tire

By positioning electronic devices at specific radial distances from the bead core, the durability of electronic devices on large-sized tires is enhanced, addressing the issue of bending strain and ensuring reliable operation.

JP7770264B2Active Publication Date: 2025-11-14BRIDGESTONE CORP
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Patent Information

Application Number
JP2022110070
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-07-07
Publication Date
2025-11-14
Estimated Expiration
2042-07-07

AI Technical Summary

Technical Problem

The durability of electronic devices attached to the sidewall portion of large-sized tires is compromised due to significant bending strain, particularly when the tire size and load applied are large, leading to potential breakdown or peeling off.

Method used

The electronic device is positioned at specific radial distances from the bead core, ranging from 105% to 330% of the bead filler height, depending on the tire's nominal rim diameter, to minimize bending strain and enhance durability.

Benefits of technology

This positioning significantly improves the durability of electronic devices on the sidewall of large-sized tires by reducing bending strain, ensuring reliable operation and reducing the risk of damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a tire, which can improve durability of an electronic device mounted on a tire outer surface side of a tire side wall part of the tire having a large size.SOLUTION: A tire 10 according to the present invention comprises a bead filler 5 arranged adjacently to outside in a tire radial direction of a bead core 11, and an electronic device 6 mounted on a part closer to a tire outer surface 10o than a carcass 4 of a side wall part 2, where when a designation of a rim diameter is 20-57 inches, the electronic device 6 is arranged at a position where a distance in the tire radial direction from an upper end 11a of the bead core 11 is equal to 105-200% of a height in the tire radial direction of the bead filler 5, and when the designation of the rim diameter is more than 57 inches, the electronic device 6 is arranged at a position where the distance in the tire radial direction from the upper end 11a of the bead core 11 is equal to 105-330% of the height in the tire radial direction of the bead filler 5.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a tire. [Background technology]

[0002] BACKGROUND ART A configuration in which an electronic device such as an RF tag is attached to a tire has been known for some time. For example, Patent Document 1 discloses a tire in which an electronic device is attached to the sidewall. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent Publication No. 2021-8266 Summary of the Invention [Problem to be solved by the invention]

[0004] However, it was found that there is room for improvement in the durability of electronic devices attached to the sidewall portion, particularly when the tire size and therefore the load applied to the tire are large, as the sidewall portion of the tire bends significantly outward in the tire width direction, which has a large effect on bending strain.

[0005] Therefore, an object of the present invention is to provide a tire that can improve the durability of electronic devices attached to the outer surface side of the tire sidewall portion of a large-sized tire. [Means for solving the problem]

[0006] The above problems can be solved by the following means.

[0007] (1) The tire of the present invention is A tire comprising: a pair of bead portions each having a bead core; a carcass consisting of at least one carcass ply extending between the pair of bead portions via a pair of sidewall portions and a tread portion; a bead filler disposed adjacent to the outer side of the bead core in the tire radial direction; and an electronic device attached to the sidewall portion closer to the tire outer surface than the carcass, The tire has an applicable rim with a nominal rim diameter of 20 inches or more, When a nominal rim diameter of an applicable rim of the tire is 20 to 57 inches, the electronic device is disposed at a position where a distance in the tire radial direction from an upper end of the bead core is 105 to 200% of a height in the tire radial direction of the bead filler from the upper end of the bead core, When the nominal rim diameter of the applicable rim of the tire is greater than 57 inches, the electronic device is disposed at a position where the tire radial distance from the upper end of the bead core is 105 to 330% of the tire radial height of the bead filler from the upper end of the bead core. According to the tire of the present invention, it is possible to improve the durability of electronic devices attached to the outer surface side of the tire in the sidewall portion of a large-sized tire.

[0008] (2) In the tire described in (1) above, The tire has an applicable rim with a nominal rim diameter of 20 to 57 inches, The electronic device is preferably disposed at a position where the distance in the tire radial direction from the upper end of the bead core is 110 to 180% of the height in the tire radial direction of the bead filler from the upper end of the bead core. In this case, the durability of the electronic device can be further improved in a tire having the above nominal rim diameter.

[0009] (3) In the tire of (1) above, The tire has an applicable rim with a nominal rim diameter of greater than 57 inches, It is also preferable that the electronic device is disposed at a position where the distance in the tire radial direction from the upper end of the bead core is 150 to 280% of the height in the tire radial direction of the bead filler from the upper end of the bead core. In this case, the durability of the electronic device can be further improved in a tire having the above nominal rim diameter.

[0010] (4) In any one of the tires (1) to (3) above, The electronic device is preferably disposed at a position with a depth of 0.5 to 5.0 mm from the outer surface of the sidewall portion. In this case, the electronic device is less likely to be damaged when the tire is running.

[0011] (5) In any one of the tires (1) to (4) above, The electronic device is preferably disposed at a tire circumferential position overlapping with a tire serial display position when viewed in the tire axial direction. In this case, the location of the electronic device can be easily grasped with a simple configuration. [Effects of the Invention]

[0012] According to the present invention, it is possible to provide a tire that can improve the durability of an electronic device attached to the outer surface side of the tire in the sidewall portion of a large-sized tire. [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a schematic cross-sectional view in the tire width direction of a tire according to one embodiment of the present invention. [Figure 2] 1 is a plan view schematically illustrating an example of an electronic device that can be used in a tire according to an embodiment of the present invention. [Figure 3] 1 is a schematic partial cross-sectional view in the tire width direction illustrating an example of a tire according to an embodiment of the present invention, for explaining an arrangement position of an electronic device in the tire. [Figure 4]FIG. 4 is a schematic partial cross-sectional view in the tire width direction for explaining the arrangement position of an electronic device in another example tire according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0014] The tire according to the present invention can be suitably used, for example, as an OR tire (tire for construction and mining vehicles).

[0015] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, embodiments of a tire according to the present invention will be described by way of example with reference to the drawings. In each drawing, the same members and parts are designated by the same reference numerals. In this specification, the "tire circumferential direction" refers to the direction in which the tire rotates around the tire's rotation axis (axis), the "tire radial direction" refers to the direction perpendicular to the tire's rotation axis, and the "tire width direction" refers to the direction parallel to the tire's rotation axis. In some drawings, the tire circumferential direction is indicated by the symbol "CD," the tire radial direction is indicated by the symbol "RD," and the tire width direction is indicated by the symbol "WD." In this specification, the side closer to the tire's rotation axis along the tire radial direction is referred to as the "tire radial inner side," and the side farther from the tire's rotation axis along the tire radial direction is referred to as the "tire radial outer side." In this specification, the side closer to the tire equatorial plane CL along the tire width direction is referred to as the "inner side in the tire width direction," and the side farther from the tire equatorial plane CL along the tire width direction is referred to as the "outer side in the tire width direction." Furthermore, in this specification, "extending in the tire circumferential direction" means extending with at least a tire circumferential component. That is, "extending in the tire circumferential direction" means that it may extend in a direction along the tire circumferential direction (i.e., at an angle of 0° with respect to the tire circumferential direction, and not inclined with respect to the tire circumferential direction), or it may extend inclined at an angle other than 90° with respect to the tire circumferential direction (i.e., inclined with respect to the tire circumferential direction, at an inclination angle greater than 0° and other than 90° with respect to the tire circumferential direction). Furthermore, in this specification, "extending in the tire width direction" means extending with at least a tire width direction component. That is, "extending in the tire width direction" means that it may extend in a direction along the tire width direction (i.e., at an angle of 0° with respect to the tire width direction, and not inclined with respect to the tire width direction), or it may extend inclined at an angle other than 90° with respect to the tire width direction (i.e., inclined with respect to the tire width direction, at an inclination angle greater than 0° and other than 90° with respect to the tire width direction).

[0016] Unless otherwise specified, the positional relationship and dimensions of each element are measured under standard conditions, where the tire is mounted on an applicable rim, inflated to the specified internal pressure, and no load is applied. Furthermore, when the tire is mounted on an applicable rim, inflated to the specified internal pressure, and under maximum load, the outer peripheral surface of the tire that comes into contact with the road surface is referred to as the "tread surface," and the ends of the tread surface in the tire width direction are referred to as the "tread edges."

[0017] 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, which is an industrial standard valid in the region where the tire is produced and used, and which is described or will be described in the future, such as the JATMA Year Book of the Japan Automobile Tire Manufacturers Association (JATMA) in Japan, the European Tyre and Rim Technical Organization (ETRTO) Standards Manual in Europe, and the Tire and Rim Association, Inc. (TRA) Year Book in the United States. However, for sizes not described in these industrial standards, it refers to a rim with a width corresponding to the bead width of a pneumatic tire. "Applicable rim" includes not only current sizes but also sizes that will be described in the aforementioned industrial standards in the future. An example of a "size that will be described in the future" is the size described as "FUTURE DEVELOPMENTS" in the 2013 edition of the ETRTO.

[0018] In this specification, "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 set forth in the aforementioned industrial standards, such as the JATMA Yearbook, or, in the case of a size not set forth in the aforementioned industrial standards, refers to the air pressure (maximum air pressure) corresponding to the maximum load capacity specified for each vehicle on which the tire is to be mounted. Furthermore, in this specification, "maximum load" refers to the load corresponding to the maximum load capacity of the tire for the applicable size as set forth in the aforementioned industrial standards, or, in the case of a size not set forth in the aforementioned industrial standards, the load corresponding to the maximum load capacity specified for each vehicle on which the tire is to be mounted.

[0019] FIG. 1 is a diagram illustrating a tire 10 according to one embodiment of the present invention, and is a schematic cross-sectional view of the tire 10 in the tire width direction. The tire 10 according to the embodiment of the present invention may be configured as any type of tire as long as the nominal rim diameter of the applicable rim is 20 inches or more. Herein, in this specification, the "nominal rim diameter of the applicable rim" (hereinafter simply referred to as "nominal rim diameter") refers to the inner diameter of the tire, and therefore the rim diameter of the aforementioned applicable rim. More specifically, it refers to the rim diameter (in inches) of the applicable rim, which is generally indicated on the tire sidewall. For example, if the tire size is "29.5R25," the nominal rim diameter is "25 inches." If the tire size is "18.00R33," the nominal rim diameter is "33 inches." If the tire size is "46 / 90R57," the nominal rim diameter is "57 inches." If the tire size is "59 / 80R63," the nominal rim diameter is "63 inches."

[0020] As shown in FIG. 1, a tire 10 according to this embodiment has a bead portion 1, a sidewall portion 2, and a tread portion 3. The bead portions 1 are portions configured to contact the rim on the tire radially inner side and the tire widthwise outer side when the tire 10 is mounted on the rim. The tread portion 3 is a portion of the tire 10 in the tire width direction between a pair of tread ends. The sidewall portion 2 is a portion between a pair of bead portions 1 and the tread portion 3. In this specification, the sidewall portions 2 and the bead portions 1 may be collectively referred to as tire side portions 8. The sidewall portions 2 refer to at least a portion that is radially inner than a belt 7 described below and radially outer than the bead portions 1.

[0021] More specifically, the tire 10 of this embodiment includes a pair of bead portions 1 each having a bead core 11, a carcass 4 consisting of at least one carcass ply 41 extending between the pair of bead portions 1 via a pair of sidewall portions 2 and a tread portion 3, a bead filler 5 arranged adjacent to the tire radial outer side of the bead core 11, and an electronic device 6 attached to the sidewall portion 2 on the tire outer surface 10o side of the carcass 4.

[0022] In this embodiment, the tire 10 has a pair of bead portions 1. Each of the pair of bead portions 1 has a bead core 11. Each bead core 11 is embedded in the corresponding bead portion 1. The bead core 11 may include a plurality of bead wires coated with rubber. However, the bead core 11 may consist of a single bead wire. The bead wire is preferably made of metal (e.g., steel). The bead wire may be made of, for example, a monofilament or a twisted wire. The bead wire may also be made of organic fiber, carbon fiber, or the like. In this example, as shown in FIG. 1, the cross-sectional shape of the bead core 11 in the tire width direction is a regular hexagon, but the cross-sectional shape of the bead core 11 may be other shapes, for example, a polygonal shape other than a regular hexagon, a circle, etc.

[0023] In this embodiment, the tire 10 has a carcass 4 made up of at least one carcass ply 41. The at least one carcass ply 41, and therefore the carcass 4, extends between a pair of bead portions 1 via a pair of sidewall portions 2 and a tread portion 3. More specifically, the carcass ply 41, and therefore the carcass 4, extends in a toroidal shape from one bead portion 1 to the other bead portion 1 via one sidewall portion 2, the tread portion 3, and the other sidewall portion 2. 1, the carcass ply 41 (and thus the carcass 4) includes a ply main body portion 41a (and thus the carcass main body portion 4a) located between the bead cores 11 of a pair of bead portions 1, and ply turn-up portions 41b (and thus the carcass turn-up portions 4b) that are turned up from both ends of the ply main body portion 41a (carcass main body portion 4a) around each bead core 11 from the inner side toward the outer side in the tire width direction. However, the carcass ply 41 (carcass 4) does not necessarily have to include the ply turn-up portions 41b (carcass turn-up portions 4b). 1, the carcass 4 is made up of one carcass ply 41. However, the carcass 4 may be made up of a plurality of carcass plies 41.

[0024] Each carcass ply 41 includes one or more carcass cords and a covering rubber covering the carcass cords. The carcass cords may be formed of, for example, a monofilament or a twisted wire. In this embodiment, the carcass cords of the carcass ply 41 are made of steel. More specifically, each of the multiple carcass cords included in each carcass ply 41 is made of steel. Because the carcass cords are made of steel, sufficient strength can be obtained even when the carcass of a large-sized tire has a simple radial structure. In this embodiment, the carcass 4 has a radial structure. That is, each carcass cord included in the carcass ply 41 of the carcass 4 extends substantially along the tire width direction (that is, when viewed from the outside in the tire radial direction of the tread portion 3, it does not incline at an angle of substantially 0° with respect to the tire width direction). However, the carcass cord may be made of organic fibers such as polyester, nylon, rayon, aramid, etc. The carcass 4 may have a bias structure.

[0025] In this embodiment, the tire 10 has a bead filler 5. As shown in FIG. 1, the bead filler 5 is disposed adjacent to the bead core 11 on the outer side in the tire radial direction. In other words, as shown in FIGS. 1, 3, and 4, the bead filler 5 is in contact with the outer portion in the tire radial direction of each corresponding bead core 11, and extends at least from the upper end 11a of each bead core 11 outward in the tire radial direction to the upper end 5a of the bead filler 5. In each of the examples shown in FIGS. 1, 3, and 4, the bead filler 5 extends in a tapered manner toward the outer side in the tire radial direction. The bead filler 5 is made of, for example, hard rubber. As in the example of Figure 1, there are cases where a plurality of (e.g., two) rubber members made of different materials, for example, with different hardnesses, are stacked along the tire radial direction on the tire radial outer side of the bead core 11, particularly on the tire radial outer side of the bead core 11, for example, between the carcass main body portion 4a and the carcass folded-up portion 4b. However, in this specification, "bead filler" refers to only one rubber member that is arranged adjacent to (i.e., in contact with) the bead core 11 on the tire radial outer side.

[0026] In this embodiment, the tire 10 includes an electronic device 6 . In this specification, the term "electronic device" refers to a device that includes electronic components and has, for example, a function for communicating with the outside world.

[0027] FIG. 2 is a plan view that schematically illustrates an example of an electronic device that can be used in a tire according to an embodiment of the present invention. 2, the electronic device 6 is an RF tag having an IC chip 6a with a memory unit etc. and one or more antennas 6b (two in the illustrated example) for transmitting and / or receiving electromagnetic waves. RF tags are also generally called RFID (Radio Frequency Identification) tags. In this example, the antenna 6b is connected to the IC chip 6a and extends in a linear, wavy, or spiral shape (spiral shape in the illustrated example). In this example, the two antennas 6b extend in opposite directions from the IC chip 6a. However, the antenna 6b may extend from only one side of the IC chip 6a. Furthermore, in this example, the two antennas 6b have the same length in the long side direction LD of the IC chip 6a, which will be described later. However, the two antennas may have different lengths in the long side direction LD of the IC chip 6a. In this example, the IC chip 6a is a thin, generally rectangular plate in plan view. Here, the "thickness" of the IC chip 6a refers to the thickness in a direction perpendicular to both the LD direction parallel to the long side of the IC chip 6a in plan view (hereinafter also referred to as the "long side direction of the IC chip 6a") and the SD direction parallel to the short side of the IC chip 6a in plan view (hereinafter also referred to as the "short side direction of the IC chip 6a"). The IC chip 6a includes, for example, a storage unit such as any known memory and a control unit such as any known processor. The IC chip 6a may operate using induced electromotive force generated by electromagnetic waves received by one or more antennas 6b. That is, the electronic device 6 may be a passive communication device. Alternatively, the electronic device 6 may further include a battery and be capable of communicating by generating electromagnetic waves using its own power. That is, the electronic device 6 may be an active communication device. The control unit of the IC chip 6a can read data stored in the memory unit, such as data on tire manufacturing management, shipping management, and usage history management, or can write such data into the memory unit.

[0028] In this embodiment, as shown in FIG. 1 , the electronic device 6 (e.g., an RF tag) is attached to the sidewall portion 2 closer to the tire outer surface 10o than the carcass 4. Here, in this specification, the "tire outer surface" refers to the surface of the tire facing the outside of the tire, not the tire cavity. Furthermore, "the sidewall portion 2 closer to the tire outer surface 10o than the carcass 4" refers to the sidewall portion 2 closer to the tire outer surface 10o than both the carcass main body 4a and the carcass folded-up portion 4b, for example, as in the example shown in FIG. 1 . As long as the electronic device 6 is attached to the sidewall portion 2 closer to the tire outer surface 10o than the carcass 4, it may be embedded in the sidewall portion 2 or attached on the tire outer surface 10o of the sidewall portion 2. In the example shown in FIG. 1 , the electronic device 6 is embedded in the sidewall portion 2. The electronic device 6 may be attached to the tire outer surface 10o side in the form of the electronic device 6 itself including an IC chip 6a and an antenna 6b as shown in Fig. 2, or may be attached as an electronic device laminate 61 in which both sides in the thickness direction of the IC chip 6a of the electronic device 6 are covered with thin-plate-shaped covering rubber, or may be attached as an electronic device laminate 61 in which one side (lower side) in the thickness direction of the IC chip 6a of the electronic device 6 is covered with a thin-plate-shaped covering rubber and the other side (upper side) is covered with a slightly thick patch rubber. The electronic device 6 or the electronic device laminate 61 incorporating the electronic device 6 may be attached to the tire outer surface 10o of the vulcanized tire 10 with adhesive cement or the like, or may be embedded in a depression formed in the tire outer surface 10o of the vulcanized tire 10 with an adhesive or the like, or may be attached to the tire 10 before vulcanization (green tire) and embedded in the tire outer surface 10o side by vulcanization adhesion simultaneously with vulcanization of the tire 10. Note that, in FIG. 1, the electronic device laminate 61 incorporating the electronic device 6 is depicted in a simplified manner, but in this embodiment, the electronic device 6 is attached to the tire outer surface 10o side so that the upper and lower surfaces (front and back surfaces) of the thin plate-shaped IC chip 6a are aligned along the tire outer surface 10o (i.e., so that the two are approximately parallel).

[0029] In the example of FIG. 1, the tire 10 further includes a belt 7 in the tread portion 3, which is made up of at least one belt layer (six layers in the illustrated example). The belt 7 is arranged on the radially outer side of the crown portion of the carcass 4. Each belt layer includes one or more belt cords and a coating rubber that covers the belt cords. The belt cords can be formed of, for example, a monofilament or a twisted wire. The belt cords may be made of a metal (for example, steel) or an organic fiber such as polyester, nylon, rayon, or aramid. In the illustrated example, tread rubber forming a tread surface 3a is provided on the tire radially outer side of the belt 7 in the tread portion 3. A tread pattern is formed on the tread surface 3a. The tread pattern is not particularly limited. Furthermore, in the illustrated example, a side rubber that forms a tire outer surface 10o of the tire side portion 8 is provided on the outer side of the carcass 4 in the tire width direction in the tire side portion 8. Also, in the illustrated example, in order to improve the appearance of the tire 10, improve cut resistance, protect the carcass 4, etc., the sidewall portion 2 is formed with a protrusion 21, generally also referred to as a decor line, that protrudes outward from the tire 10 on a plane and extends annularly in the tire circumferential direction at a tire radial position including the maximum width position of the tire 10. In addition, the tire 10 of this embodiment has an inner surface 10i of the tire formed of an inner liner (not shown) with low air and / or gas permeability.

[0030] In this embodiment, the tire 10 is adapted for a rim with a nominal rim diameter of 20 inches or more. That is, the tire 10 of this embodiment is a large-sized tire. In addition, when the nominal rim diameter of the tire 10 is 20 inches or more, from the viewpoint of ensuring sufficient strength in the vicinity of the bead portion 1, the maximum width of the bead filler region (hereinafter also referred to as the "bead filler region") where the bead filler 5 exists (hereinafter also referred to as the "bead filler region maximum width"), excluding the electronic device 6, is preferably 30 mm or more. Herein, in this specification, the "bead filler region" more specifically refers to the region from the tire inner surface 10i to the tire outer surface 10o where the bead filler 5 exists when viewed in a direction perpendicular to the tire inner surface 10i on a tire widthwise cross section, and the "bead filler region maximum width" more specifically refers to the maximum width when the width of the bead filler region is measured in a direction perpendicular to the tire inner surface 10i on a tire widthwise cross section.

[0031] Hereinafter, the specific arrangement position etc. of the electronic device 6 attached to the tire outer surface 10o side in this embodiment will be described. Even for large tires with a nominal rim diameter of 20 inches or more, the internal dimensions of the tire 10, particularly the bead filler height BH (described later), vary greatly depending on the size. Therefore, the following description will be divided into two cases regarding the size (nominal rim diameter).

[0032] <When the rim diameter is 20 to 57 inches> FIG. 3 is a schematic partial cross-sectional view in the tire width direction for explaining the position of an electronic device 6 (see FIG. 1) in a tire 10A according to an embodiment of the present invention. More specifically, FIG. 3 is a schematic cross-sectional view from the sidewall portion to the bead portion of a tire 10A having a nominal rim diameter of 20 to 57 inches (hereinafter also referred to as a "first size tire"). For ease of explanation, the shape of the bead filler 5 is depicted in a simplified form, and the carcass 4 (see FIG. 1) is not depicted. Note that the configuration of the first size tire 10A, other than its size (nominal rim diameter), is basically the same as that of the tire 10 of the embodiment described above. In other words, the first size tire 10A is a type of tire 10 of the embodiment described above. Therefore, the following description will also use the symbols used in FIGS. 1 and 2 as appropriate.

[0033] In the first size tire 10A, that is, when the nominal rim diameter of the tire 10 is 20 to 57 inches, the maximum width of the bead filler region is preferably 30 mm or more from the viewpoint of ensuring sufficient strength near the bead portion 1, and is preferably 80 mm or less from the viewpoint of suppressing an increase in the weight of the tire, etc. Examples of nominal rim diameters of applicable rims for the first size tire 10A include 25 inches, 29 inches, 33 inches, 35 inches, 49 inches, 51 inches, and 57 inches.

[0034] In this embodiment, when the tire 10 is a first size tire 10A (i.e., when the nominal rim diameter of the applicable rim of the tire 10 is 20 to 57 inches), the electronic device 6 (see FIG. 1) is arranged at a position where the tire radial distance from the upper end 11a of the bead core 11 is 105 to 200% of the tire radial height BH of the bead filler 5 from the upper end 11a of the bead core 11 (hereinafter simply referred to as the "bead filler height") (in other words, within the tire radial region A1 shown in FIG. 3). Here, "a position where the tire radial distance from the upper end 11a of the bead core 11 is 105 to 200% of the tire radial height BH of the bead filler 5 from the upper end 11a of the bead core 11" more specifically refers to a tire radial position between a tire radial position where the tire radial distance from the upper end 11a of the bead core 11 is 105% of the bead filler height BH and a tire radial position that is radially outward of the tire radial position and where the tire radial distance from the upper end 11a of the bead core 11 is 200% of the bead filler height BH. In this specification, unless otherwise specified, when the electronic device 6 is "placed at (a certain) position," it means that at least the longitudinal center of the electronic device 6 including the antenna 6b is placed at that position.

[0035] <When the nominal rim diameter is greater than 57 inches> FIG. 4 is a schematic partial cross-sectional view in the tire width direction for explaining the arrangement position of an electronic device 6 (see FIG. 1) in a tire 10B of another example according to an embodiment of the present invention. More specifically, FIG. 4 is a schematic cross-sectional view from the sidewall portion to the bead portion of a tire 10B having a nominal rim diameter of greater than 57 inches (hereinafter also referred to as a "second size tire"). For ease of explanation, the shape of the bead filler 5 is depicted in a simplified form, and the carcass 4 (see FIG. 1) is not depicted. Note that, like the first size tire 10A described above, the configuration of the second size tire 10B other than its size (nominal rim diameter) is basically the same as that of the tire 10 of the embodiment described above. In other words, the second size tire 10B is also a type of tire 10 of the embodiment described above. Therefore, the following description will also use the symbols used in FIGS. 1 and 2 as appropriate.

[0036] In the second size tire 10B, i.e., when the nominal rim diameter of the tire 10 is greater than 57 inches, the maximum width of the bead filler region is preferably greater than 80 mm from the viewpoint of ensuring sufficient strength near the bead portion 1, and is preferably 140 mm or less from the viewpoint of suppressing weight increase. An example of the nominal rim diameter of the applicable rim for the second size tire 10B is 63 inches.

[0037] In this embodiment, when the tire 10 is a second size tire 10B (i.e., when the nominal rim diameter of the applicable rim of the tire 10 is greater than 57 inches), the electronic device 6 (see FIG. 1) is positioned at a position where the tire radial distance from the upper end 11a of the bead core 11 is 105 to 330% of the tire radial height BH of the bead filler 5 from the upper end 11a of the bead core 11 (in other words, within the tire radial region A1 shown in FIG. 4).

[0038] Next, the effects of the above-described embodiment will be described. First, in this embodiment, the electronic device 6 is attached closer to the tire outer surface 10o than the carcass 4 of the sidewall portion 2. This ensures sufficient communication between the electronic device 6 and the outside of the tire 10, compared to when the electronic device 6 is attached closer to the tire inner surface 10i than the carcass 4 of the sidewall portion 2, for example, on the tire inner surface 10i. Next, in the present embodiment, when the tire 10 is adapted for use with a rim having a nominal rim diameter of 20 inches or more and a nominal rim diameter of 20 to 57 inches (i.e., when the tire 10 is a first size tire 10A), the electronic device 6 is disposed at a position where the distance in the tire radial direction from the upper end 11a of the bead core 11 is 105 to 200% of the height BH in the tire radial direction of the bead filler 5 from the upper end 11a of the bead core 11. This can improve the durability of the electronic device 6 in the first size tire 10A. That is, it has been found that when the electronic device 6 is disposed closer to the tire outer surface 10o than the carcass 4 of the sidewall portion 2, which is the neutral axis of bending, there is a high risk of the electronic device 6 breaking down or peeling off due to tensile stress caused by bending strain in a cross section in the tire width direction. Therefore, the bending strain value at each position in the tire radial direction of the first size tire 10A was calculated by FEM simulation, and it was found that the bending strain value is sufficiently low (for example, 10% or less) at a position where the tire radial distance is 105 to 200% of the bead filler height BH. If the tire radial distance is less than 105% or more than 200% of the bead filler height BH, sufficient durability of the electronic device 6 cannot be obtained.

[0039] From the same viewpoint, it is preferable that the tire 10 has an applicable rim with a nominal rim diameter of 20 to 57 inches (i.e., the tire 10 is a first size tire 10A), and that the electronic device 6 is disposed at a position where the distance in the tire radial direction from the upper end 11a of the bead core 11 is 110 to 180% of the tire radial direction height BH of the bead filler 5 from the upper end 11a of the bead core 11. In this case, the durability of the electronic device 6 can be further improved in the first size tire 10A.

[0040] Furthermore, in this embodiment, when the nominal rim diameter of the applicable rim of the tire 10 is 20 inches or more and the nominal rim diameter of the applicable rim of the tire 10 is greater than 57 inches (i.e., when the tire 10 is a second size tire 10B), the electronic device 6 is disposed at a position where the tire radial distance from the upper end 11a of the bead core 11 is 105 to 330% of the tire radial height BH of the bead filler 5 from the upper end 11a of the bead core 11. This can improve the durability of the electronic device 6 in the second size tire 10B. That is, as in the case of the first size tire 10A described above, the values ​​of bending strain at each position in the tire radial direction of the second size tire 10B were calculated by FEM simulation, and it was found that the values ​​of bending strain were sufficiently low (for example, 10% or less) at positions where the tire radial distance was 105 to 330% of the bead filler height BH. If the distance in the tire radial direction is smaller than 105% of the bead filler height BH or larger than 330%, the electronic device 6 will not have sufficient durability.

[0041] From the same viewpoint, it is also preferable that the tire 10 has an applicable rim with a nominal rim diameter greater than 57 inches (i.e., the tire 10 is a second size tire 10B), and the electronic device 6 is disposed at a position where the distance in the tire radial direction from the upper end 11a of the bead core 11 is 150 to 280% of the tire radial direction height BH of the bead filler 5 from the upper end 11a of the bead core 11. In this case, the durability of the electronic device 6 can be further improved in the second size tire 10B.

[0042] As described above, according to the tire 10 of this embodiment, it is possible to improve the durability of the electronic device 6 attached to the tire outer surface 10o side of the sidewall portion 2 of the tire 10 having a large size.

[0043] Preferred configurations and modifications of the tire 10 of this embodiment will be further described below.

[0044] In this embodiment, it is preferable that the electronic device 6 is disposed at a position 0.5 to 5.0 mm deep from the outer surface of the sidewall portion 2. In this case, the electronic device 6 is less likely to be damaged when the tire is running, and the durability of the electronic device 6 can be further improved. In addition, when the electronic device 6 is, for example, an RF tag as shown in Figure 2, the upper and lower surfaces (front and back surfaces) of the thin plate-shaped IC chip 6a may be attached to the tire outer surface 10o so that they are aligned with the tire outer surface 10o (i.e., so that the two are approximately parallel), and the center of the thickness of the IC chip 6a may be positioned at the above-mentioned depth position.

[0045] In this embodiment, it is preferable that the electronic device 6 is disposed at a tire circumferential position that overlaps with the tire serial marking position when viewed in the tire axial direction. In particular, in the case of a large tire, it is difficult for an operator to quickly determine the tire circumferential position where the electronic device 6 is attached, and it is preferable to indicate this position in advance by some means. However, according to the above configuration, by utilizing the serial marking indicating the tire manufacturing number, etc., which is usually marked on the tire side portion 8, it is possible to easily determine the position of the electronic device 6 with a simple configuration without using any other special means. The above phrase "the electronic device 6 is disposed at a tire circumferential position that overlaps with the tire serial display position when viewed in the tire axial direction" means that at least a portion of the electronic device 6 needs to overlap with the position, and the electronic device 6 may be disposed at a position that overlaps only in the tire circumferential direction without overlapping with the tire serial display position in the tire radial direction, but it is more preferable that the electronic device 6 be disposed at a position that overlaps both in the tire circumferential direction and the tire radial direction. In the above case, the electronic device 6 can be attached by being embedded in a tire circumferential position that overlaps with the tire serial display position.

[0046] In this embodiment, when the electronic device 6 is an RF tag having an antenna 6b as shown in Fig. 2, the electronic device 6 may be attached to the tire 10 so that the antenna 6b extends in a direction intersecting (preferably perpendicular to) the extending direction of the carcass cords included in the carcass ply 41 when viewed in the tire axial direction. If the carcass 4 has a radial structure, in this case, the entire longitudinal direction of the electronic device 6 is prevented from being significantly bent due to the influence of bending strain of the sidewall portion 2, and the durability of the electronic device 6 can be further improved.

[0047] From the viewpoint of resistance to external damage, in this embodiment, it is preferable that the electronic device 6 is positioned radially inward of the tire's maximum width position in the tire radial direction (more specifically, the tire's radially innermost position among the tire's maximum width positions in the tire radial direction (even more specifically, for example, in Figures 3 and 4, the tire's radially inner end of the plane of the planar protrusion 21)).

[0048] In this embodiment, a plurality of electronic devices 6 having the same arrangement and configuration as the electronic device 6 in each of the above-described examples may be attached, for example, to the tire outer surface 10o side at mutually different positions around the tire. Also, in this embodiment, a total of a plurality of electronic devices may be attached, for example, to the tire outer surface 10o side at mutually different positions around the tire, including at least one electronic device 6 having the same arrangement and configuration as the electronic device 6 in each of the above-described examples and at least one electronic device having a different arrangement or configuration from the electronic device 6 in each of the above-described examples. In these cases, it is preferable that one or more of the plurality of electronic devices are arranged in one half of the tire width direction bounded by the tire equatorial plane CL, and one or more of the electronic devices are arranged in the other half of the tire width direction bounded by the tire equatorial plane CL, and that these plurality of electronic devices are arranged so as to be separated from each other by 45° or more in the tire circumferential direction when viewed in the tire axial direction, with the tire rotation axis (axis) as the center. In this case, even if at least one of the plurality of electronic devices fails or peels off, there is a higher possibility that the other electronic devices will continue to function, which in turn makes it possible to prevent, for example, the electronic devices from being unable to read or write information on the tire 10.

[0049] In the above case, it is preferable that the plurality of electronic devices are arranged at equal intervals in the tire circumferential direction. This arrangement can smooth out the effects of events that could cause failure or detachment while the tire is running, and more reliably ensure that any of the electronic devices remains functional. Note that "arranged at equal intervals in the tire circumferential direction" may mean that the electronic devices are arranged at equal intervals in either or both tire widthwise halves, regardless of which tire widthwise halves the electronic devices are located in, or may mean that the electronic devices are arranged at equal intervals when both tire widthwise halves are viewed together in the tire axial direction.

[0050] Furthermore, in the above case, it is preferable that the electronic devices arranged in one half of the tire width direction and the electronic devices arranged in the other half are arranged alternately in the tire circumferential direction, because in the event of an event that may cause a failure or the like occurring in one electronic device, the other electronic device adjacent in the tire circumferential direction will be located in a different half of the tire width direction from the one electronic device, thereby minimizing the influence of the event that may cause a failure or the like on the other electronic device.

[0051] In the above case, it is preferable that the number of electronic devices arranged in one half of the tire width direction is the same as the number of electronic devices arranged in the other half of the tire width direction, which can further smooth out the effects of events that could cause a failure.

[0052] The foregoing describes exemplary embodiments of the present invention, and various modifications can be made without departing from the scope of the claims. For example, in the tire 10 of the above-described embodiment, in addition to the electronic device 6 of the above-described arrangement and configuration attached to the tire outer surface 10o side, at least one electronic device of a similar or different configuration to the electronic device 6 may be attached to a location other than the tire outer surface 10o side. [Industrial Applicability]

[0053] The tire according to the present invention can be suitably used, for example, as an OR tire (tire for construction and mining vehicles). [Explanation of symbols]

[0054] 1: bead portion; 11: bead core; 11a: upper end of bead core; 2: Sidewall portion, 21: Protrusion portion, 3: tread portion, 3a: tread surface, 4: carcass; 4a: carcass main body; 4b: carcass folded-up portion; 41: carcass ply; 41a: ply body; 41b: ply folded portion; 5: Bead filler, 5a: Upper end of bead filler, 6: Electronic device, 6a: IC chip, 6b: Antenna, 61: Electronic device laminate, 7: Belt, 8: Tire side part, 10: Tire, 10A: Tire (first size tire), 10B: Tire (second size tire), 10i: Tire inner surface, 10o: Tire outer surface, A1, A2: tire radial area, BH: bead filler height, CD: tire circumferential direction, CL: tire equatorial plane, LD: long side direction, RD: tire radial direction, SD: short side direction, WD: Tire width direction

Claims

1. A tire comprising: a pair of bead portions each having a bead core; a carcass consisting of at least one carcass ply extending between the pair of bead portions via a pair of sidewall portions and a tread portion; a bead filler disposed adjacent to the bead core on the outer side in the tire radial direction; and an electronic device attached to the sidewall portion closer to the tire outer surface than the carcass, The tire has an applicable rim with a nominal rim diameter of 20 inches or more, when a nominal rim diameter of an applicable rim of the tire is 20 to 57 inches, the electronic device is disposed at a position where a distance in the tire radial direction from an upper end of the bead core is 105 to 200% of a height in the tire radial direction of the bead filler from the upper end of the bead core, When the nominal rim diameter of an applicable rim of the tire is greater than 57 inches, the electronic device is disposed at a position where the distance in the tire radial direction from the upper end of the bead core is 105 to 330% of the height in the tire radial direction of the bead filler from the upper end of the bead core.

2. The tire has an applicable rim with a nominal rim diameter of 20 to 57 inches, 2. The tire according to claim 1, wherein the electronic device is arranged at a position where a distance in the tire radial direction from an upper end of the bead core is 110 to 180% of a height in the tire radial direction of the bead filler from the upper end of the bead core.

3. The tire has an applicable rim with a nominal rim diameter of greater than 57 inches, 2. The tire according to claim 1, wherein the electronic device is arranged at a position where a distance in the tire radial direction from an upper end of the bead core is 150 to 280% of a height in the tire radial direction of the bead filler from the upper end of the bead core.

4. The tire according to any one of claims 1 to 3, wherein the electronic device is arranged at a position whose depth from the outer surface of the sidewall portion is 0.5 to 5.0 mm.

5. The tire according to any one of claims 1 to 3, wherein the electronic device is disposed at a tire circumferential position overlapping with a tire serial display position when viewed in the tire axial direction.

Citation Information

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