Pneumatic tire
11065918 · 2021-07-20
Assignee
Inventors
Cpc classification
B60C11/1384
PERFORMING OPERATIONS; TRANSPORTING
B60C11/125
PERFORMING OPERATIONS; TRANSPORTING
B60C11/11
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1307
PERFORMING OPERATIONS; TRANSPORTING
B60C11/04
PERFORMING OPERATIONS; TRANSPORTING
B60C2011/0358
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1353
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A pneumatic tire includes plural land portions that are provided at a tread and that are partitioned by plural circumferential direction grooves that extend along a tire circumferential direction. A lug groove is provided at at least one land portion among the plural land portions and crosses the land portion in a tire width direction. A fine groove is provided at a groove bottom portion of the lug groove, has a narrower groove width than the lug groove, and has a groove bottom face formed with a circular arc shaped profile when viewed in cross-section at right angles to a groove length direction. A coupling curved face joins the groove bottom face and a groove side face at a length direction end portion of the fine groove, to a groove side face of the circumferential direction grooves.
Claims
1. A pneumatic tire, comprising: a plurality of land portions that are provided at a tread and that are partitioned by a plurality of circumferential direction grooves that extend along a tire circumferential direction; a lug groove that is provided at at least one land portion among the plurality of land portions and that crosses the at least one land portion in a tire width direction; a fine groove that is provided at a groove bottom portion of the lug groove, that has a narrower groove width than the lug groove, and that has a groove bottom face formed with a circular arc shaped profile when viewed in cross-section at right angles to a groove length direction; a first curved face that is provided so as to couple one of mutually facing groove side faces of the lug groove to a groove side face of a circumferential direction groove, and that extends toward a groove bottom face of the circumferential direction groove; and a second curved face that is provided so as to couple another of the mutually facing groove side faces of the lug groove to the groove side face of the circumferential direction groove, and that extends toward the groove bottom face of the circumferential direction groove; wherein a length direction end portion of one groove side face of the fine groove is smoothly connected to the first curved face by a first coupling curved face, and a length direction end portion of the other groove side face of the fine groove is smoothly coupled to the second curved face by a second coupling curved face, wherein a third coupling curved face joins the groove bottom face at a length direction end portion of the fine groove, to a groove side face of the circumferential direction groove, wherein a first extension line configures a boundary between the first curved face and the first coupling curved face, and the first extension line extends from a boundary line between the first curved face and one groove side face of the lug groove, wherein a second extension line configures a boundary between the second curved face and the second coupling curved face, and the second extension line extends from a boundary line between the second curved face and the one groove side face of the lug groove, wherein the third coupling curved face has a first circular arc portion and a sloped portion, each of the first circular arc portion and the sloped portion having a center of curvature inside the at least one land portion, and the groove bottom face of the fine groove is smoothly coupled to the groove bottom face of the circumferential direction groove by the first circular arc portion and the sloped portion, and wherein the sloped portion has a shape that smoothly bulges toward the circumferential direction groove.
2. The pneumatic tire of claim 1, wherein the first curved face and the second curved face slope with respect to a normal line to a tread face.
3. The pneumatic tire of claim 1, wherein the groove bottom face of the fine groove is positioned further toward a tire radial direction outer side than a tire radial direction inner side end of the first curved face and a tire radial direction inner side end of the second curved face.
4. The pneumatic tire of claim 1, wherein tire radial direction inner side end portions of the first curved face and the second curved face are positioned further toward the tire radial direction outer side than a deepest portion of the groove bottom face of the circumferential direction groove.
5. The pneumatic tire of claim 1, wherein the first curved face and the second curved face are coupled together, by the first coupling curved face, the second coupling curved face, and third coupling curved face, further toward a tire radial direction inner side than the groove bottom face of the fine groove.
6. The pneumatic tire of claim 1, wherein: the lug groove and the fine groove are formed at a second land portion disposed facing a tire width direction outer side of a center land portion that is the nearest to a tire equatorial plane among the plurality of land portions; and the first curved face, the second curved face, the first coupling curved face, the second coupling curved face, and the third coupling curved face, are provided at a shoulder side of the second land portion.
7. The pneumatic tire of claim 1, wherein: a relationship θ3≤θ1≤θ2 is satisfied, wherein θ1 is an angle of the first curved face and the second curved face with respect to a normal line to a tread face of the at least one land portion, θ2 is an angle of the groove side faces of the lug groove with respect to a normal line to the tread face of the at least one land portion, and θ3 is an angle of the groove side face of the circumferential direction groove with respect to a normal line to the tread face of the at least one land portion.
8. The pneumatic tire of claim 1, wherein: L1 and L2 are each set within a range from 10% to 15% of L0, wherein L0 is a projection length when the entire lug groove on a land portion tread face is projected in the tire circumferential direction onto a projection plane extending along the tire width direction, L1 is a projection length when the first curved face on the land portion tread face is projected in the tire circumferential direction onto a projection plane extending along the tire width direction, and L2 is a projection length of the second curved face on the land portion tread face when projected in the tire circumferential direction onto a projection plane extending along the tire width direction.
9. The pneumatic tire of claim 1, wherein a distance measured along the tire radial direction between the groove bottom face of a shoulder side end portion of the fine groove and a tire radial direction inner side end of both the first curved face and the second curved face is set within a range from 2.5 mm to 4.5 mm.
10. The pneumatic tire of claim 1, wherein the fine groove is formed shallower at a shoulder side than at a tire equatorial plane side.
11. The pneumatic tire of claim 1, wherein the sloped portion comprises: a second circular arc portion that has a larger radius of curvature than the first circular arc portion and that is smoothly coupled to the first circular arc portion; a straight line portion that is smoothly coupled to the second circular arc portion; and a third circular arc portion that is smoothly coupled to the straight line portion and that is also smoothly coupled to the groove bottom face of the circumferential direction groove.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(9) Explanation follows regarding an exemplary embodiment of a pneumatic tire of the present invention, with reference to the drawings.
(10) As illustrated in
(11) As illustrated in
(12) A groove side face 14A of each center side circumferential direction main groove 14 slopes at a fixed angle θ4 with respect to a normal line HL. A groove bottom face 14B of the center side circumferential direction main groove 14 is formed in a substantially semicircular shape, and the groove side face 14A and the groove bottom face 14B are smoothly coupled together.
(13) As illustrated in
(14) The center land portion 18 is formed with center lug grooves 22 that each couple an apex portion of the zigzag shape of the center side circumferential direction main groove 14 to an apex portion of the zigzag shape of the circumferential direction sub groove 20. The center lug grooves 22 are formed with a narrower groove width and a shallower groove depth than the center side circumferential direction main grooves 14. The center land portion 18 is also formed with sipes 25 that each couple the circumferential direction sub groove 20 to the center side circumferential direction main groove 14 between each center lug groove 22 and center lug groove 22. The sipes 25 have a groove width in which the groove width becomes zero when the center land portion 18 has made ground contact, and are set with a groove depth that is shallower than the groove depth of the center lug grooves 22.
(15) Second land portions 24 are partitioned between the center side circumferential direction main grooves 14 and the respective second circumferential direction main grooves 16. The second land portions 24 are formed with plural shallow lug groove portions 28 that each couple an apex portion of the zigzag shape of the center side circumferential direction main groove 14 to an apex portion of the zigzag shape of the second circumferential direction main groove 16, and cross a narrowest width portion of the second land portion 24 along the tire width direction. Intervals around the tire circumferential direction between each shallow lug groove portion 28 and shallow lug groove portion 28 are set longer than the widest width of the second land portion 24, in order to secure rigidity around the circumferential direction.
(16) As illustrated in
(17) As illustrated in
(18) As illustrated in
(19) As illustrated in
(20) As illustrated in
(21) A second curved face 34 is formed at a coupling portion between the groove side face 16A of the second circumferential direction main groove 16 and the other (in the arrow B direction in
(22) Note that, as illustrated in
(23) As illustrated in
(24) A tire radial direction inner side end portion P1 of a coupling portion between the first curved face 32 and the second curved face 34 is positioned further toward the tire radial direction outer side than a deepest portion 16Be of the groove bottom face 16B of the second circumferential direction main groove 16.
(25) Note that it is preferable that a distance H1 measured along the tire radial direction between the groove bottom face 30B at a shoulder side end portion of the fine groove 30, and the tire radial direction inner side end portion P1 of the coupling portion between the first curved face 32 and the second curved face 34, is set within a range from 2.5 mm to 4.5 mm.
(26) Note that, as illustrated in
(27) Note that, as illustrated in
(28) As illustrated in
(29) As illustrated in
(30) As illustrated in
(31) As illustrated in
(32) As illustrated in
(33) As illustrated in
(34) In contrast thereto, as illustrated in
(35) The cross-section profile of the sloped portion 33 is not limited to that illustrated in
(36) As illustrated in
(37) The first circular arc portion 31, the curved face 35A, and the curved face 35B described above correspond to a coupling curved face of the present invention.
(38) As illustrated in
(39) Operation and Advantageous Effects
(40) In the pneumatic tire 10 of the present exemplary embodiment, the first curved face 32 is formed at the coupling portion between the groove side face 16A of each second circumferential direction main groove 16 and the one groove side face 28A of each shallow lug groove portion 28, and the second curved face 34 is formed at the coupling portion between the groove side face 16A of each second circumferential direction main groove 16 and the other groove side face 28A of each shallow lug groove portion 28. Thus, at the coupling portions between the groove side faces 28A of the shallow lug groove portion 28 and the groove side face 16A of the second circumferential direction main groove 16, lateral force can be distributed along the sloped faces without being borne perpendicular to the tread face, thereby enabling strain occurring when lateral force is input to be distributed, compared to cases in which there are no slopes. Force that is not only lateral force, but also force from the circumferential direction can be distributed.
(41) Note that in the pneumatic tire 10 of the present exemplary embodiment, a relationship between the angle θ1 of the first curved face 32 and the second curved face 34, the angle θ2 of the groove side faces 28A of the shallow lug groove portion 28, and the angle θ3 of the groove side face 16A of the second circumferential direction main groove 16 is θ3≤θ1≤θ2, such that the first curved face 32 and the second curved face 34 are smoothly coupled to the groove side faces 28A of the shallow lug groove portion 28 and the groove side face 16A of the second circumferential direction main groove 16. This enables stress to be effectively suppressed from concentrating at the coupling portions between the groove side faces 28A of the shallow lug groove portion 28 and the groove side face 16A of the second circumferential direction main groove 16.
(42) The fine grooves 30 formed to the second land portions 24 are each formed with a shallower groove depth at the shoulder side than at the tire equatorial plane side, such that the second land portions 24 have a higher rigidity at the shoulder side than at the tire equatorial plane side. Deformation of the shoulder side of the second land portions 24 due to lateral force input from the shoulder side is thereby suppressed, enabling river wear of the second land portions 24 caused by lateral force to be suppressed.
(43) Since the groove bottom face 30B of each fine groove 30 is formed with a circular arc shaped curved face, stress is suppressed from concentrating at the groove bottom face 30B of the fine groove 30, and cracks that emanate from the groove bottom face 30B of the fine groove 30 when lateral force or circumferential direction force has been input to the second land portions 24 are suppressed from occurring.
(44) Since the shoulder side end portion of each fine groove 30 is smoothly coupled to the first curved face 32 and the second curved face 34, stress is suppressed from concentrating at the shoulder side end portion of the fine groove 30, and cracks that emanate from an end portion of the groove bottom face 30B at the shoulder side of the fine groove 30 when lateral force or circumferential direction force has been input to the second land portions 24 are suppressed from occurring.
(45) The projection length L1 of each first curved face 32 and the projection length L2 of each second curved face 34 are each set within a range from 10% to 15% of the projection length L0 of the entire shallow lug groove portion 28. This enables both traction performance due to the edge effect of the shallow lug groove portion 28, and chipping resistance of the corner portions formed by the shallow lug groove portion 28 and the second circumferential direction main groove 16, to be exhibited. Note that when L1 and L2 are less than 10% of L0, chipping is more liable to occur at the corner portions formed between the shallow lug groove portion 28 and the second circumferential direction main groove 16. When L1 and L2 exceed 15% of L0, the edge components in the tire width direction of the shallow lug groove portion 28 are insufficient, and traction performance is reduced.
(46) In the pneumatic tire 10 of the present exemplary embodiment, the distance H1 measured along the tire radial direction between the groove bottom face 30B of each fine groove 30 and the tire radial direction inner side end portion P1 of the first curved face 32 and the second curved face 34 is set within a range from 2.5 mm to 4.5 mm. This enables the wear lifespan of the pneumatic tire 10 to be secured, while suppressing stress from concentrating at length direction end portion of the groove bottom face 30B of the fine groove 30, and cracks that emanate from the length direction end portion of the groove bottom face 30B are suppressed from occurring. Note that when the distance H1 is less than 2.5 mm, concentration of stress at the length direction end portion of the groove bottom face 30B of the fine groove 30 cannot be sufficiently suppressed. When the distance H1 exceeds 4.5 mm, the fine groove 30 is separated from the tire radial direction inner side end portion P1 of the first curved face 32 and the second curved face 34 toward the tire radial direction outer side, the groove bottom face 30B is closer to the tread face of the tread 12, the groove depth of the fine groove 30 soon becomes deficient due to wear on the tread 12 (in some cases, part of the fine groove 30 disappears), and the wear lifespan of the pneumatic tire 10 is shortened.
TEST EXAMPLE 1
(47) In order to confirm the advantageous effects of the invention, plural Comparative Example tires and Example tires were respectively manufactured, in which the distance H1 (see
(48) Note that the sample tires each had a tire size of 275/80R22.5, and were set with an internal pressure of 900 kPa. Height of second land portions (groove depth of second circumferential direction main grooves): 14.0 mm Groove width of shallow lug grooves: 8.9 mm Groove depth of shallow lug grooves: 4.2 mm Groove width of fine grooves: 2 mm
(49) The distance H1 was changed by fixing the position of the tire radial direction inner side end of the first curved face and the second curved face (fixed at a position of 2.0 mm in the tire radial direction from the groove bottom of the second circumferential direction main groove), and changing the groove depth at the shoulder side of the fine groove. The specifications of the Comparative Example tires and the Example tires other than the distance H1 were the same. Presence of cracking: the sample tires were fitted to a drum test machine, set at a slip angle of 5°, applied with a load of 2,725 kg, and run at 60 km/h for 12 hours. After test running, a check was made as to whether or not cracking had occurred on the groove bottom face of each fine groove. Wear life: the tread gauge was measured after running for 30,000 km on a wear test drum (in a state applied with load). The Comparative Example 2 was set with an index value of 100, as the position of a conventional example. Higher values indicate better performance.
(50) TABLE-US-00001 TABLE 1 Comparative Comparative Comparative Example 1 Example 1 Example 2 Example 3 Example 2 Example 3 Distance H1 0.5 mm 2.5 mm 3.5 mm 4.5 mm 1.5 mm 5.0 mm Presence of Yes, at No No No No No cracking shoulder side end portion Wear life (index) 95 110 110 103 100 98
(51) It can be seen from the test results that, in the Example tires 1 to 3, cracks emanating from the groove bottom faces of the fine grooves are suppressed from occurring, and the wear life is long.
TEST EXAMPLE 2
(52) In order to confirm the advantageous effects of the invention, plural Comparative Example tires and Example tires, in which the lengths projected in the tire circumferential direction of the first curved face and the second curved face (L1, L2) were changed with respect to the length projected in the tire circumferential direction of the shallow lug groove (L0) in each second land portion, were respectively manufactured. Comparisons of traction performance and edge chipping resistance were performed.
(53) Note that the sample tires each had a tire size of 275/80R22.5, and were set with an internal pressure of 900 kPa.
(54) The specifications of the Comparative Example tires and the Example tires other than the first curved faces and the second curved faces were the same. Traction performance: an unladen vehicle (actual vehicle) was run on a test course road surface, the travel time over a determined distance was measured, and an evaluation (shown in indices) was performed. Higher values indicate better performance. Edge chipping resistance: the sample tires were fitted to a drum test machine, set at a slip angle, applied with a side force of 0.2 G, run at 60 km/h for 12 hours. The degree of chipping of the fine groove edges after running was evaluated.
(55) TABLE-US-00002 TABLE 2 Comparative Exam- Exam- Exam- Comparative Example 4 ple 4 ple 5 ple 6 Example 5 Ratio 0% 10% 12.5% 15% 20% L1, L2/L0 Traction 115 110 110 105 95 performance Edge chipping un- accept- accept- accept- acceptable resistance acceptable able able able
(56) It can be seen from the test results that the Example tires 4 to 6 have superior performance with respect to both traction performance and edge chipping resistance.
Other Exemplary Embodiments
(57) In the above exemplary embodiment, in order to suppress excessive stress from concentrating at the groove bottom face 30B, and at the groove length direction end portions of the groove bottom face 30B of each fine groove 30 of the second land portions 24, the first curved faces 32 and the second curved faces 34 are formed at the second land portion 24. Moreover, the length direction end portion of each fine groove 30 is smoothly coupled to the groove side face 16A of the second circumferential direction main groove 16 by the first circular arc portion 31, the curved face 35A, and the curved face 35B, as well as the first curved face 32 and the second curved face 34. However, the present invention is not limited thereto, and curved faces similar to the first circular arc portion 31, the curved face 35A, and the curved face 35B, as well as the first curved face 32 and the second curved face 34, may be formed to the center land portion 18 and the shoulder land portions 38, and these curved faces may be smoothly coupled in the length direction to narrow width grooves such as sipes. This would enable excessive stress to also be suppressed from concentrating at length direction end portions of groove bottom faces of the narrow width grooves in the center land portion 18 and the shoulder land portions 38.
(58) Note that smoothly coupling the length direction end portion of each fine groove 30 to the groove side face 16A of the second circumferential direction main groove 16 by the first circular arc portion 31, the curved face 35A, and the curved face 35B without forming the first curved face 32 and the second curved face 34 also has the advantageous effect of suppressing stress from concentrating at the groove length direction end portion of the groove bottom face 30B of the fine groove 30.
(59) Exemplary embodiments of the pneumatic tire of the present invention have been explained above, however the present invention is not limited to the above, and obviously various modifications, such as the dimension, angle, and shape of each portion, may be implemented within a range not departing from the spirit of the present invention.