Pneumatic tire
11364745 · 2022-06-21
Assignee
Inventors
Cpc classification
B60C11/1236
PERFORMING OPERATIONS; TRANSPORTING
B60C2011/036
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1204
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1218
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0083
PERFORMING OPERATIONS; TRANSPORTING
B60C2011/1268
PERFORMING OPERATIONS; TRANSPORTING
B60C11/04
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1281
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0306
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C11/12
PERFORMING OPERATIONS; TRANSPORTING
B60C11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A pneumatic tire includes, in a tread portion, main grooves extending in a circumferential direction; ribs defined by the main grooves; at least one rib comprising sipes extending in a lateral direction; the sipes comprising a chamfered sipe with a chamfer portion provided on at least one edge, and a non-chamfered sipe with no chamfer portion provided on an edge; the chamfered sipe comprising one end portion terminating in the at least one rib and another end portion communicating with one of the main grooves located on either side of the at least one rib; a plurality of the chamfered sipes communicating with one of the main grooves located on either side of the at least one rib being alternately disposed in the circumferential direction; and the non-chamfered sipe being disposed close to the chamfered sipe on at least one side in the circumferential direction.
Claims
1. A pneumatic tire comprising: in a tread portion, a plurality of main grooves extending in a tire circumferential direction; a plurality of ribs defined by the plurality of main grooves; at least one rib of the plurality of ribs comprising a plurality of sipes extending in a tire lateral direction; the plurality of sipes comprising a chamfered sipe with a chamfer portion provided on at least one edge, and a non-chamfered sipe with no chamfer portion provided on an edge; the chamfered sipe comprising one end portion terminating in the at least one rib, and another end portion communicating with one of the plurality of main grooves located on either side of the at least one rib; the non-chamfered sipe comprising one end portion communicating with the one of the plurality of main grooves and another end portion communicating with another one of the plurality of main grooves defining the at least one rib, the non-chamfered sipe extending straightly from the one end portion to the another end portion; a plurality of the chamfered sipes communicating with one of the plurality of main grooves located on either side of the at least one rib being alternately disposed in the tire circumferential direction; and the non-chamfered sipe being disposed closest among the plurality of sipes to the chamfered sipe on at least one side in the tire circumferential direction.
2. The pneumatic tire according to claim 1, wherein a depth Cd of the chamfered sipe and a depth Nd of the non-chamfered sipe satisfy a relationship 1<Nd/Cd≤1.5.
3. The pneumatic tire according to claim 1, wherein an inclination angle θ.sub.C of the chamfered sipe with respect to the tire circumferential direction and an inclination angle θ.sub.N of the non-chamfered sipe with respect to the tire circumferential direction satisfy a relationship θ.sub.C−30°≤θ.sub.N≤θ.sub.C+30°.
4. The pneumatic tire according to claim 1, wherein the non-chamfered sipe is disposed on each side of the chamfered sipe in the tire circumferential direction.
5. The pneumatic tire according to claim 1, wherein the non-chamfered sipe increases in width gradually from a bottom portion toward an opening.
6. The pneumatic tire according to claim 1, wherein an opening of the chamfered sipe in a ground contact surface has a width Cw of from 1.6 mm to 4.8 mm.
7. The pneumatic tire according to claim 1, wherein the chamfer portion has a rectangular cross-sectional shape in a cross-sectional view orthogonal to an extension direction of the chamfered sipe.
8. The pneumatic tire according to claim 1, wherein the non-chamfered sipe extends through the at least one rib in the tire lateral direction.
9. The pneumatic tire according to claim 1, wherein a curvature radius TR of an arc forming a tread profile and a curvature radius RR of an outer contour line of the at least one rib comprising the chamfered sipe satisfy a relationship TR >RR.
10. The pneumatic tire according to claim 1, wherein ends of the at least one rib in the tire lateral direction are interrupted only by the plurality of sipes.
11. The pneumatic tire according to claim 1, wherein a distance L1 between the non-chamfered sipe closest to the chamfered sipe and the chamfered sipe in the tire circumferential direction is from 2 mm to 15 mm.
12. The pneumatic tire according to claim 11, wherein a depth Cd of the chamfered sipe and a depth Nd of the non-chamfered sipe satisfy a relationship 1<Nd/Cd≤1.5.
13. The pneumatic tire according to claim 12, wherein an inclination angle θ.sub.C of the chamfered sipe with respect to the tire circumferential direction and an inclination angle θ.sub.N of the non-chamfered sipe with respect to the tire circumferential direction satisfy a relationship θ.sub.C−30°≤θ.sub.N≤θ.sub.C+30°.
14. The pneumatic tire according to claim 13, wherein the non-chamfered sipe is disposed on each side of the chamfered sipe in the tire circumferential direction.
15. The pneumatic tire according to claim 14, wherein the non-chamfered sipe increases in width gradually from a bottom portion toward an opening.
16. The pneumatic tire according to claim 15, wherein an opening of the chamfered sipe in a ground contact surface has a width Cw of from 1.6 mm to 4.8 mm.
17. The pneumatic tire according to claim 16, wherein the chamfer portion has a rectangular cross-sectional shape in a cross-sectional view orthogonal to an extension direction of the chamfered sipe.
18. The pneumatic tire according to claim 17, wherein the non-chamfered sipe extends through the at least one rib in the tire lateral direction.
19. The pneumatic tire according to claim 18, wherein a curvature radius TR of an arc forming a tread profile and a curvature radius RR of an outer contour line of the at least one rib comprising the chamfered sipe satisfy a relationship TR>RR.
20. A pneumatic tire comprising: in a tread portion, a plurality of main grooves extending in a tire circumferential direction; a plurality of ribs defined by the plurality of main grooves; at least one rib of the plurality of ribs comprising a plurality of sipes extending in a tire lateral direction; the plurality of sipes comprising a chamfered sipe with a chamfer portion provided on at least one edge, and a non-chamfered sipe with no chamfer portion provided on an edge; the chamfered sipe comprising one end portion terminating in the at least one rib, and another end portion communicating with one of the plurality of main grooves located on either side of the at least one rib; the non-chamfered sipe comprising one end portion communicating with the one of the plurality of main grooves and another end portion communicating with another one of the plurality of main grooves defining the at least one rib, the non-chamfered sipe having a constant depth along an entire length from the one end portion to the another end portion; a plurality of the chamfered sipes communicating with one of the plurality of main grooves located on either side of the at least one rib being alternately disposed in the tire circumferential direction; and the non-chamfered sipe being disposed closest among the plurality of sipes to the chamfered sipe on at least one side in the tire circumferential direction.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(10) Configurations of embodiments of the present technology will be described in detail below with reference to the accompanying drawings.
(11) As illustrated in
(12) A carcass layer 4 is mounted between the pair of bead portions 3, 3. The carcass layer 4 includes a plurality of reinforcing cords extending in the tire radial direction and is folded back around bead cores 5 disposed in the bead portions 3 from a tire inner side to a tire outer side. A bead filler 6 having a triangular cross-sectional shape formed from a rubber composition is disposed on the outer circumference of the bead core 5.
(13) A plurality of belt layers 7 is embedded on an outer circumferential side of the carcass layer 4 in the tread portion 1. The belt layers 7 include a plurality of reinforcing cords that is inclined with respect to the tire circumferential direction with the reinforcing cords of the different layers arranged in a criss-cross manner. In the belt layers 7, an inclination angle of the reinforcing cords with respect to the tire circumferential direction ranges from, for example, 10° to 40°. Steel cords are preferably used as the reinforcing cords of the belt layers 7. To improve high-speed durability, at least one belt cover layer 8, formed by arranging reinforcing cords at an angle of, for example, not greater than 5° with respect to the tire circumferential direction, is disposed on an outer circumferential side of the belt layers 7. Nylon, aramid, or similar organic fiber cords are preferably used as the reinforcing cords of the belt cover layer 8.
(14) The tread portion 1 is also provided with a plurality of main grooves 9 extending in the tire circumferential direction. The main grooves 9 define a plurality of ribs 10 in the tread portion 1.
(15) Note that the tire internal structure described above represents a typical. example for a pneumatic tire, and the pneumatic tire is not limited thereto.
(16) As illustrated in
(17) As illustrated in
(18) The non-chamfered sipe 13 is provided in a region within 50 mm from the chamfered sipe 12 in the tire circumferential direction, and is provided with no chamfer. The non-chamfered sipe 13 is disposed close to at least one side of the chamfered sipe 12 in the tire circumferential direction. The non-chamfered sipe 13 may be inclined from the tire lateral direction, or may be bent or curved.
(19) The rib 10 may be provided with another groove other than the chamfered sipe 12 and the non-chamfered sipe 13. However, drainage performance in the rib 10 can be sufficiently secured by the chamfered sipe 12. Thus, providing only the chamfered sipe 12 and the non-chamfered sipe 13 is preferable from a viewpoint of improving braking performance by increasing ground contact area.
(20) While a tread rubber with low hardness is favorable for increasing ground contact area, a tread rubber with high hardness is favorable for suppressing crush of the chamfer portion 14. To satisfy both, the tread rubber preferably has a hardness from 58 to 75 specified by JIS (Japanese Industrial Standard) K6253.
(21) In the pneumatic tire described above, at least one rib 10 of the plurality of ribs 10 includes the plurality of sipes 11 extending in the tire lateral direction, and the sipes 11 include the chamfered sipe 12 provided on at least one of the edges 12a, 12b with the chamfer portion 14, and the non-chamfered sipe 13 provided on an edge with no chamfer. This structure enables drainage performance when a tire contacts the ground to be improved due to the chamfered sipe 12 provided with the chamfer portion 14 to result in improvement of wet performance. The non-chamfered sipe 13 provided with no chamfer portion is provided together in the same rib 10 as the chamfered sipe 12 and close to the chamfered sipe 12 in the tire circumferential direction, so that the non-chamfered sipe 13 bears deformation of the tread portion 1 at contact with the ground. This contributes to suppression of crush of the chamfer portion 14 of the chamfered sipe 12.
(22) In addition, the chamfered sipe 12 includes one end portion 12c terminating in the rib 10, and the other end portion 12d communicating with any one of the main grooves 9 positioned on either side of the rib 10, and the chamfered sipes 12 communicating with the main grooves 9 located on either side of the rib 10 are alternately disposed in the tire circumferential direction. This structure enables a ground contact region to be widely secured around the chamfered sipe 12, so that crush of the chamfer portion 14 of the chamfered sipe 12 can be effectively suppressed. This enables improvement in wet performance.
(23) As illustrated in
(24) In
(25) As illustrated in
(26) As illustrated in
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EXAMPLES
(33) Using a pneumatic tire of the size 195/65R15 including, in a tread portion, a plurality of main grooves extending in the tire circumferential direction, and a plurality of ribs defined by a pair of the plurality of main grooves adjacent to each other, tires of Conventional Example, Comparative Examples 1, 2, and Examples 1 to 10 were produced according to Tables 1 and 2 showing: whether a chamfered sipe is provided; whether a non-chamfered sipe is provided; a distance L1 (mm) between a chamfered sipe and a non-chamfered sipe; a ratio (Nd/Cd) of a depth of a non-chamfered sipe to a depth of a chamfered sipe; a difference (θ.sub.C−θ.sub.N) between inclination angles of a chamfered sipe and a non-chamfered sipe; placement of a non-chamfered sipe (one side or both sides); a width of a non-chamfered sipe (uniform or gradual increase); a width Cw (mm) of an opening of a chamfered sipe in a ground contact surface; a cross-sectional shape of a chamfer portion; whether a non-chamfered sipe communicates with a main groove; and whether a rib projects outward in a tire radial direction.
(34) These test tires were evaluated for braking performance on a wet road surface according to the following evaluation method. The results thereof are shown in Tables 1 and 2.
(35) Braking performance on wet road surface:
(36) Each of the test tires mounted on a wheel of the rim size 15×6J were mounted on a front-wheel drive car of 1500 cc displacement, and a braking distance of the car from an initial velocity of 80 km/h to complete stop was measured on a wet road surface with a water depth of 2 mm using each of the test tires under a pneumatics pressure of 230 kPa. The evaluation results were expressed, using the reciprocal of the measurement value, as index values, with Conventional Example being assigned as 100. Larger index values indicate more superior braking performance on a wet road surface.
(37) TABLE-US-00001 TABLE 1 Conventional Comparative Comparative Example Example 1 Example 2 Chamfered sipe provided Yes No No Non-chamfered sipe provided No No Yes Distance L1 (mm) between — — — chamfered sipe and non- chamfered sipe Ratio of depth of non- — — — chamfered sipe to depth of chamfered sipe (Nd/Cd) Difference between inclination — — — angles of chamfered sipe and non-chamfered sipe (θ.sub.C − θ.sub.N) Placement of non-chamfered — — — sipe (one side or both sides) Width of non-chamfered sipe — — Uniform (uniform or gradual increase) Width Cw (mm) of opening of 1.5 — — chamfered sipe in ground contact surface Cross-sectional shape of Triangle — — chamfer portion Extends through of non- — — No chamfered sipe to main groove Projection of rib outward in No No No tire radial direction Braking performance on wet 100 95 96 road surface Example Example Example Example 1 2 3 4 Chamfered sipe provided Yes Yes Yes Yes Non-chamfered sipe provided Yes Yes Yes Yes Distance L1 (mm) between 20 10 10 10 chamfered sipe and non- chamfered sipe Ratio of depth of non- 1.0 1.0 1.3 1.3 chamfered sipe to depth of chamfered sipe (Nd/Cd) Difference between inclination 50° 50° 50° 20° angles of chamfered sipe and non-chamfered sipe (θ.sub.C − θ.sub.N) Placement of non-chamfered One side One side One side One side sipe (one side or both sides) Width of non-chamfered sipe Uniform Uniform Uniform Uniform (uniform or gradual increase) Width Cw (mm) of opening of 1.5 1.5 1.5 1.5 chamfered sipe in ground contact surface Cross-sectional shape of Triangle Triangle Triangle Triangle chamfer portion Extends through of non- No No No No chamfered sipe to main groove Projection of rib outward in No No No No tire radial direction Braking performance on wet 103 104 105 106 road surface
(38) TABLE-US-00002 TABLE 2 Example Example Example 5 6 7 Chamfered sipe provided Yes Yes Yes Non-chamfered sipe provided Yes Yes Yes Distance L1 (mm) between 10 10 10 chamfered sipe and non- chamfered sipe Ratio of depth of non- 1.3 1.3 1.3 chamfered sipe to depth of chamfered sipe (Nd/Cd) Difference between inclination 20° 20° 20° angles of chamfered sipe and non-chamfered sipe (θ.sub.C − θ.sub.N) Placement of non-chamfered Both sides Both sides Both sides sipe (one side or both sides) Width of non-chamfered sipe Uniform Gradual Gradual (uniform or gradual increase) increase increase Width Cw (mm) of opening of 1.5 1.5 2.0 chamfered sipe in ground contact surface Cross-sectional shape of Triangle Triangle Triangle chamfer portion Extends through of non- No No No chamfered sipe to main groove Projection of rib outward in No No No tire radial direction Braking performance on wet 107 108 110 road surface Example Example Example 8 9 10 Chamfered sipe provided Yes Yes Yes Non-chamfered sipe provided Yes Yes Yes Distance L1 (mm) between 10 10 10 chamfered sipe and non- chamfered sipe Ratio of depth of non- 1.3 1.3 1.3 chamfered sipe to depth of chamfered sipe (Nd/Cd) Difference between inclination 20° 20° 20° angles of chamfered sipe and non-chamfered sipe (θ.sub.C − θ.sub.N) Placement of non-chamfered sipe Both sides Both sides Both sides (one side or both sides) Width of non-chamfered sipe Gradual Gradual Gradual (uniform or gradual increase) increase increase increase Width Cw (mm) of opening of 2.0 2.0 2.0 chamfered sipe in ground contact surface Cross-sectional shape of Rectangle Rectangle Rectangle chamfer portion Extends through of non- No Yes Yes chamfered sipe to main groove Projection of rib outward in No No Yes tire radial direction Braking performance on wet 111 112 113 road surface
(39) As can be seen from Tables 1 and 2, the tires of Examples 1 to 10 have improved braking performance on a wet road surface due to the shape of the sipes provided in the tread portion, as compared with Conventional Example.
(40) In Comparative Example 1, improvement effect of braking performance on a wet road surface could not be sufficiently obtained due to the rib being provided with no sipe. In Comparative Example 2, improvement effect of braking performance on a wet road surface could not be sufficiently obtained due to the rib being provided with only the sipes with no chamfer.