PNEUMATIC TIRE
20190225022 ยท 2019-07-25
Assignee
Inventors
Cpc classification
B60C11/033
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0083
PERFORMING OPERATIONS; TRANSPORTING
B60C2011/0372
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0316
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1376
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A pneumatic tire has a plurality of main grooves extending in a tire circumferential direction, and a plurality of land lines defined by the plurality of main grooves in a tread face. At least one of the plurality of land lines extends outward in a tire diametrical direction from a tread profile. A plurality of lateral grooves or notches are formed at intervals in the tire circumferential direction in the at least one land line. Each of blocks formed between the lateral grooves or the notches has a protruding height from the tread profile that increases from circumferential opposite end portions toward a circumferential central portion of the block.
Claims
1. A pneumatic tire comprising: a tread face; a plurality of main grooves extending in a tire circumferential direction in the tread face; and a plurality of land lines defined by the plurality of main grooves in the tread face, wherein at least one of the plurality of land lines extends outward in a tire diametrical direction from a tread profile, a plurality of lateral grooves or notches are formed at intervals in the tire circumferential direction in the at least one land line, and each of blocks formed between the lateral grooves or the notches has a protruding height from the tread profile that increases from circumferential opposite end portions toward a circumferential central portion of the block.
2. The pneumatic tire according to claim 1, wherein a top face of each of the blocks is formed in an arc shape protruding outward in the tire diametrical direction in a section parallel to a tire equatorial plane.
3. The pneumatic tire according to claim 2, wherein, in the section parallel to the tire equatorial plane, a radius of curvature of an arc forming a top face of each of the blocks having a relatively large length in the tire circumferential direction is larger than a radius of curvature of an arc forming a top face of each of the blocks having a relatively small length in the tire circumferential direction.
4. The pneumatic tire according to claim 1, wherein a top face of each of the blocks is formed in an arc shape protruding outward in the tire diametrical direction in a section along a tire meridian.
5. The pneumatic tire according to claim 2, wherein a top face of each of the blocks is formed in an arc shape protruding outward in the tire diametrical direction in a section along a tire meridian.
6. The pneumatic tire according to claim 1, wherein the blocks are formed in a center land line passing through the tire equatorial plane or a mediate land line positioned on an outer side of the center land line in a tire width direction.
7. The pneumatic tire according to claim 1, wherein a void ratio of a first area positioned on one side of a center of each of the blocks in the tire circumferential direction is smaller than a void ratio of a second area positioned on the other side and a protruding height of the first area is larger than a protruding height of the second area.
8. The pneumatic tire according to claim 1, wherein a void ratio of a third area positioned on one side of a center of each of the blocks in the tire width direction is smaller than a void ratio of a fourth area positioned on the other side and a protruding height of the third area is larger than a protruding height of the fourth area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] Embodiments of the present invention will be described below with reference to the drawings.
[0024] As shown in.
[0025] On an outer side of the carcass layer 4 in the tire diametrical direction, a belt layer 5, a belt reinforcing layer 6, and a tread rubber 7 are provided. The belt layer 5 includes a plurality of belt plies. The respective belt plies are formed by covering cords, extending obliquely with respect to a tire circumferential direction, with rubber. The belt plies are layered so that the cords cross each other in opposite orientations to each other in the respective plies. The belt reinforcing layer 6 is formed by covering cords, extending substantially in the tire circumferential direction, with rubber. A tread face 8 that forms an outer peripheral face of the tread rubber 7 is provided with a tread pattern.
[0026] As shown in
[0027] The four main grooves 10 include paired center main grooves 12, 13 positioned on left and right opposite sides of a tire equatorial plane TE and paired shoulder main grooves 11, 14 positioned on outer sides of the center main grooves 12, 13 in a tire width direction. The paired shoulder main grooves 11, 14 are positioned on outermost sides in the tire width direction among the plurality of main grooves 10. Although all of the four main grooves 10 are straight grooves, part or all of the main grooves 10 may be zigzag grooves. The five land lines 20 include a center land line 23 passing through the tire equatorial plane TE, paired mediate land lines 22, 24 positioned on outer sides of the center land line 23 in the tire width direction, and paired shoulder land lines 21, 25 positioned on the outer sides of the mediate land lines 22, 24 in the tire width direction.
[0028] The center land line 23 is provided between the paired center main grooves 12, 13. The mediate land line 22 is provided between the shoulder main groove 11 and the center main groove 12 and the mediate land line 24 is provided between the center main groove 13 and the shoulder main groove 14. The shoulder land line 21 is provided between the shoulder main groove 11 and a contact end CE and the shoulder land line 25 is provided between the shoulder main groove 14 and a contact end CE. The contact ends CE refer to outermost positions in the tire width direction of a contact face that comes in contact with a flat road surface when the tire mounted to a normal rim and inflated to normal internal pressure is placed vertically on the road surface and a normal load is applied to the tire.
[0029] The normal rim refers to a rim specified for each tire by standards in a standard system including the standards according to which tires are provided, and is Standard Rim in JATMA, Design Rim in TRA, or Measuring Rim in ETRTO, for example. The normal internal pressure refers to an air pressure specified for each tire by the standards in the standard system including the standards according to which tires are provided, and is Maximum Air Pressure in JATMA, a maximum value shown in Table, TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES in TRA, or INFLATION PRESSURE in ETRTO, however, in the case that the tire is for a passenger car, it is set to 180 kPa. The normal load refers to a load specified for each tire by standards in a standard system including the standards according to which tires are provided, and is a maximum load capacity in JATMA, a maximum value described in the Table in TRA, or LOAD CAPACITY in ETRTO, however, in the case that the tire is for a passenger car, it is 85% of a corresponding load to 180 kPa of internal pressure.
[0030] In the embodiment, the mediate land line 22 (hereinafter merely referred to as land line 22 in some cases) is formed as a rib extending continuously in the tire circumferential direction. The land line 22 is not provided with lateral grooves separating the land line 22 into blocks in the tire circumferential direction. The land line 22 is provided with a plurality of notches 32 formed at intervals in the tire circumferential direction. Each of the notches is a groove extending between one end portion open into the main groove and the other end closed in the land line. The land lines 20 other than the land line 22 are formed as block lines in which a plurality of blocks separated from each ether in the tire circumferential direction by lateral grooves 31, 33 to 35, respectively, are arranged. However, the respective land lines are not limited to the above-described configurations and may be ribs or block lines.
[0031] A tread profile TP is an imaginary plane passing through the closest edge among edges of the land lines 20 to the tire equatorial plane TE (hereinafter referred to as closest edge) and the opposite contact ends CE, CE and forming a single arc in the section along the tire meridian. In the embodiment, an edge 23E1 positioned on the left side in the figures among edges 23E1, 23E2 of the center land line 23 is the closest edge. If a height of the closest edge changes along the tire circumferential direction, a height at a position on the innermost side in the tire diametrical direction is employed. If the main grooves 10 are the zigzag grooves and the edges of the land lines 20 wind in the tire width direction, the closest edge is determined at a center of a width of the winding. If the edges of the land lines 20 have chamfered shapes, a point of intersection of an extended line of a top face of the land line 20 and an extended line of a groove wall face is regarded as the edge and the closest edge is determined. If there are two closest edges on left and right sides, one of the edges positioned on the inner side in the tire diametrical direction is employed.
[0032]
[0033] In the embodiment, the land line 23 protrudes outward in the tire diametrical direction from the tread profile TP (see
[0034] As shown in
[0035] As shown in
[0036] In the embodiment, a block height BH increases from the circumferential opposite end portions toward the circumferential central portion of each of the blocks 43 as shown in
[0037] As shown in
[0038] As can be seen from
[0039] In the embodiment, the above-described configuration for enhancing the contact property is applied to each of the center land line 23 and the mediate land line 24. The land line(s) to which the configuration for enhancing the contact property is applied is preferably the center land line and/or the mediate land line.
[0040] Although the five land lines 20 respectively protrude outward in the tire diametrical direction from the tread profile TP in the example shown in the embodiment, the invention is not limited to this example. At least one of a plurality of land lines 20 needs to protrude outward in a tire diametrical direction from a tread profile TP and it suffices that the configuration for enhancing the contact property is applied to the land line protruding outward in the tire diametrical direction from the tread profile TP.
[0041] Because variations described by using
[0042] In the variation in
[0043] In the variation shown in
[0044] A center line L1 is an imaginary line passing through the center of the block 43 in the tire circumferential direction and having a straight-line shape in a plan view. The center line L1 separates the block 43 into the first area A1 and the second area A2. The void ratio is obtained as a value x/(x+y) by dividing an opening area x of a groove in a top face of a land line by the sum of an area y of a contact portion of the top face of the land line and the opening area x of the groove. Therefore, the void ratio V1 of the block 43 is obtained by dividing an opening area of the notch 38 in the first area A1 by the sum of an area of a contact portion of the first area A1 and the opening area of the notch 38. The void ratio V2 and void ratios V3, V4 (described later) are obtained similarly. A void ratio difference (V2V1) is 3 (%) or larger, for example.
[0045] In the block 43 in
[0046] In the variation in
[0047] In the block 43 in
[0048] The pneumatic tire according to the invention can be formed in the same way as a normal pneumatic tire except that the tread face is formed in the above-described manner. Therefore, any of conventionally known materials, shapes, configurations, and manufacturing methods can be employed in the invention.
[0049] The present invention is not limited to the embodiment mentioned above, but can be improved and modified variously within the scope of the present invention.