The invention relates to a pneumatic vehicle tire including a foam sound absorber in its interior, adhesively attached to the inner surface opposite from the tread and extending in an annular manner over the circumference of the tire. The sound absorber adheres to a previously applied, self-sealing sealant, which at least immediately after its application has a tackiness required for the adhesive attachment of the sound absorber.
Such a pneumatic vehicle tire is known from EP 2006125 A1. The inner absorber is a one-piece ring of open-cell foam which reduces the vibration of air in the tire and leads to an improvement in the noise conditions in the vehicle. The high-viscosity sealant applied to the inner side of the tire has two functions: it seals an undesired puncture of the tire in the region of the tread, in that in the event of damage to the inner layer the viscous sealant flows into the location of the damage. Moreover, the sealant serves at the same time as a “bonding agent” for securing the sound-absorbing foam ring.
However, the flow characteristics of the high-viscosity sealant may be adversely affected by the inner absorber lying on the sealant over its full surface area, meaning that the desired sealing effect only occurs after a delay or not at all. In cases wherein the penetrating foreign body comes out of the tire again and leaves a large air channel, reliable sealing by the sealant adversely affected in terms of its flow characteristics is particularly difficult.
“Highly viscous” should be understood here as meaning a sealant of which the viscosity is more than 10 Pa·s.
It is an object of the invention to improve the sealing of the tire in the event of punctures while improving the sound absorption.
The stated object is achieved according to the invention by the sound absorber including a plurality of annular component sound-absorber elements that extend in the circumferential direction and are arranged adjacent to one another in the axial direction. Two directly adjacently arranged annular component sound-absorber elements are arranged spaced apart from one another in the axial direction by a clear distance.
According to the invention, the sound absorber is not a one-piece annular sound absorber extending over the circumference of the tire, but instead the sound absorber includes a plurality of annular component sound absorbers extending in the circumferential direction. These component sound absorbers are arranged parallel and spaced apart from one another, that is, without contact. Each component sound-absorber element preferably extends over at least 340° of the circumference of the tire, that is, the annular component sound-absorber element may be a closed ring element or a non-closed ring element that has a gap between its two ends.
The sound absorption is improved as a result of the increased surface provided by the plurality of component sound-absorber elements in comparison with a single sound-absorbing ring. As a result of being spaced apart from one another, the plurality of annular component sound-absorber elements cover only part of the surface of the sealant. The sealant has free surfaces that are not covered by component sound absorbers, whereby the flow characteristics of the sealant in the event of punctures, and consequently the sealing of the tire, are improved.
There are arranged as many component sound absorbers of a suitable size that the volume of the sound absorber consisting of the component sound absorbers takes up between 1 and 30%, preferably between 10 and 15%, with respect to the volume of the cavity that is formed by the interior space of the operationally ready tire mounted on the rim.
It is advantageous if the clear distance between two directly adjacently arranged component sound-absorber elements is 5 mm to 15 mm, preferably 8 mm to 12 mm, particularly preferably approximately 10 mm, measured in the axial direction at the level of the widest extent of the component sound-absorber elements. This distance between the component sound-absorber elements allows reliable flow characteristics of the sealant in the event of tread punctures.
It is practical if the cross section of the component sound-absorber element has the form of a circle, a semicircle or a regular or irregular polygon, such as preferably a regular triangle or a regular quadrangle. In this case, either a narrow side or a broad side of the component sound absorber may lie on the sealant. If the narrow side lies on the sealant, the flow characteristics of the sealant are improved further. If the broad side lies on the sealant, the component sound-absorber element is arranged securely on the sealant in terms of tipping over.
It is practical if the width of the component sound-absorber element is 5 mm to 200 mm, preferably 5 mm to 100 mm, especially preferably 10 mm to 20 mm, measured in the axial direction at the elevation of the widest extent of the component sound-absorber element. Especially in conjunction with the spacing apart of the component sound-absorber elements, best possible flow characteristics of the sealant along with best possible sound absorption are achieved.
All sealants that are self-sealing and, at least immediately after application to the inner surface of the tire, are tacky enough that the subsequently applied sound absorber can be adhesively bonded with the sealant come into consideration within the scope of the invention. Therefore, sealants based on polyurethane or sealants that are a viscous mixture based on a butyl rubber, a polybutene or based on silicone are suitable, for example.
It is advantageous if the layer thickness of the sealant is between 2 mm and 5 mm, preferably approximately 3.5 mm. While providing reliable sealing in the event of punctures, the improved flow characteristics of the sealant make it possible to reduce the layer thickness of the sealant by 30%-50% in comparison with the layer thickness of the sealant with the foam ring lying over the full surface area. This advantageously saves costs and also tire weight.
The invention will now be described with reference to the drawings wherein:
In
On the right half of the drawing, various possible cross-sectional geometries of component sound-absorber elements 10, such as semicircles and a wide variety of polygons, such as a triangle, rectangle—horizontal or upright—or a square, are shown by way of example, the sound absorber 9 is preferably made up, however, of component sound-absorber elements 10 of the same geometry.
It is understood that the foregoing description is that of the preferred embodiments of the invention and that various changes and modifications may be made thereto without departing from the spirit and scope of the invention as defined in the appended claims.
Number | Date | Country | Kind |
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102015212489.4 | Jul 2015 | DE | national |
This application is a continuation application of international patent application PCT/EP2016/054263, filed Mar. 1, 2016, designating the United States and claiming priority from German application 10 2015 212 489.4, filed Jul. 3, 2015, and the entire content of both applications is incorporated herein by reference.
Number | Date | Country | |
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Parent | PCT/EP2016/054263 | Mar 2016 | US |
Child | 15861436 | US |