The invention relates to a pneumatic vehicle tire, in particular a commercial vehicle tire, having a tread having in each case one shoulder-side profile rib which is separated in each case from a central tread portion by a wide circumferential groove which is made to profile depth and which runs around rectilinearly in the circumferential direction, wherein the circumferential groove has a rounded groove base and is delimited at the profile rib by a rib flank.
Commercial vehicle tires having such profile configurations are known in different variants. In the central tread region there can run further circumferential grooves which separate profile ribs from one another. The central tread region can also be structured with a block structure, for example with two or three block rows; a combination of profile ribs and blocks can also be provided in the central tread region. Commercial vehicle tires with treads configured in this way have proved themselves particularly at trailing axle positions of commercial vehicles or at positions of commercial vehicles at which relatively low lateral movements occur. A certain disadvantage of treads configured with such circumferential orientation having profile ribs on tire shoulders and having wide circumferential grooves adjoining said ribs is the low traction on account of non-present engagement edges.
The object on which the invention is based is to take constructional measures by means of which the traction performance of a tire having a tread with profile ribs in the shoulder regions can be improved.
The object set is achieved according to the invention in that recesses are formed on the rib flank of the circumferential groove at the profile rib periphery, which recesses have, in the direction of extent of the circumferential groove, a length of extent of 70% to 90% of the profile depth, at most of 30 mm, and in each case have, as seen in plan view, boundary surfaces which run toward one another in an L shape and extend in the radial direction, and a bottom surface, wherein, as seen in plan view, the one boundary surface runs into the profile rib at an angle of up to 10° to the axial direction, and the second boundary surface runs at an angle of 90° to 120° to the first-mentioned boundary surface, and wherein the bottom surface is situated at a depth of 15% to 25% of the profile depth.
Particularly the boundary surfaces of the recesses that run in the axial direction make available very effective traction edges at the profile rib periphery. The second boundary surfaces running roughly in the circumferential direction and the bottom surfaces situated at a relatively low depth simultaneously provide the profile ribs with good stabilization, thereby largely avoiding the occurrence of tears in the region of the recesses.
In a preferred embodiment of the invention, in the circumferential direction, the rib flank is composed of flank portions which run at an acute angle of 1° to 3° to the circumferential direction, wherein the flank portions are connected to one another via setbacks which are each concomitantly formed by the first boundary surface of the recesses. An advantageous effect of these flank portions running at a small acute angle to the circumferential direction is their contribution to traction.
A further advantage of these flank portions connected via setbacks consists in the fact that the first boundary surface is formed in the radial direction along the setback as an elongate triangular surface to the start of the groove base. Even with relatively large abrasion of the tread, there therefore always remains present a traction edge in the region of the setback.
In pneumatic vehicle tires which have, in the central tread region, profile blocks which are designed according to a method of pitch length variation and correspondingly follow one another in the circumferential direction, each pitch can be assigned a flank portion of the rib flank. This arrangement of the flank portions according to the pitch length variation provided in the central tread region is also advantageous for the tire/road noise.
In a further embodiment variant of the invention, a narrow transition surface running in the radial direction is present between the rib flank and the second boundary surface. This transition surface runs, as seen in plan view, in the axial direction or at an acute angle to the axial direction and has a width of at least 1.0 mm, in particular of 1.0 mm to 3.0 mm, in the axial direction. This narrow transition surface is advantageous for the stability of the rib flank in this region.
Further features, advantages and details of the invention will now be described in more detail on the basis of the drawing, which illustrates an exemplary embodiment and in which
Pneumatic vehicle tires embodied according to the invention are in particular off-road tires or commercial vehicle tires for a wide variety of intended uses, preferably large-size commercial vehicle tires for rim diameters of at least 24 inches. Such tires are for example tires for straddle carriers, reach stackers or container stackers. Tires embodied according to the invention have a one- or multi-ply carcass, either in the form of a radial carcass or of a diagonal carcass, and a multi-ply belt assembly or a plurality of breaker plies.
The profiled tread shown in the figures has, on the shoulder side, in each case one profile rib 1, said profile ribs being in each case separated from a central tread region 3 by a wide circumferential groove 2 which runs round in the circumferential direction. The profile ribs 1 have no or largely no profile structures, such as transverse grooves or sipes, and have a width b1 of 20% to 30% of the ground contact patch width B. Here, the ground contact patch width B corresponds to the spacing, determined in the axial direction, between the two outer marginal edges 1a of the profile ribs 1.
In the embodiment illustrated, the tread has, in the central tread portion 3, a block structure with profile blocks 3a which are separated from one another by transverse grooves 4 and by oblique grooves 5 which run at a small acute angle to the circumferential direction. Since the block structure in the central tread region 3 does not form the subject matter of the invention, the configuration thereof will not be discussed in detail. The central tread portion 3 is designed according to a method of pitch length variation, wherein each pitch comprises a pair of the profile blocks 3a, which are situated next to one another, in the central tread portion 3 together with in each case one of the transverse grooves 4 adjoining them in the circumferential direction. As is known per se and customary, such pitches are provided in different circumferential lengths, for example in two to three different circumferential lengths, in order in this way to favorably influence or to reduce the tire/road noise.
At least the circumferential grooves 2 have a depth which corresponds to the provided profile depth T (
As
Recesses 9 which are L-shaped when seen in plan view and which project into the profile rib 1 are formed on each rib flank 6 at the profile rib periphery. The recesses 9 are situated on the end portions of the flank portions 6a and therefore end at the setbacks. The main boundary surfaces of each recess 9 are boundary surfaces 10a, 10b which run along the L, and a bottom surface 11 which, as seen in plan view, substantially has the shape of an elongate triangle. The boundary surface 10a runs, while concomitantly forming the setback, starting from the rib flank 6, as seen in plan view, at an angle β1 of 0° to 35° to the axial direction, and the boundary surface 10b, which adjoins the boundary surface 10a, runs at an angle β2 to the boundary surface 10a which is 90° to 125°. The boundary surface 10b ends at a narrow transition surface 10d to the rib flank 6. The two boundary surfaces 10a, 10b also run in the radial direction or with respect to the radial direction at a small acute angle γ (
At the setback between the flank portions 6a, the boundary surface 10a is continued in the radial direction as an elongate narrow triangular surface 10c (
In an alternative embodiment of the invention, the profile rib 1 is configured with a continuous rib flank 6 such that the marginal edge of the rib flank 6 at the profile rib periphery 1a extends continuously and rectilinearly in the circumferential direction. Recesses configured according to the invention are then formed only by the two boundary surfaces 10a, 10b and the bottom surface 11.
Number | Date | Country | Kind |
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10 2017 203 011.9 | Feb 2017 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/050804 | 1/15/2018 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2018/153570 | 8/30/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5031680 | Kajikawa | Jul 1991 | A |
20080121325 | Durand | May 2008 | A1 |
20090218016 | Ducci | Sep 2009 | A1 |
20090272473 | Kojima | Nov 2009 | A1 |
20090320982 | Ochi | Dec 2009 | A1 |
20120103492 | Knispel | May 2012 | A1 |
20140367013 | Chambriard et al. | Dec 2014 | A1 |
20180147891 | Takahashi | May 2018 | A1 |
Number | Date | Country |
---|---|---|
101811420 | Aug 2010 | CN |
102010001898 | Sep 2010 | DE |
102011076813 | Dec 2011 | DE |
1950060 | Jul 2008 | EP |
2447092 | May 2012 | EP |
2666648 | Nov 2013 | EP |
S5675004 | Jun 1981 | JP |
2011131865 | Jul 2011 | JP |
2007099085 | Sep 2007 | WO |
Entry |
---|
JP 2011131865 Machine Translation; Saeki, Kentaro (Year: 2011). |
International Search Report dated Apr. 24, 2018 of international application PCT/EP2018/050804 on which this application is based. |
Number | Date | Country | |
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20210129593 A1 | May 2021 | US |