned in a pump chamber 295 formed between a curved surface 298 of the lower frame 210 and plunger plate 240. Air in the pump chamber 295 is compressed by the diaphragm. A channel 290 is shown in
The driving force of the pump 200 may be a permanent magnet 400 that is placed on a fixed position near the wheel, such as the brake system or suspension system as shown in
If a permanent magnet 400 is used, then the control of the pumping action may be from inlet control 201 as shown in
The driving force of the pump may also be from an electric magnet 450 capable of being switched on and off as shown in
As shown in
In an alternate embodiment, any of the one or more pumps may be arranged in a groove on the wheel outside of the tire.
In an alternate embodiment, the driving force may be from the rotational energy of the wheel imparting energy to the strike plate or plunger plate. The mass of the strike plate or plunder sized to actuate as the wheel rotates. No magnet is needed.
Due to an amplification effect, the compression of the pump driving mechanism may be defined as:
R=(r)2n
The low-profile pump system as described herein have the advantage of a simple, low cost system that is easy to install on a wheel, and solves the problem of low tire pressure. The system is light, durable and provides a high driving force. The system may be used on consumer and commercial truck systems.
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.
Number | Name | Date | Kind |
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6533010 | Alonso | Mar 2003 | B1 |
8807182 | Kelly | Aug 2014 | B2 |
20100288411 | Loewe | Nov 2010 | A1 |
20140096881 | Loewe | Apr 2014 | A1 |
20150147198 | Chawla | May 2015 | A1 |
20150314658 | Lin | Nov 2015 | A1 |
Number | Date | Country |
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2010095165 | Apr 2010 | JP |
Entry |
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European Search Report for Serial No. EP18212048.5 dated Apr. 23, 2019. |
European Search Report for Serial No. EP18212732.4 dated May 24, 2019. |
Number | Date | Country | |
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20190184777 A1 | Jun 2019 | US |
Number | Date | Country | |
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62607412 | Dec 2017 | US |