The present invention relates to a tire having a plurality of blocks formed in a tread portion bound with an intended tire rotational direction.
Conventionally, a tire with a tread portion bound with an intended tire rotational direction has been known. For example, the following Patent Literature 1 has proposed a tire that achieves both wear resistance and wet grip performance by keeping a ground contacting surface shape index in a certain range.
Unexamined Japanese Patent Application No, 2019-093830
However, in the tire of Patent Literature 1, a ground contact pressure on the heel side in the tire rotational direction is locally increased, therefore, a difference may be caused in the ground contact pressure between the heel side and the toe side in the tire rotational direction, which is a cause of decrease in frictional force. Therefore, there has been a demand for further improvements in traction performance, which is affected by frictional force.
The present invention was made in view of the above, and a primary object thereof is to provide a tire capable of improving the traction performance by making the ground contact pressure uniform during tire rotation.
The present invention is a tire including a tread portion bound with an intended tire rotational direction, wherein the tread portion is provided with a plurality of blocks, each of the blocks includes a first ground contact edge, which is a ground contact edge on a heel side in the tire rotational direction, and a second ground contact edge, which is the ground contact edge on a toe side in the tire rotational direction, and a second tire radius which is a tire radius at the second ground contact edge is larger than a first tire radius which is the tire radius at the first ground contact edge.
In the pneumatic tire according to the present invention, it is preferred that the second tire radius is lamer than the first tire radius by 0.3 mm or more and 1.5 mm or less.
In the pneumatic tire according to the present invention, it is preferred that each of the blocks has a side wall extending inward in a tire radial direction from the second ground contact edge, and the side wall is parallel to a tire radial direction reference line which is a radial linear line passing through the first ground contact edge.
In the pneumatic tire according to the present invention, it is preferred that each of the blocks includes a protruding portion protruding radially outward from a reference plane defined by the first tire radius, the side wall is provided in the protruding portion, and the reference plane is a plane passing through the first ground contact edge and an imaginary line on a side surface on the toe side of the block, the imaginary line being arranged at a distance equal to the first tire radius from a tire center.
In the pneumatic tire according to the present invention, it is preferred that each of the blocks has a ground contacting surface extending in an arc shape in a tire circumferential direction between the first ground contact edge and the second ground contact edge, and a radius of curvature of the ground contacting surface is 0.5 times or more and 2.0 times or less the first tire radius.
In the pneumatic tire according to the present invention, it is preferred that each of the blocks has a rubber hardness of 55 degrees or more and 70 degrees or less.
In the pneumatic tire according to the present invention, it is preferred that a pitch length of the blocks adjacent to each other in the tire circumferential direction is 25 mm or more and 50 mm or less.
In the pneumatic tire according to the present invention, it is preferred that the tread portion includes a block row in which 50 to 80 blocks are arranged in a tire circumferential direction.
In the pneumatic tire according to the present invention, each of the blocks includes the first ground contact edge which is the ground contact edge on the heel side in the tire rotational direction and the second ground contact edge which is the ground contact edge on the toe side in the tire rotational direction, and the second tire radius which is the tire radius at the second ground contact edge is larger than the first tire radius which is the tire radius at the first ground contact edge. In the tire configured as such, a local change in the ground contact pressure during rotation is suppressed, therefore, the ground contact pressure at the first ground contact edge and the ground contact pressure at the second ground contact edge can be uniformized. Thereby, in the tire of the present invention, it is possible that the traction performance is improved.
An embodiment of the present invention will now be described in conjunction with accompanying drawings.
The Tire 1 in the present embodiment has a tread portion 2 bound with an intended tire rotational direction (R). A plurality of blocks 3 are formed in the tread portion 2 of the present embodiment. The tire 1 having the tread portion 2 configured as such is suitable for running on rough terrain, such as snowy roads, muddy roads, and the like.
In the present embodiment, a second tire radius (r2), which is the tire radius at the second ground contact edge 5, is larger than a first tire radius (r1), which is the tire radius at the first ground contact edge 4. In the tire 1 configured as such, a local change in the ground contact pressure during rotation is suppressed, therefore, it is possible that the ground contact pressure at the first ground contact edge 4 and the ground contact pressure at the second ground contact edge 5 are made uniform. Thereby, in the tire 1 of the present embodiment, it is possible that the traction performance is improved.
As a more preferred embodiment, the second tire radius (r2) is greater than the first tire radius (r1) by 0.3 mm or more and 1.5 mm or less. In other words; it is preferred that a difference (h) between the second tire radius (r2) and the first tire radius (r1) is 0.3 mm or more and 1.5 mm or less. When the difference (h) between the second tire radius (r2) and the first tire radius (r1) is 0.3 mm or more, the locally high ground contact pressure at the first ground contact edge 4 can be suppressed. When the difference (h) between the second tire radius (r2) and the first tire radius (r1) is 1.5 mm or less, the locally high ground contact pressure at the second ground contact edge 5 can be suppressed.
As shown in
When the number of the blocks 3 included in the block row 6 is N, a pitch angle θ of the blocks 3 adjacent to each other in the tire circumferential direction can be expressed by the following Expression 1.
θ=360/N (Expression 1)
Here, if the block row 6 has more than one pitch angle θ, the pitch angle θ expressed in Expression 1 is the average pitch angle θ of them.
Further, in this case, a pitch length (P) of the blocks 3 adjacent to each other in the tire circumferential direction on a reference plane (B), which is defined by the first tire radius (r1), can be expressed by the following Expression 2. The reference plane (B) is a plane passing through the first ground contacting edge and an imaginary line on a wall surface (8a), which is a side surface on the toe side of the block, arranged at a distance from the tire center equal to the first tire radius (r1).
P≈2·r1·sin θ/2 (Expression 2)
In the tread portion 2 of the present embodiment, the pitch length (P) of the blocks 3 adjacent to each other in the tire circumferential direction is 25 mm or more and 50 mm or less. When the pitch length (P) is 25 mm or more, the rigidity of each of the blocks 3 can be improved. When the pitch length (P) is 50 mm or less, excellent rough terrain running performance can be maintained.
As shown in
Each of the blocks 3 of the present embodiment includes a protruding portion 9 protruding radially outward from the reference plane (B) defined by the first tire radius (r1). The ground contacting surface 7 of the present embodiment is provided in the protruding portion 9. It is preferred that a length (L) in the tire circumferential direction of the ground contacting surface 7 is smaller than the pitch length (P) of the blocks 3. Here, the length (L) in the tire circumferential direction of the ground contacting surface 7 is the length measured along the ground contacting surface 7.
It is preferred that the length (1) in the tire circumferential direction of the ground contacting surface 7 in the present embodiment is 20 mm or more and 40 mm or less. When the length (L) of the ground contacting surface 7 is 20 mm or more, the rigidity of each of the blocks 3 can be improved. When the length (L) of the ground contacting surface 7 is 40 mm or less, excellent rough terrain running performance can be maintained.
It is preferred that the side wall 8 is formed at least in the protruding portion 9. The side wall 8 of the present embodiment continuously extends from the protruding portion 9 to the radially inner side of the blocks 3. The side wall 8 configured as such is helpful for improving the frictional force during acceleration.
A height (h) of the protruding portion 9 in the present embodiment is the difference (h) between the second tire radius (r2) and the first tire radius (r1). The height (h) of the protruding portion 9 can be expressed by the following Expression 3 by an angle σ between the ground contacting surface 7 and the reference plane (B) and the length (L) of the ground contacting surface 7.
h=L·sin σ (Expression 3)
Here, it is preferred that the angle σ between the ground contacting surface 7 and the reference plane (B) satisfies the following Expression 4.
σ<180/N (Expression 4)
The blocks 3 each having the protruding portion 9 configured as such can uniformize the ground contact pressure at the first ground contact edge 4 and the ground contact pressure at the second ground contact edge 5, which is helpful for improving the traction performance of the tire 1.
As the blocks 3 of the present embodiment, those having a rubber hardness of 55 degrees or more and 70 degrees or less are suitably used. Here, the rubber hardness is the hardness measured by a type-A durometer in an environment of 23 degrees Celsius in accordance with Japanese Industrial Standard JIS-K6253. The blocks 3 configured as such can suppress partial chipping while improving frictional force.
It is preferred that a radius of curvature (R1) of the ground contacting surface 7 is 0.5 times or more and 2.0 times or less the first tire radius (r1). Here, the radius of curvature (R1) of the ground contacting surface 7 is the value measured in a cross section taken along the tire circumferential direction. When the radius of curvature (R1) is 0.5 times or more the first tire radius (r1), the local increase in the ground contact pressure of the ground contacting surface 7 can be suppressed. When the radius of curvature (R1) is 2.0 times or less the first tire radius (r1), the local increase in the ground contact pressure at the second ground contact edge 5 can be suppressed.
It is preferred that the length (L) in the tire circumferential direction of the ground contacting surface 7 in the present embodiment is 20 mm or more and 40 mm or less. When the length (L) of the ground contacting surface 7 is 20 mm or more, the rigidity of each of the blocks 3 can be improved. When the length (L) of the ground contacting surface 7 is 40 mm air less, excellent rough terrain running performance can be maintained.
Each of the blocks 3 of this embodiment is provided with the side wall 8 extending radially inward from the second ground contact edge 5. It is preferred that the side wall 8 is parallel to a tire radial direction reference line (BL) which is a radial linear line passing through the first ground contact edge 4. Each of the blocks 3 configured as such suppresses the chipping of the second ground contact edge 5, which tends to occur during deceleration, therefore, the traction performance can be maintained high for a long period of time.
Each of the blocks 3 of this embodiment includes the protruding portion 9 protruding radially outward from the reference plane (B) defined by the first tire radius (r1). The ground contacting surface 7 and the side wall 8 of this embodiment are formed in the protruding portion 9.
The height (h) of the protruding portion 9 of this embodiment can be expressed by the following Expression 5 by the angle c which is defined by the Expression 4 and the length (L) of the ground contacting surface 7.
h=L·tan σ (Expression 5)
Each of the blocks 3 having the protruding portion 9 configured as such can uniformize the ground contact pressure at the first ground contact edge 4 and the ground contact pressure at the second ground contact edge 5, which is helpful for improving the traction performance of tire 1.
While detailed description has been made of an especially preferred embodiment of the present invention, the present invention can be embodied in various forms without being limited to the illustrated embodiment.
As the tire having the blocks of
Tire size: 265/65R8
Tire rim size: 18×7.5J
Tire air pressure: 230 kPa.
Tire load rate: 80%
By using a bench testing machine, the traction performance of the test tires during acceleration was measured under a dry road condition and a wet road condition. The results are indicated by an index based on the Reference being 100, wherein the larger the numerical value, the larger the frictional force is, which shows more excellent traction performance.
By using a bench testing machine, the braking performance of the test tires during deceleration was measured under a dry road surface condition and a wet road surface condition. The results are indicated by an index based on the Reference being 100, wherein the larger the numerical value, the larger the frictional force is, which shows more excellent braking performance.
After the braking performance test under the dry road surface condition was repeated 10 times, it was confirmed whether or not the blocks were chipped. The results are represented by the presence or absence of the chipping, wherein the absence of chipping indicates that the traction performance and the braking performance of the initial stage be maintained for a long period of time.
The test results are shown in Table 1.
From the test results, it was confirmed that the tires in the Examples had excellent traction performance compared with the tires in the Reference. Therefore, it was confirmed that the fraction performance was improved in the tires in the Examples compared with the tires in the Reference. Further, it was confirmed that more excellent traction performance can be maintained for a long period of time in the tires in the Example 2 compared with the tires in the Example 1.
Number | Date | Country | Kind |
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2019-234858 | Dec 2019 | JP | national |