The present invention relates to a method of, and apparatus for, assembling and disassembling a resilient ring to and from a tire.
As known, wheels for motor vehicles suitable for allowing the motor vehicle to be driven even when a tire is flat have been available on the market for a number of years. This was made possible by providing a support ring made of relatively hard rubber material arranged on the wheel-rim within the tire of tired-wheels, and suitable for bearing the weight of the vehicle even when the tire has zero inner pressure. Such a system is commercially referred to as “PAX System”.
The resilient ring is to be fitted into the tire before the latter is fitted into a wheel-rim. However, since a resilient ring is designed to have a longer outer diameter than the tire keying diameter, the fitting and removal of the resilient ring are very laborious operations that involve remarkable deftness and efforts by the operator.
The main object of the present invention is to provide a new method or process for fitting and removing a resilient ring into and from a tire with no difficulty and in a very expeditious way.
Another object of the present invention is to provide an apparatus for carrying out such a method that is suitable for eliminating the shortcomings and difficulties hitherto faced when assembling/disassembling resilient rings.
A not last object of the present invention is to provide an apparatus for assembling/disassembling resilient rings having a very simple structure and suitable for being manufactured at low cost, whose use does not involve any specific training or deftness by the operator.
According to a first aspect of the present invention there is provided a method of fitting a resilient ring substantially circular in shape into a tire, and removing it therefrom, which comprises the following steps in sequence:
Advantageously, second deforming step is preceded by a relative angular displacement of approximately 90° of the tire with respect to the resilient ring in its circular in shape.
For disassembling the resilient ring, the above sequence is followed in reverse order.
According to another aspect of the present invention, there is provided a stretching apparatus for carrying out the assembling/disassembling method set forth above, which apparatus comprises a widening device and a driving means for the widening device.
Advantageously, said driving means comprises a linear actuator, such as a fluid-operated cylinder and piston assembly which, according to a preferred embodiment, can also act as a widening device.
The invention will be described in further detail below with reference to two currently preferred embodiments thereof, given by way of illustrative not limiting example with reference to the accompanying drawings, in which:
In the various Figures of the drawings the same or similar components are designated by the same reference numerals.
With reference first to the embodiment shown in
Stretching device 1 is extended so as to deform ring 1, while widening it so that it takes a substantially elliptical, or “flattened” shape, and can be comfortably fitted (
At this stage, stretching device 1 is caused to shrink, so that the resilient ring 1 is free to regain its standard circular shape in light 3 of the tire (
Tire 4 is then caused to rotate through approximately 90° with respect to about an axis normal to the lying plane of the resilient ring 1, or to resilient ring 1 within tire 4, about the same axis, so as to change from the arrangement shown in
The operator then actuates the stretching device 2, which stretches the resilient ring 1 in a diametral direction with respect to and within tire 4. Resilient ring 1 takes the shape shown in
An approximately 90° rotation of the resilient ring 1 about its own stretching diameter is then effected within tire 4, whereby resilient ring 1 is brought to a substantially coaxial position with respect to tire 4 (FIG. 6), thus being perfectly, rapidly and easily accommodated inside the receiving tire.
In the embodiment shown in
One then proceeds with widening the resilient ring 1 in a diametral direction and the resilient ring 1 is fitted lengthwise into centre light 3 of the receiving tire 4 (FIG. 8). The stretching device is then released so that resilient ring 1 regains its standard circular shape and remains engaged in light 3 (FIG. 9).
The operator then causes pantograph 5 to be extended in a perpendicular direction to that in which the resilient ring had been previously stretched, i.e. in a diametral direction with respect to tire 4, whereby it is entirely fitted into tire 4 (FIG. 10), after which the operator manually causes the resilient ring 1 to be rotated through approximately 90° in the tire about the diametrical direction along which the resilient ring is extended. Finally, parallelogram or pantograph 5 is caused to collapse or shrink, thus obtaining the configuration shown in
To remove the resilient ring 1, one proceeds by following the same sequence in reverse order, i.e. from
As shown in
The invention set forth above is susceptible to numerous modifications and variations within its scope as defined by the claims.
Number | Date | Country | Kind |
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VR2002A0038 | Apr 2002 | IT | national |
Number | Name | Date | Kind |
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3837064 | Membre et al. | Sep 1974 | A |
4050144 | de Massacre | Sep 1977 | A |
4251906 | Jacquemin | Feb 1981 | A |
4270592 | Patecell | Jun 1981 | A |
4516617 | Seitz et al. | May 1985 | A |
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5836366 | Muhlhoff | Nov 1998 | A |
6039825 | Siegenthaler | Mar 2000 | A |
6609293 | Corghi | Aug 2003 | B2 |
Number | Date | Country |
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3411635 | Oct 1985 | DE |
2 509 231 | Jan 1983 | FR |
02-141311 | Jul 1989 | JP |
Number | Date | Country | |
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20030193114 A1 | Oct 2003 | US |