Tire comprising a tread having grooves with undercut side faces and reinforcing elements
11691458 · 2023-07-04
Assignee
Inventors
- Sylvain Morival (Clermont-Ferrand, FR)
- Frédéric Perrin (Clermont-Ferrand, FR)
- Patrick Pallot (Clermont-Ferrand, FR)
Cpc classification
B60C11/0041
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0058
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1346
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0008
PERFORMING OPERATIONS; TRANSPORTING
B60C11/13
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A tire has a tread 5 which includes grooves 7, the side faces 72 of which are undercut, and includes at least one circumferential reinforcing element 8-1 arranged axially relative to said undercut side face 72 at a distance “d” of between 0 and 15% of the axial width L51 of the tread block 51, at least extending radially from the inside towards the outside from a radial level situated above the wear limit level and to a radial height equal to 5% of the thickness “p” of the tread.
Claims
1. A tire comprising a tread having a contact surface for coming into contact with a carriageway when the tire is rolling, the tread comprising: at least one circumferential reinforcing element, at least a portion of a meridian cross-section of the at least one circumferential reinforcing element being in the shape of an obtuse triangle, a vertex of which is oriented radially toward the outside, and the at least one circumferential reinforcing element consisting of a rubber mixture with a dynamic shear modulus G* greater than a dynamic shear modulus G* of a main rubber mixture of the tread; at least two grooves extending at least partially circumferentially, each circumferential groove being delimited by a groove bottom and axially by two side faces; at least one tread block formed between two circumferential grooves, the at least one tread block having an axial width measured at a radial level corresponding substantially to the groove bottom, wherein at least one of the side faces is undercut, and wherein the at least one circumferential reinforcing element is arranged axially relative to the undercut side face at a non-zero distance d of between 0 and 15% of the axial width of the at least one tread block, the non-zero distance d being substantially constant extending radially from the inside toward the outside over an entire radial height h of the at least one circumferential reinforcing element and from a radial level situated above a wear limit level and to a radial height equal to 5% of a thickness p of the tread.
2. The tire according to claim 1, wherein the at least one circumferential reinforcing element consists of a rubber mixture with a dynamic shear modulus G* at least two times greater than the dynamic shear modulus G* of the main rubber mixture of the tread.
3. The tire according to claim 1, wherein the at least one circumferential reinforcing element forms the axially undercut side face.
4. The tire according to claim 1, wherein the rubber mixture forming the at least one reinforcing element has a dynamic shear modulus G* greater than 5 MPa.
5. The tire according to claim 4, wherein the rubber mixture forming the at least one reinforcing element has a dynamic shear modulus G* greater than 10 MPa.
6. The tire according to claim 1, wherein a dynamic shear modulus G* of a rubber mixture on the surface of the groove bottom is identical to the dynamic shear modulus G* of the main rubber mixture of the tread.
7. The tire according to claim 1, wherein the at least one circumferential reinforcing element is flush with the contact surface of the tread.
8. The tire according to claim 1, wherein the at least one circumferential reinforcing element is included on either side of at least one groove.
9. The tire according to claim 8, wherein circumferential reinforcing elements are axially connected by a strip formed from the same rubber mixture as the rubber mixture forming the circumferential reinforcing elements.
Description
DESCRIPTION OF THE FIGURES
(1) The objects of the invention will now be described with reference to the attached drawing, in which:
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DETAILED DESCRIPTION OF THE INVENTION
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(18) Each bead includes a bead wire 40. A carcass ply 41 is wound around each bead wire 40. The carcass ply 41 is radial and, in a manner known per se, consists of cords; in this implementation, these are textile cords; these cords are arranged substantially parallel to each other and extending from one bead to the other so that they form an angle of between 80° and 90° with the equatorial plane CP.
(19) The tread 5 comprises a plurality of tread blocks 51. Two tread blocks are axially separated by a groove 7 extending at least partially circumferentially, each circumferential groove 7 being delimited, radially towards the inside, by a groove bottom 71, and axially by two side faces 72. At least some of said tread blocks 51 include at least one circumferential reinforcing element, generally denoted by the reference sign “8”, followed by a suffix, to identify the different embodiments; thus, in
(20) The two side faces 72 of each of the grooves 7 are undercut. The meaning of “undercut” in the context of the present invention must be specified. Let α be the angle formed by the side face of a groove oriented essentially circumferentially relative to the direction perpendicular to the rolling surface. A side face is said to be undercut when the angle α is such that, travelling radially along the direction perpendicular to the rolling surface, from the outside towards the inside (i.e. towards the axis of rotation of the tyre), said side face moves away from said perpendicular direction on the side axially opposite the groove (i.e. the rubber mixture of the tread is never cut).
(21) The crown 2 includes a crown reinforcement 6 including two belt plies 61, 62; the carcass ply 41 is also present in the crown. Very conventionally, the belt plies 61, 62 are formed by metal cords arranged parallel to each other. In a well-known manner, the reinforcing elements formed by the cords of the carcass ply 41 and the cords of the belt plies 61, 62 are oriented in at least three different directions so as to form a triangulation.
(22) By convention, the axial width L51 of the tread block 51 is measured at the radial level corresponding to the bottom 71 of the groove 7. The wear limit is identified by the dashed line TWI. By convention, the thickness “p” of the tread, measured when the tyre is in new condition, between the contact surface for coming into contact with the carriageway when the tyre is rolling and the radially outer edge of the radially outermost belt ply 62, is taken as the reference. Advantageously, the dynamic shear modulus G* of the rubber mixture appearing on the surface of the bottom 71 of the groove 7 is identical to the dynamic shear modulus G* of the main rubber mixture of the tread. The circumferential reinforcing element 8-1 is arranged axially relative to said undercut side face 72 at a distance “d” equal to approximately 10% of the axial width L51 of the tread block 51. This distance “d” is substantially constant extending radially from the inside towards the outside over the entyre radial height “h” of the circumferential reinforcing element 8-1. This radial height “h” of the circumferential reinforcing element 8-1 reaches approximately 75% of the thickness “p” of the tread. The circumferential reinforcing element 8-1 is not flush with the contact face of the tread for coming into contact with the carriageway when the tyre is rolling. It must also be noted that, at its base, the axial width L8-1 of the circumferential reinforcing element 8-1 is equal to approximately 20% of the axial width L51 of the tread block 51.
(23) The reader can refer to table 1 (paragraph 77) of the aforementioned patent application WO2016/174100 to find a rubber composition cited for the reinforcing element, having a dynamic shear modulus G* (measured at 60° C. at 10 Hz and under an alternating shear stress of 0.7 MPa) equal to 30.3 MPa. There is no restriction or limitation regarding the main material for the tread, the present invention being compatible with any rigidity and/or loss factor value. In a particular, non-limitative embodiment, the invention can be used with a main material for the tread with a very low-rigidity rubber composition in order to achieve very high grip levels, for sport vehicle applications. The reader can refer to table 2 (paragraph 88) of the aforementioned patent application WO2016/174100 to find a rubber composition cited for the main material for the tread, having a dynamic shear modulus G* equal to 0.9 MPa.
(24) The description below illustrates variant embodiments of the invention with reference to
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(30) Advantageously, all of the blocks 51 are provided with at least one circumferential reinforcing element 8-x. This can be seen in the embodiments shown in
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(33) It must also be noted that the invention can be applied equally to inflated tyres and to non-pneumatic assemblies and that numerous combinations of shapes and arrangements of reinforcing elements are possible, without departing from the scope of the present invention.
(34) Although the general appearance of the reinforcing element is in the shape of a triangle, seen in meridian cross-section, it must therefore be understood that a plurality of geometries (seen in meridian cross-section) meets the requirements of the present invention. This is illustrated in