Thin reinforced product and tire comprising said product
10391817 ยท 2019-08-27
Assignee
Inventors
- Sebastien Noel (Clermont-Ferrand, FR)
- Aurore Lardjane (Clermont-Ferrand, FR)
- SEBASTIEN RIGO (Clermont-Ferrand, FR)
Cpc classification
B60C9/2009
PERFORMING OPERATIONS; TRANSPORTING
B60C2009/0021
PERFORMING OPERATIONS; TRANSPORTING
B60C9/2006
PERFORMING OPERATIONS; TRANSPORTING
B60C15/00
PERFORMING OPERATIONS; TRANSPORTING
B60C9/1807
PERFORMING OPERATIONS; TRANSPORTING
B60C2009/2077
PERFORMING OPERATIONS; TRANSPORTING
B60C9/0064
PERFORMING OPERATIONS; TRANSPORTING
B60C11/00
PERFORMING OPERATIONS; TRANSPORTING
B60C13/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C9/18
PERFORMING OPERATIONS; TRANSPORTING
B60C9/28
PERFORMING OPERATIONS; TRANSPORTING
B60C9/20
PERFORMING OPERATIONS; TRANSPORTING
B60C13/00
PERFORMING OPERATIONS; TRANSPORTING
B60C11/00
PERFORMING OPERATIONS; TRANSPORTING
B60C15/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A reinforced product (21) comprises: an elastomer matrix (23), several reinforcing elements (44) embedded in the elastomer matrix (23), the reinforcing elements (44) being arranged side by side in a main direction (X1). Each reinforcing element (44) comprises: at least one filamentary element (46) comprising a single monofilament, and at least one sheath coating the filamentary elements (46) and comprising at least one layer of a thermoplastic polymer composition. The ratio R1=ODO/E of the mean minimum thickness ODO of elastomer present on the back of the sheath to the mean thickness E of the reinforced product (21) is less than or equal to 0.17, the mean minimum thickness of elastomer ODO and mean thickness E of the reinforced product (21) being measured in a direction (Y1) substantially perpendicular to the main direction (X1).
Claims
1. A tire comprising: a crown surmounted by a tread; two sidewalls; two beads, each sidewall connecting each bead to the crown; a carcass reinforcement anchored in each of the beads and extending through the sidewalls as far as the crown, and a crown reinforcement interposed radially between the carcass reinforcement and the tread, wherein the tire is a passenger vehicle tire, and wherein the crown reinforcement is a reinforced product comprising: an elastomer matrix, several reinforcing elements embedded in the elastomer matrix, the reinforcing elements being arranged side by side in a main direction, each reinforcing element comprising: at least one filamentary element comprising a single monofilament, and at least one sheath coating the filamentary elements and comprising at least one layer of a thermoplastic polymer composition, wherein a mean thickness E of the reinforced product is less than or equal to 0.95 mm; wherein a pitch P at which the reinforcing elements are laid in the main direction is less than or equal to 1.1 mm; wherein the ratio R1=ODO/E of the mean minimum thickness ODO of elastomer present on the sheath to the mean thickness E of the reinforced product is less than or equal to 0.17, the mean minimum thickness of elastomer ODO and mean thickness E of the reinforced product being measured in a direction substantially perpendicular to the main direction; wherein the ratio R2=B/E of the mean minimum thickness B of elastomer separating two successive reinforcing elements in the main direction to the mean thickness E of the reinforced product is less than or equal to 0.3; wherein each filamentary element has a mean bulk D in the direction substantially perpendicular to the main direction, and wherein the ratio R3=D/E of the mean bulk D to the mean thickness E of the reinforced product is less than or equal to 0.6.
2. The tire according to claim 1, wherein the ratio R1 is less than or equal to 0.15.
3. The tire according to claim 1, wherein the mean minimum thickness ODO is less than or equal to 0.17 mm.
4. The tire according to claim 1, wherein the mean minimum thickness ODO is less than or equal to 0.11 mm.
5. The tire according to claim 1, wherein the mean thickness E is less than or equal to 0.75 mm.
6. The tire according to claim 1, wherein the ratio R2=B/E of the mean minimum thickness B of elastomer separating two successive reinforcing elements 44 in the main direction to the mean thickness E of the reinforced product is less than or equal to 0.3.
7. The tire according to claim 1, wherein the mean minimum thickness B of elastomer separating two successive reinforcing elements in the main direction is less than or equal to 0.5 mm.
8. The tire according to claim 1, wherein the mean minimum thickness B of elastomer separating two successive reinforcing elements in the main direction is less than or equal to 0.2 mm.
9. The tire according to claim 1, wherein the pitch P at which the reinforcing elements are laid in the main direction is less than or equal to 0.8 mm.
10. The tire according to claim 1, wherein the mean thickness G of the sheath on each filamentary element in the direction substantially perpendicular to the main direction ranges from 35 m to 200 m.
11. The tire according to claim 1, wherein each reinforcing element comprises a single filamentary element.
12. The tire according to claim 1, wherein each reinforcing element comprises several filamentary elements, each comprising a single monofilament and a communal sheath collectively coating the filamentary elements.
13. The tire according to claim 1, wherein each monofilament is metallic.
14. The tire according to claim 1, wherein each monofilament has a diameter ranging from 0.10 mm to 0.35 mm.
15. The tire according to claim 1, wherein each monofilament has a diameter ranging from 0.14 mm to 0.20 mm.
16. The tire according to claim 1, wherein each filamentary element has a mean bulk D in the direction substantially perpendicular to the main direction, and wherein the ratio R3=D/E of the mean bulk D to the mean thickness E of the reinforced product is less than or equal to 0.5.
17. The tire according to claim 1, wherein the thermoplastic polymer composition comprises a thermoplastic polymer, a functionalized diene elastomer, a poly(p-phenylene ether) or a mixture of these materials.
18. The tire according to claim 1, wherein the sheath is coated with a layer of an adhesive providing adhesion between the sheath and the elastomer matrix.
19. The tire according to claim 1, wherein the crown reinforcement comprises a working reinforcement comprising the reinforced product and a hoop reinforcement which is interposed radially between the working reinforcement and the tread.
20. The tire according to claim 19, wherein the hoop reinforcement comprises at least one textile hoop reinforcing element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be better understood from reading the description which will follow, given solely by way of non-limiting example and made with reference to the drawings in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE INVENTION
(7) In the following description when using the term radial it is appropriate to make a distinction between the various different uses made of this word by those skilled in the art. Firstly, the expression refers to a radius of the tyre. It is in this sense that a point P1 is said to be radially inside a point P2 (or radially on the inside of the point P2) if it is closer to the axis of rotation of the tyre than is the point P2. Conversely, a point P3 is said to be radially outside a point P4 (or radially on the outside of the point P4) if it is further away from the axis of rotation of the tyre than is the point P4. Progress will be said to be radially inwards (or outwards) when it is in the direction of smaller (or larger) radii. It is this sense of the term that applies also when matters of radial distances are being discussed.
(8) By contrast, a reinforcing element or reinforcement is said to be radial when the reinforcing element or the reinforcing elements of the reinforcement make an angle greater than or equal to 65 and less than or equal to 90 with the circumferential direction.
(9) An axial direction is a direction parallel to the axis of rotation of the tyre. A point P5 is said to be axially inside a point P6 (or axially on the inside of the point P6) if it is closer to the midplane M of the tyre than is the point P6. Conversely, a point P7 is said to be axially outside a point P8 (or axially on the outside of the point P8) if it is further from the midplane M of the tyre than is the point P8.
(10) The midplane M of the tyre is the plane that is normal to the axis of rotation of the tyre and situated equal distances from the annular reinforcing structures of each bead.
(11) A circumferential direction is a direction which is perpendicular both to a radius of the tyre and to the axial direction.
(12) Furthermore, any range of values denoted by the expression from a to b means the range of values extending from the end point a up to the end point b, namely including the strict end points a and b.
(13) Example of a Tyre and of a Reinforced Product According to the Invention
(14) The figures indicate a frame of reference X, Y, Z corresponding to the usual respective axial (X), radial (Y) and circumferential (Z) directions of a tyre.
(15)
(16) The tyre 10 comprises a crown 12 comprising a crown reinforcement 14 comprising a working reinforcement 15 comprising two working plies 16, 18 of reinforcing elements and a hoop reinforcement 17 comprising a hooping ply 19. The crown reinforcement 14 is surmounted by a tread 20. In this instance, the hoop reinforcement 17, in this instance the hooping ply 19, is interposed radially between the working reinforcement 15 and the tread 20.
(17) Two sidewalls 22 extend the crown 12 radially inwards. The tyre 10 further comprises two beads 24 radially on the inside of the sidewalls 22 and each one comprising an annular reinforcing structure 26, in this instance a bead wire 28, surmounted by a mass of filling rubber 30, and a radial carcass reinforcement 32. The crown reinforcement 14 is interposed radially between the carcass reinforcement 32 and the tread 20. Each sidewall 22 connects each bead 24 to the crown 14.
(18) The carcass reinforcement 32 preferably comprises a single carcass ply 34 of radial textile reinforcing elements. The carcass reinforcement 32 is anchored to each of the beads 24 by being folded around the bead wire 28 to form, in each bead 24, a main strand 38 extending from the beads 24 through the sidewalls 22 into the crown 12, and a turnup 40, the radially outer end 42 of the turnup 40 being radially on the outside of the annular reinforcing structure 26. The carcass reinforcement 32 thus extends from the beads 24 through the sidewalls 22 into the crown 12. In this embodiment, the carcass reinforcement 32 also extends axially through the crown 12.
(19) The tyre 10 comprises at least one circumferential groove 31 formed in the tread 20. The mean thickness C of mass of rubber of the tread 20 separating a radially internal bottom 33 of the circumferential groove 31 from the radially external edge 35 of the crown reinforcement 14, in this instance the radially external surface of the hooping ply 19, is preferably less than or equal to 1.5 mm, and more preferably still less than or equal to 1 mm.
(20) Each working ply 16, 18 forms a reinforced product 21 according to the invention comprising reinforcing elements 44 making an angle ranging from 15 and 40, preferably ranging from 20 to 30 and here equal to 26 with the circumferential direction Z of the tyre 10. The reinforcing elements 44 are crossed from one working ply with respect to the other.
(21) The hooping ply 19 comprises textile hoop reinforcing elements making an angle at most equal to 10, preferably ranging from 5 to 10, with the circumferential direction Z of the tyre 10. In this particular instance, the textile hoop reinforcing elements are folded yarns made from a heat-shrink material, in this case polyamide 166, each folded yarn consisting of two 140-tex spun yarns which have been twisted together (on a direct cabling machine) at 250 turns/meter, the diameter of which is equal to approximately 0.66 mm. The thermal contraction CT of each textile hoop reinforcing element is equal to approximately 7%.
(22) Each working ply 16, 18, hooping ply 19 and carcass ply 34 comprises an elastomer matrix 23 in which the reinforcing elements of the corresponding ply are embedded. The rubber compositions of the elastomer matrices 23 of the working plies 16, 18, hooping ply 19 and carcass ply 34 are conventional compositions for the calendering of reinforcing elements comprising in the conventional way a diene elastomer, for example natural rubber, a reinforcing filler, for example carbon black and/or silica, a cross-linking system, for example a vulcanizing system, preferably containing sulphur, stearic acid and zinc oxide, and possibly a vulcanization accelerant and/or retarder and/or various additives.
(23)
(24) Each filamentary element 46 comprises comprising a single monofilament 52. Each monofilament 52 is metallic, in this instance made of steel coated with a protective coating containing for example brass or zinc. Each monofilament 52 has a diameter ranging from 0.10 mm to 0.35 mm and in this instance equal to 0.30 mm.
(25) Each filamentary element 46 has a mean bulk D in the direction Y1 substantially perpendicular to the main direction X1, in this instance in the direction of the thickness of the reinforced product 21. The bulk D is here equal to the diameter of the circle circumscribing the filamentary element 46. In this instance, D=0.30 mm.
(26) The sheath 48 has a mean thickness G on the back of each filamentary element 46 in the direction Y1 perpendicular to the main direction X1 ranging from 1 m to 2 mm, preferably from 10 m and 1 mm and more preferably from 35 m to 200 m. Here, G=75 m.
(27) The sheath 48 comprises a single layer 50 of the thermoplastic polymer composition comprises a thermoplastic polymer, a functionalized diene elastomer, a poly(p-phenylene ether) or a mixture of these materials. In this instance, the thermoplastic polymer composition comprises a thermoplastic polymer, for example polyamide 66. Optionally, the thermoplastic polymer composition may comprise a functionalized diene elastomer, for example a thermoplastic styrene comprising an epoxide, carbonyl, anhydride or ester function and/or a poly-p-phenylene ether.
(28) The sheath 48 is coated with a layer of an adhesive (not depicted) providing adhesion between the sheath 48 and the elastomer matrix 23.
(29) The mean thickness E of the reinforced product, in this instance of each working ply 16, 18, is less than or equal to 0.95 mm, preferably less than or equal to 0.85 mm, and more preferably less than or equal to 0.75 mm and in this instance E=0.64 mm.
(30) The mean minimum thickness ODO of elastomer present on the back of the sheath is less than or equal to 0.17 mm, preferably less than or equal to 0.14 mm, and more preferably less than or equal to 0.11 mm, and in this instance ODO=0.09 mm.
(31) The mean minimum thickness of elastomer ODO and mean thickness E of the reinforced product are measured in a direction substantially perpendicular to the main direction X1, in this instance in the direction Y1 parallel to the thickness of the reinforced product 21 which, once in the tyre, is the radial direction Y of the tyre 10.
(32) The ratio R1=ODO/E of the mean minimum thickness ODO of elastomer present on the back of the sheath 48 to the mean thickness E of the reinforced product 21 is less than or equal to 0.17. In this instance, R1 is less than or equal to 0.15 and preferably less than or equal to 0.14. In this instance, R1=0.14.
(33) The pitch P at which the reinforcing elements 44 are laid in the main direction X1 is less than or equal to 1.1 mm, preferably less than or equal to 1 mm and, more preferably, less than or equal to 0.8 mm. In this instance, P=0.62 mm.
(34) The reinforced product 21 comprises elastomer bridges 56 separating two successive reinforcing elements 44. The mean minimum thickness B of each elastomer bridge 56 in the main direction X1 is less than or equal to 0.5 mm, preferably less than or equal to 0.35 mm, more preferably less than or equal to 0.20 mm and, in this instance, B=0.17 mm.
(35) The ratio R2=B/E of the mean minimum thickness B of elastomer separating two successive reinforcing elements to the mean thickness E of the reinforced product 21 is less than or equal to 1, preferably less than or equal to 0.6, more preferably less than or equal to 0.5, and more preferably still less than or equal to 0.3 and in this instance R2=0.27.
(36) The ratio R3=D/E of the mean bulk D to the mean thickness E of the reinforced product 21 is less than or equal to 0.6, preferably less than or equal to 0.55, and more preferably less than or equal to 0.50. In this instance R3=0.47.
(37)
(38) Unlike the reinforced product according to the first embodiment, each reinforcing element 44 of the reinforced product according to the second embodiment comprises several filamentary elements 46, each comprising a single monofilament 52 and a communal sheath 48 collectively coating the filamentary elements 46.
(39) Comparative Tests
(40) The reinforced product 21 and the tyre 10 according to the invention all as described hereinabove were compared against a reinforced product T and a tyre PT of the prior art. The reinforced product T is depicted in
(41) All the data indicated hereinabove (E, ODO, B, G, D and P) are mean values measured experimentally by an operator on photographs of radial cross sections of reinforced products or of tyres performed as indicated earlier over 5 cm on each side of the midplane of the reinforced product or of the tyre.
(42) TABLE-US-00001 TABLE 1 E ODO B G D P (mm) (mm) (mm) (m) (mm) (mm) R1 R2 R3 T 0.94 0.17 0.60 0 0.60 1.2 0.18 0.64 0.64 21 0.64 0.09 0.17 75 0.3 0.62 0.14 0.27 0.47
(43) The reinforced products T and 21 and the tyres PT and 10 were subjected to various tests described hereinbelow and the results of which are collated in Table 2.
(44) The results are given to base 100 with respect to the control product T and control tyre PT. Thus, the greater the extent to which the value exceeds 100, the better the performance of the reinforced product or of the tyre according to the invention by comparison with the reinforced product or with the tyre of the prior art.
(45) The breaking strength of the reinforced product is measured by determining the force at break under tensile testing of each filamentary element in accordance with ISO 6892, 1984 and then multiplying this by the linear density of the filamentary elements in the main direction of the reinforced product.
(46) The rolling resistance was measured on a dynamometer drum in accordance with the ISO 87-67 (1992) method.
(47) The breaking energy is measured in accordance with standard ASTM WK20631.
(48) TABLE-US-00002 TABLE 2 Performance of the reinforced product T 21 Weight of elastomer in the reinforced product 100 130 Total weight of the reinforced product 100 120 Breaking strength of the reinforced product 100 100 Performance of the tyre PT 10 Rolling resistance 100 100 Breaking energy 100 144
(49) Thus it is found that, for all other things being equal, in addition to having a reduced mass, the reinforced product and the tyre according to the invention offer aspects of performance equivalent, or even superior, to those of the reinforced product and of the tyre of the prior art. In particular, it is found that the tyre according to the invention has a breaking energy far higher than that of the control tyre PT.
(50) The invention is not restricted to the embodiments described hereinabove.
(51) Specifically, a tyre according to the invention in which the crown reinforcement also comprises a protective reinforcement interposed radially between the hoop reinforcement and the working reinforcement is also conceivable.
(52) Also conceivable is a tyre according to the invention in which the crown reinforcement has no hoop reinforcement but a protective reinforcement and a working reinforcement, the protective reinforcement being interposed radially between the tread and the working reinforcement.
(53) The features of the various embodiments described or contemplated hereinabove may also be combined provided that they are mutually compatible.