Pneumatic tire
The tire design with overlapping or gapless sipes and optimized sipe distribution enhances noise reduction and wear resistance by stabilizing block lengths, addressing uneven wear issues.
Patent Information
- Application Number
- JP2024063316
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-04-10
- Publication Date
- 2025-10-23
AI Technical Summary
Pneumatic tires with sipes arranged at varying pitches in the tire circumferential direction lead to uneven wear resistance due to varying block lengths, compromising tire durability.
A pneumatic tire design with two or more circumferential grooves and rib-shaped land portions featuring sipes of varying angles, where sipes overlap or have no gap in the tire circumferential direction, with a distribution that maximizes medium sipes to stabilize block lengths.
Improves noise reduction while maintaining even wear resistance by stabilizing block lengths and reducing uneven wear.
Smart Images

Figure 2025160643000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a pneumatic tire. [Background technology]
[0002] It has been proposed to arrange sipes on a rib-shaped land portion at intervals in the tire circumferential direction and extending at an angle relative to the tire width direction (for example, Patent Document 1). Such a configuration is believed to be able to reduce running noise. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Special Publication No. 2016-540675 Summary of the Invention [Problem to be solved by the invention]
[0004] However, when sipes are arranged with pitch variation as described above, the circumferential lengths of the blocks defined between the sipes in the tire circumferential direction vary greatly across the tire width, which can lead to uneven wear of the blocks and, ultimately, deterioration of the uneven wear resistance of the blocks and, ultimately, the tire.
[0005] Therefore, an object of the present invention is to provide a pneumatic tire that can improve noise reduction while suppressing a decrease in uneven wear resistance. [Means for solving the problem]
[0006] The gist and configuration of the present invention are as follows. (1) The tread surface has two or more circumferential grooves extending in the tire circumferential direction, Rib-shaped land portions are defined between the circumferential grooves, A plurality of sipes extending at an angle with respect to the tire width direction are arranged in the land portion, The sipes adjacent to each other in the tire circumferential direction at least partially overlap each other in the tire circumferential direction when projected in the tire width direction, or there is no interval between them in the tire circumferential direction, The sipes are of three types: large sipes having a maximum inclination angle with respect to the tire width direction; small sipes having a minimum inclination angle with respect to the tire width direction; and medium sipes having an inclination angle with respect to the tire width direction intermediate between the large sipes and the small sipes. The pneumatic tire is characterized in that the sipe number distribution is such that the number of medium sipes is the largest among the large sipes, the medium sipes, and the small sipes.
[0007] Here, "tread surface" refers to the entire circumferential surface of the tread that comes into contact with the road surface when the pneumatic tire is mounted on an applicable rim, inflated to the specified internal pressure, and subjected to the maximum load. Additionally, the "groove" in "circumferential groove" refers to a groove with an opening width of 1 mm or more when the tire is mounted on an applicable rim, inflated to the specified internal pressure, and under no load (hereinafter referred to as the "standard state"). Furthermore, "sipe" refers to a sipe width that is such that when a pneumatic tire is mounted on an applicable rim, inflated to a specified internal pressure, and subjected to a maximum load, the sipe walls are partially blocked from each other. Furthermore, "there is no circumferential spacing" also includes cases where the circumferential spacing is 5% or less of the sipe pitch length, taking into consideration manufacturing errors.
[0008] In this specification, "applicable rim" refers to the standard rim (Measuring Rim in the ETRTO Standards Manual, Design Rim in the TRA Year Book) for the applicable size that is described or will be described in the future, as an industrial standard in effect in the region where the tire is produced and used, such as the JATMA Year Book of the Japan Automobile Tire Manufacturers Association (JATMA) in Japan, the Standards Manual of the European Tyre and Rim Technical Organization (ETRTO) in Europe, or the Year Book of the Tire and Rim Association, Inc. (TRA) in the United States (in other words, the above "rim" includes not only current sizes but also sizes that may be included in the above industrial standards in the future. An example of a "size to be described in the future" is the size listed under "FUTURE DEVELOPMENTS" in the 2013 edition of the ETRTO.), however, in the case of a size not described in the above industrial standards, it refers to a rim with a width that corresponds to the bead width of the tire. In addition, "specified internal pressure" refers to the air pressure (maximum air pressure) corresponding to the maximum load capacity of a single wheel for the applicable size and ply rating as specified in the above JATMA etc. For sizes not specified in the above industry standards, "specified internal pressure" refers to the air pressure (maximum air pressure) corresponding to the maximum load capacity specified for each vehicle on which the tire is mounted. In addition, "maximum load" refers to the load corresponding to the above maximum load capacity.
[0009] (2) The number distribution of the arrangement of two adjacent sipes in the tire circumferential direction over the entire tire circumferential direction is The pneumatic tire according to (1), wherein the number of arrangements in which the large sipes and the small sipes are adjacent to each other in the tire circumferential direction is the smallest.
[0010] (3) The pneumatic tire according to (1) or (2), wherein the number of the intermediate sipes relative to the total number of the sipes is 33.4% to 60%.
[0011] (4) The pneumatic tire according to (3), wherein the number of the intermediate sipes relative to the total number of the sipes is 37% to 50%.
[0012] (5) The number distribution of the arrangement of two adjacent sipes in the tire circumferential direction over the entire tire circumferential direction is The pneumatic tire according to any one of (1) to (4), wherein the number of arrangements in which the central sipes are adjacent to each other in the tire circumferential direction is maximum. [Effects of the Invention]
[0013] According to the present invention, it is possible to provide a pneumatic tire that can improve noise reduction while suppressing a decrease in uneven wear resistance. [Brief explanation of the drawings]
[0014] [Figure 1] 1 is a development view showing a portion of a tread surface of a pneumatic tire according to one embodiment of the present invention. [Figure 2] FIG. 1 is a diagram illustrating an example of an arrangement of communication devices. [Figure 3] FIG. 1 is a diagram illustrating an example of an arrangement of communication devices. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings. The internal structure of a pneumatic tire (hereinafter also simply referred to as "tire") can be configured similarly to conventional structures, and therefore a detailed description will be omitted. As an example, the tire may include a pair of bead portions, a pair of sidewall portions continuing between the pair of bead portions, and a tread portion continuing between the sidewall portions. The tire may further include a carcass toroidally spanning the pair of bead portions, and a belt disposed radially outward of the crown portion of the carcass. Hereinafter, dimensions and the like refer to dimensions and the like in the reference state.
[0016] Fig. 1 is a development view showing a part of the tread surface of a pneumatic tire according to one embodiment of the present invention. As shown in Fig. 1, this tire has two or more (two in the illustrated range) circumferential grooves 2 (2a, 2b) extending in the tire circumferential direction on the tread surface 1.
[0017] In the illustrated example, the circumferential grooves 2 extend without inclination in the tire circumferential direction, but may extend at an inclination angle of 5° or less with respect to the tire circumferential direction. In the illustrated example, the circumferential grooves 2 extend linearly, but may extend in a zigzag or bent shape. The groove width (opening width) of the circumferential grooves 2 is not particularly limited, but may be, for example, 3 to 15 mm. The groove depth (maximum depth) of the circumferential grooves 2 is not particularly limited, but may be, for example, 4 to 10 mm.
[0018] Rib-shaped land portions 3 are defined between the circumferential grooves 2. In other words, the land portions 3 are not completely divided in the tire circumferential direction by the widthwise grooves.
[0019] In the land portion 3, a plurality of sipes 4, 5, 6 are arranged, extending at an angle with respect to the tire width direction.
[0020] The sipes 4, 5, and 6 may be flat sipes. The sipes 4, 5, and 6 may extend linearly or zigzag in a plan view. The sipes 4, 5, and 6 may be three-dimensional sipes in which the sipe wall surface is uneven along the depth direction. The three-dimensional sipe may be, for example, a sipe that extends while bending in the depth direction, or a sipe that extends while changing in a wavy shape along the depth direction.
[0021] The sipe width (opening width) of the sipes 4, 5, and 6 is not particularly limited, but may be, for example, 0.1 to 2 mm. The groove depth (maximum depth) of the sipes 4, 5, and 6 is not particularly limited, but may be, for example, 0.1 to 10 mm.
[0022] The sipes 4, 5, 6 adjacent to each other in the tire circumferential direction are arranged so that at least a portion of them overlap in the tire circumferential direction when projected in the tire width direction, or there is no gap between them in the tire circumferential direction, thereby allowing the sipes 4, 5, 6 to be densely arranged in the tire circumferential direction.
[0023] The sipes 4, 5, and 6 are of three types: large sipes 4, which have the largest inclination angle relative to the tire width direction; small sipes 5, which have the smallest inclination angle relative to the tire width direction; and medium sipes 6, which have an inclination angle relative to the tire width direction intermediate between the large sipes 4 and the small sipes 5.
[0024] The inclination angle of the large sipes 4 relative to the tire width direction is not particularly limited as long as it is greater than the inclination angles of the medium sipes 6 and small sipes 5 relative to the tire width direction, but can be any value in the range of, for example, 12 to 83°.
[0025] The inclination angle of the medium sipes 6 relative to the tire width direction is in the range of inclination angles intermediate between the inclination angle of the large sipes 4 relative to the tire width direction and the inclination angle of the small sipes 5 relative to the tire width direction, and is not particularly limited, but can be any value in the range of, for example, 10 to 81°.
[0026] The inclination angle of the small sipes 5 relative to the tire width direction is smaller than the inclination angles of the large sipes 4 and medium sipes 6 relative to the tire width direction, and is not particularly limited, but can be any value in the range of, for example, 8 to 79°.
[0027] Here, the distribution of the numbers of the sipes 4, 5, and 6 is such that the number of medium sipes 6 is the largest among the large sipes 4, medium sipes 6, and small sipes 5. In other words, the number of medium sipes 6 is greater than the number of large sipes 4 and the number of small sipes 5 over the entire circumferential area of the tire.
[0028] The number of medium sipes 6 relative to the total number of sipes (the sum of the large sipes 4, medium sipes 6, and small sipes 5) is preferably 33.4% to 60%, and more preferably 37% to 50%.
[0029] In this embodiment, the distribution of the number of arrangements of two circumferentially adjacent sipes over the entire circumferential area of the tire is such that the number of arrangements in which a large sipe 4 and a small sipe 5 are adjacent in the tire circumferential direction is the smallest. In other words, over the entire circumferential area of the tire, among the pairs of two circumferentially adjacent sipes, the number of pairs of large sipes 4 and small sipes 5 is the smallest (this is less than the number of pairs of large sipes 4, the number of pairs of medium sipes 6, the number of small sipes 5, the number of pairs of large sipes 4 and medium sipes 6, and the number of pairs of medium sipes 6 and small sipes 5).
[0030] In this embodiment, the distribution of the number of arrangements of two circumferentially adjacent sipes over the entire circumferential direction of the tire is such that the number of arrangements in which two medium sipes 6 are adjacent to each other in the tire circumferential direction is the largest. In other words, over the entire circumferential direction of the tire, among the pairs of two circumferentially adjacent sipes, the number of pairs of medium sipes 6 is the largest (greater than the number of pairs of large sipes 4, the number of pairs of small sipes 5, the number of pairs of large sipes 4 and medium sipes 6, the number of pairs of large sipes 4 and small sipes 5, and the number of pairs of medium sipes 6 and small sipes 5).
[0031] The effects of the pneumatic tire of this embodiment will be described below.
[0032] In the pneumatic tire of this embodiment, first, a plurality of sipes 4, 5, 6 extending at an angle relative to the tire width direction are arranged in the land portion 3, and adjacent sipes 4, 5, 6 in the tire circumferential direction are arranged so that at least a portion of the sipes 4, 5, 6 overlap in the tire circumferential direction when projected in the tire width direction, or there is no gap between them in the tire circumferential direction. This improves the quietness of the tire. Furthermore, in the pneumatic tire of this embodiment, the distribution of the numbers of sipes 4, 5, and 6 is such that the number of medium sipes 6 is the greatest among the large sipes 4, medium sipes 6, and small sipes 5. This reduces variation in the tire width direction of the tire circumferential lengths of the blocks defined between the sipes, thereby suppressing a decrease in the uneven wear resistance of the blocks, and ultimately the uneven wear resistance of the tire. As described above, according to the pneumatic tire of the present embodiment, noise reduction can be improved while suppressing a decrease in uneven wear resistance.
[0033] It is preferable that the distribution of the number of arrangements of two circumferentially adjacent sipes 4, 5, 6 throughout the tire circumferential direction is such that the number of arrangements in which a large sipe 4 and a small sipe 6 are adjacent in the tire circumferential direction is the smallest. This is because it is possible to further reduce variation in the tire circumferential length of the blocks defined between the sipes in the tire width direction, and further suppress deterioration in the uneven wear resistance of the blocks, and ultimately the uneven wear resistance of the tire.
[0034] It is preferable that the distribution of the number of arrangements of two circumferentially adjacent sipes 4, 5, 6 throughout the tire circumferential direction is such that the number of arrangements in which two intermediate sipes 6 are adjacent to each other in the tire circumferential direction is the largest. This is because it is possible to further reduce variation in the tire width direction of the tire circumferential lengths of the blocks defined between the sipes, and further suppress deterioration in the uneven wear resistance of the blocks, and ultimately the uneven wear resistance of the tire.
[0035] The number of intermediate sipes 6 relative to the total number of sipes is preferably 33.4% to 60%. By making it 34% or more, the effect of suppressing a decrease in the uneven wear resistance of the tire can be more reliably exhibited, while by making it 50% or less, the effect of improving noise reduction can be more reliably exhibited. For the same reason, the number of intermediate sipes 6 relative to the total number of sipes is preferably 37% to 50%.
[0036] [Example of communication device placement] 2 and 3 are diagrams showing examples of the arrangement of communication devices. A tire may be equipped with an RF tag as the communication device 100, 200. The RF tag includes an IC chip and an antenna. The RF tag may be arranged, for example, sandwiched between multiple components of the same or different types that make up the tire. This makes it easier to attach the RF tag during tire production, improving the productivity of tires equipped with RF tags. In this example, the RF tag may be arranged, for example, sandwiched between a bead filler and another component adjacent to the bead filler. The RF tag may be embedded in any of the components that make up the tire. This reduces the load on the RF tag compared to when the RF tag is arranged sandwiched between multiple components that make up the tire. This improves the durability of the RF tag. In this example, the RF tag may be embedded in a rubber component such as tread rubber or side rubber. It is preferable that the RF tag is not arranged at a position that is a boundary between components with different rigidities in the periphery length direction, which is the direction along the outer surface of the tire in a cross-sectional view in the tire width direction. By doing so, the RF tag is not placed in a position where distortion is likely to concentrate due to a difference in rigidity. Therefore, the load applied to the RF tag can be reduced. This can improve the durability of the RF tag. In this example, it is preferable that the RF tag is not placed in a position that is, for example, a boundary between the end of the carcass and a member adjacent to the end of the carcass (for example, a side rubber) in a cross-sectional view in the tire width direction. The number of RF tags is not particularly limited. A tire may be equipped with only one RF tag, or may be equipped with two or more RF tags. Here, an RF tag is described as an example of a communication device, but a communication device other than an RF tag may also be used.
[0037] The RF tag may be disposed, for example, in the tread portion of the tire. In this manner, the RF tag will not be damaged by a side cut of the tire. The RF tag may be disposed, for example, in the tread center portion in the tire width direction. The tread center portion is a position in the tread portion where flexure is less likely to concentrate. In this manner, the load applied to the RF tag can be reduced. This improves the durability of the RF tag. Also, it is possible to prevent differences in communication with the RF tag from both outer sides of the tire in the tire width direction. In this example, the RF tag may be disposed, for example, within a range of 1 / 2 the tread width centered on the tire equatorial plane in the tire width direction. The RF tag may be disposed, for example, at a tread edge in the tire width direction. If the position of a reader that communicates with the RF tag is predetermined, the RF tag may be disposed, for example, at a tread edge on one side closer to the reader. In this example, the RF tag may be disposed, for example, within a range of 1 / 4 the tread width in the tire width direction, with the tread edge as the outer end.
[0038] The RF tag may be positioned, for example, closer to the tire cavity than a carcass including one or more carcass plies spanning between bead portions. This configuration makes the RF tag less susceptible to damage from external impacts to the tire, side cuts, nail penetration, and other damage. As one example, the RF tag may be positioned in close contact with the surface of the carcass facing the tire cavity. As another example, if there is another component closer to the tire cavity than the carcass, the RF tag may be positioned between the carcass and another component located closer to the tire cavity than the carcass. An example of another component located closer to the tire cavity than the carcass is an inner liner that forms the tire inner surface. As another example, the RF tag may be attached to the inner surface of the tire facing the tire cavity. Configuring the RF tag to be attached to the inner surface of the tire makes it easier to attach the RF tag to the tire and to inspect and replace the RF tag. In other words, the ease of attaching and maintaining the RF tag can be improved. Furthermore, by attaching the RF tag to the inner surface of the tire, it is possible to prevent the RF tag from becoming the core of tire failure, compared to a configuration in which the RF tag is embedded in the tire. Furthermore, when the carcass has multiple carcass plies and there is a position where multiple carcass plies are overlapped, the RF tag may be disposed between the overlapped carcass plies.
[0039] The RF tag may be arranged, for example, in the tread portion of the tire, radially outward of a belt including one or more belt plies. As one example, the RF tag may be arranged radially outward of the belt in the tire radial direction and in close contact with the belt. As another example, if a reinforcing belt layer is provided, the RF tag may be arranged radially outward of the reinforcing belt layer in close contact with the reinforcing belt layer. As another example, the RF tag may be embedded in the tread rubber radially outward of the belt. By arranging the RF tag radially outward of the belt in the tread portion of the tire, communication with the RF tag from outside the tire in the tire radial direction is less likely to be obstructed by the belt. Therefore, communication with the RF tag from outside the tire in the tire radial direction can be improved. As another example, the RF tag may be arranged radially inward of the belt in the tread portion of the tire. In this way, the radially outward side of the RF tag is covered by the belt, making the RF tag less susceptible to damage from impacts from the tread surface or nail penetration. As one example, the RF tag may be placed in the tread portion of the tire, between the belt and the carcass located radially inward of the belt. Also, if the belt has multiple belt plies, the RF tag may be placed in the tread portion of the tire, between any two belt plies. In this way, the outer side of the RF tag in the tire radial direction is covered by one or more belt plies, making the RF tag less susceptible to damage from impacts from the tread surface or nail penetration.
[0040] In the case of truck and bus tires, the RF tag may be sandwiched between the cushion rubber and the tread rubber, or between the cushion rubber and the side rubber, for example. In this way, the cushion rubber can absorb impacts on the RF tag. This improves the durability of the RF tag. The RF tag may also be embedded in the cushion rubber, for example. Furthermore, the cushion rubber may be composed of multiple adjacent rubber members of the same or different types. In such cases, the RF tag may be sandwiched between the multiple rubber members that make up the cushion rubber.
[0041] The RF tag may be disposed, for example, in a sidewall portion or a bead portion of the tire. The RF tag may be disposed, for example, in one sidewall portion or one bead portion that is closer to a reader capable of communicating with the RF tag. This arrangement improves communication between the RF tag and the reader. As an example, the RF tag may be disposed between the carcass and the side rubber or between the tread rubber and the side rubber. The RF tag may be disposed, for example, between the tire's maximum width position and the tread surface position in the tire radial direction. This arrangement improves communication with the RF tag from outside the tire in the tire radial direction, compared to a configuration in which the RF tag is disposed radially inward of the tire's maximum width position. The RF tag may be disposed, for example, radially inward of the tire's maximum width position. This arrangement allows the RF tag to be disposed near the bead portion, which has high rigidity. This reduces the load applied to the RF tag, thereby improving the durability of the RF tag. As an example, the RF tag may be disposed adjacent to the bead core in the tire radial direction or the tire width direction. Distortion is less likely to concentrate near the bead core. This reduces the load on the RF tag, improving its durability. In particular, it is preferable that the RF tag be positioned radially inward of the tire's maximum width and radially outward of the bead core of the bead portion. This improves the durability of the RF tag, and communication between the RF tag and a reader is less likely to be obstructed by the bead core, improving the RF tag's communication performance. Furthermore, when the side rubber is composed of multiple rubber members of the same or different types adjacent to each other in the tire radial direction, the RF tag may be sandwiched between the multiple rubber members that make up the side rubber.
[0042] In the case of a passenger vehicle tire, the RF tag may be sandwiched between a bead filler and a member adjacent to the bead filler. This allows the RF tag to be placed in a position where strain is less likely to concentrate due to the placement of the bead filler. Therefore, the load on the RF tag can be reduced. This improves the durability of the RF tag. The RF tag may be sandwiched between, for example, the bead filler and the carcass. The portion of the carcass that sandwiches the RF tag together with the bead filler may be located on the outer side of the bead filler in the tire width direction, or on the inner side of the bead filler in the tire width direction. When the portion of the carcass that sandwiches the RF tag together with the bead filler is located on the outer side of the bead filler in the tire width direction, the load on the RF tag due to impact or damage from the outside of the tire in the tire width direction can be further reduced. This improves the durability of the RF tag. The bead filler may also have a portion that is located adjacent to the side rubber. In this case, the RF tag may be disposed by being sandwiched between the bead filler and the side rubber. Furthermore, the bead filler may have a portion disposed adjacent to the rubber chafer. In this case, the RF tag may be disposed by being sandwiched between the bead filler and the rubber chafer.
[0043] In the case of truck and bus tires, the RF tag may be sandwiched between a stiffener and a member adjacent to the stiffener. This allows the RF tag to be placed in a position where the stiffener prevents strain concentration. Therefore, the load on the RF tag can be reduced. This improves the durability of the RF tag. The RF tag may be sandwiched between the stiffener and a side rubber, for example. The RF tag may also be sandwiched between the stiffener and a carcass, for example. The portion of the carcass that sandwiches the RF tag together with the stiffener may be located on the outer side of the stiffener in the tire width direction, or on the inner side of the stiffener in the tire width direction. When the portion of the carcass that sandwiches the RF tag together with the stiffener is located on the outer side of the stiffener in the tire width direction, the load on the RF tag due to impact or damage from the outside of the tire in the tire width direction can be further reduced. This improves the durability of the RF tag. The stiffener may have a portion disposed adjacent to the rubber chafer. In such a case, the RF tag may be disposed sandwiched between the stiffener and the rubber chafer. The stiffener may have a portion adjacent to the hat rubber on the outer side in the tire width direction. In such a case, the RF tag may be disposed sandwiched between the stiffener and the hat rubber. The stiffener may be composed of a plurality of rubber members having different hardnesses. In such a case, the RF tag may be disposed sandwiched between the plurality of rubber members constituting the stiffener. The RF tag may be disposed sandwiched between the hat rubber and a member adjacent to the hat rubber. The RF tag may be disposed sandwiched, for example, between the hat rubber and the carcass ply. In this way, impacts on the RF tag can be absorbed by the hat rubber. This improves the durability of the RF tag.
[0044] The RF tag may be disposed, for example, sandwiched between the rubber chafer and the side rubber. In this way, the RF tag can be disposed in a position where the placement of the rubber chafer makes it less likely for distortion to concentrate. This reduces the load on the RF tag. This improves the durability of the RF tag. The RF tag may be disposed, for example, sandwiched between the rubber chafer and the carcass. In this way, it reduces the load on the RF tag due to impact or damage from the rim. This improves the durability of the RF tag.
[0045] In the case of truck and bus tires, the RF tag may be sandwiched between a nylon chafer and another member adjacent to the nylon chafer on the outer or inner side in the tire width direction. This makes it difficult for the position of the RF tag to fluctuate when the tire deforms. Therefore, the load applied to the RF tag when the tire deforms can be reduced. This improves the durability of the RF tag. The nylon chafer may have, for example, a portion adjacent to the rubber chafer on the outer side in the tire width direction. In this case, the RF tag may be sandwiched between the nylon chafer and the rubber chafer. The nylon chafer may have, for example, a portion adjacent to the side rubber on the outer side in the tire width direction. In this case, the RF tag may be sandwiched between the nylon chafer and the side rubber. The nylon chafer may have, for example, a portion adjacent to the stiffener on the inner side in the tire width direction. In this case, the RF tag may be sandwiched between the nylon chafer and the stiffener. Furthermore, the nylon chafer may have a portion adjacent to the hat rubber, for example, on the inner side in the tire width direction. In such a case, the RF tag may be disposed by being sandwiched between the nylon chafer and the hat rubber. Furthermore, the nylon chafer may have a portion adjacent to the carcass, for example, on the inner side in the tire width direction. In such a case, the RF tag may be disposed by being sandwiched between the nylon chafer and the carcass. Furthermore, the nylon chafer may have a portion adjacent to the wire chafer, for example, on the inner side in the tire width direction. In such a case, the RF tag may be disposed by being sandwiched between the nylon chafer and the wire chafer. In this way, the RF tag may be disposed by being sandwiched between the nylon chafer and another member adjacent to the nylon chafer on the outer or inner side in the tire width direction. In particular, by covering the outer side of the RF tag in the tire width direction with the nylon chafer, the load applied to the RF tag due to impact or damage from the outside of the tire in the tire width direction can be further reduced. Therefore, the durability of the RF tag can be further improved.
[0046] The RF tag may be sandwiched between the wire chafer and another adjacent member on the inner or outer side of the wire chafer in the tire width direction. This makes it difficult for the position of the RF tag to fluctuate when the tire deforms. This reduces the load applied to the RF tag when the tire deforms. This improves the durability of the RF tag. The other adjacent member on the inner or outer side of the wire chafer in the tire width direction may be, for example, a rubber member such as a rubber chafer. Furthermore, the other adjacent member on the inner or outer side of the wire chafer in the tire width direction may be, for example, a carcass.
[0047] In the case of a tire for a passenger vehicle, a belt reinforcing layer may be further provided on the radially outer side of the belt. For example, the belt reinforcing layer may be formed by winding a cord made of polyethylene terephthalate continuously and spirally in the circumferential direction of the tire. Here, the cord may be 6.9 x 10 -2 The belt reinforcement layer may be formed by applying an adhesive treatment under a tension of 100 N / tex or more, and have an elastic modulus of 2.5 mN / dtex·% or more when measured at 160°C with a load of 29.4 N. Furthermore, the belt reinforcement layer may be arranged to cover the entire belt or only both ends of the belt. Furthermore, the winding density per unit width of the belt reinforcement layer may vary depending on the position in the width direction. This makes it possible to reduce road noise and flat spots without reducing high-speed durability.
[0048] [Contribution to the United Nations-led Sustainable Development Goals (SDGs)] The SDGs have been proposed to realize a sustainable society. One embodiment of the present invention is expected to be a technology that contributes to goals such as "No. 12: Responsible Consumption and Production" and "No. 13: Take concrete action against climate change." [Explanation of symbols]
[0049] 1: tread surface, 2: Circumferential groove, 3: Rikube, 4: Large sipe, 5: Small sipes, 6: Medium sipe
Claims
1. The tread surface has two or more circumferential grooves extending in the tire circumferential direction, Rib-shaped land portions are defined between the circumferential grooves, A plurality of sipes extending at an angle with respect to the tire width direction are arranged in the land portion, The sipes adjacent to each other in the tire circumferential direction at least partially overlap each other in the tire circumferential direction when projected in the tire width direction, or there is no interval between them in the tire circumferential direction, The sipes are of three types: large sipes having a maximum inclination angle with respect to the tire width direction; small sipes having a minimum inclination angle with respect to the tire width direction; and medium sipes having an inclination angle with respect to the tire width direction intermediate between the large sipes and the small sipes. The pneumatic tire is characterized in that the sipe number distribution is such that the number of medium sipes is the largest among the large sipes, the medium sipes, and the small sipes.
2. The number distribution of the arrangements of two circumferentially adjacent sipes in the tire circumferential direction over the entire tire circumferential direction is The pneumatic tire according to claim 1 , wherein the number of arrangements in which the large sipes and the small sipes are adjacent to each other in the tire circumferential direction is the smallest.
3. 3. The pneumatic tire according to claim 1, wherein the number of the intermediate sipes relative to the total number of the sipes is 33.4% to 60%.
4. The pneumatic tire according to claim 3, wherein the number of the intermediate sipes relative to the total number of the sipes is 37% to 50%.
5. The number distribution of the arrangements of two circumferentially adjacent sipes in the tire circumferential direction over the entire tire circumferential direction is The pneumatic tire according to claim 1 or 2, wherein the number of arrangements in which the central sipes are adjacent to each other in the tire circumferential direction is maximum.
Citation Information
Patent Citations
Tread with blocks having multiple sipes
JP2016540675A