tire
The tire design addresses the challenge of balancing load capacity and fuel efficiency by optimizing structural parameters, resulting in improved performance and efficiency for small-diameter tires.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-09-17
- Publication Date
- 2026-03-18
AI Technical Summary
Existing small-diameter tires face challenges in achieving both high load capacity and fuel consumption efficiency, particularly in vehicles with lowered floor surfaces.
A tire design with specific dimensions and structural components, including a carcass layer, belt layer, and tread portion, characterized by a tire outer diameter range, total tire width, groove area ratio, and tire side portion gauge, optimized for improved bump-crossing performance and fuel efficiency.
The tire design achieves both excellent bump-crossing performance and fuel efficiency by adhering to specific structural parameters, enhancing load capacity and reducing rolling resistance.
Smart Images

Figure 0007832438000021 
Figure 0007832438000022 
Figure 0007832438000023
Abstract
Description
Technical Field
[0001] The present invention relates to a tire, and more particularly to a small-diameter tire capable of achieving both step-over performance and fuel consumption performance.
Background Art
[0002] In recent years, small-diameter tires have been developed for vehicles with a lowered floor surface to expand the interior space. In such small-diameter tires, since the rotational inertia is small and the tire weight is also small, a reduction in transportation cost is expected. On the other hand, a high load capacity is required for small-diameter tires. As a conventional tire related to such problems, the technique described in Patent Document 1 is known.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] An object of the present invention is to provide a small-diameter tire capable of achieving both step-over performance and fuel consumption performance.
Means for Solving the Problems
[0005] In order to achieve the above object, a tire according to the present invention is a tire including a pair of bead cores, a carcass layer bridged over the bead cores, a belt layer disposed on the radially outer side of the carcass layer, and a tread portion, wherein the tire outer diameter OD [mm] is 250 ≦OD≦ 580The tire is characterized in that the total tire width SW [mm] is in the range of 100 ≤ SW ≤ 400, the groove area ratio Aa [%] of the entire tread area is in the range of 25 + 100 × (25.4 / OD) ≤ Aa ≤ 50 + 100 × (25.4 / OD), and the total gauge Gu [mm] of the tire side portion at point Au on the side profile, which is at the same position in the tire radial direction relative to the end of the innermost layer of the belt layer, is in the range of 0.010 ≤ Gu / OD ≤ 0.080 with respect to the tire outer diameter OD [mm]. [Effects of the Invention]
[0006] The tire according to this invention has the advantage of achieving both excellent bump-crossing performance and fuel efficiency. Specifically, the bump-crossing performance and fuel efficiency of the tire are ensured by the groove area ratio Aa[%] of the tread portion being within the above range. [Brief explanation of the drawing]
[0007] [Figure 1] Figure 1 is a cross-sectional view of a tire in the meridian direction, showing a tire according to an embodiment of this invention. [Figure 2] Figure 2 is a magnified view of the tire shown in Figure 1. [Figure 3] Figure 3 is an explanatory diagram showing the laminated structure of the tire belt layer described in Figure 1. [Figure 4] Figure 4 is an enlarged view showing the tire tread section described in Figure 1. [Figure 5] Figure 5 is an enlarged view showing one side of the tread area described in Figure 4. [Figure 6] Figure 6 is an enlarged view showing the sidewall and bead portions of the tire described in Figure 1. [Figure 7] Figure 7 is an enlarged view of the sidewall section shown in Figure 6. [Figure 8] Figure 8 shows an example of the tread surface of the tread section. [Figure 9] Figure 9 is a diagram showing the results of a performance test of a tire according to an embodiment of this invention. [Figure 10] Figure 10 is a diagram showing the results of a performance test of a tire according to an embodiment of this invention. [Figure 11] Figure 11 is a diagram showing the results of a performance test of a tire according to an embodiment of this invention. [Figure 12] Figure 12 is a diagram showing the results of a performance test of a tire according to an embodiment of this invention. [Modes for carrying out the invention]
[0008] The present invention will be described in detail below with reference to the drawings. However, this embodiment does not limit the present invention. Furthermore, the components of this embodiment include those that are substituted and obvious for substitution while maintaining the identity of the invention. In addition, the various modifications described in this embodiment can be arbitrarily combined within the scope of what is obvious to those skilled in the art.
[0009] [tire] Figure 1 is a cross-sectional view of a tire 1 according to an embodiment of this invention, taken in the meridian direction of the tire. The figure shows a cross-sectional view of one side region in the radial direction of the tire 1 mounted on a rim 10. In this embodiment, a pneumatic radial tire for passenger cars will be described as an example of a tire.
[0010] In the figure, the tire meridian cross-section is defined as the cross-section obtained when the tire is cut by a plane containing the tire rotation axis (not shown). The tire equatorial plane CL is defined as a plane that passes through the midpoint of the tire cross-sectional width as defined by JATMA and is perpendicular to the tire rotation axis. The tire width direction is defined as the direction parallel to the tire rotation axis, and the tire radial direction is defined as the direction perpendicular to the tire rotation axis. Point T is the tire contact point, and point Ac is the tire's widest point.
[0011] The tire 1 has an annular structure centered on the tire rotation axis, and includes a pair of bead cores 11, 11, a pair of bead fillers 12, 12, a carcass layer 13, a belt layer 14, tread rubber 15, a pair of sidewall rubbers 16, 16, a pair of rim cushion rubbers 17, 17, and an inner liner 18 (see Fig. 1).
[0012] The pair of bead cores 11, 11 are formed by annularly and multiply winding one or more bead wires made of steel, and are embedded in the bead portions to form the cores of the left and right bead portions. The pair of bead fillers 12, 12 are respectively arranged on the outer periphery in the tire diameter direction of the pair of bead cores 11, 11 to reinforce the bead portions.
[0013] The carcass layer 13 has a single-layer structure composed of one carcass ply or a multi-layer structure formed by laminating a plurality of carcass plies, and is bridged in a toroidal shape between the left and right bead cores 11, 11 to form the skeleton of the tire. Also, both ends of the carcass layer 13 are wound back and locked to the outside in the tire width direction so as to wrap the bead core 11 and the bead filler 12. Further, the carcass ply of the carcass layer 13 is formed by coating a plurality of carcass cords made of steel or an organic fiber material (for example, aramid, nylon, polyester, rayon, etc.) with coating rubber and performing rolling processing, and has a cord angle of 80° or more and 100° or less (defined as the inclination angle of the longitudinal direction of the carcass cord with respect to the tire circumferential direction).
[0014] The belt layer 14 is formed by laminating a plurality of belt plies 141 to 144, and is wound around and arranged on the outer periphery of the carcass layer 13. In the configuration of Fig. 1, the belt plies 141 to 144 are composed of a pair of cross belts 141, 142, a belt cover 143, and a pair of belt edge covers 144, 144.
[0015] The pair of crossed belts 141 and 142 are formed by coating a plurality of belt cords made of steel or organic fiber material with a coating rubber and subjecting them to rolling processing, and have a cord angle (defined as the inclination angle of the longitudinal direction of the belt cord with respect to the tire circumferential direction) of 15° or more and 55° or less in absolute value. Further, the pair of crossed belts 141 and 142 have cord angles of opposite signs to each other, and the longitudinal directions of the belt cords cross each other and are laminated (so-called cross-ply structure). Also, the pair of crossed belts 141 and 142 are laminated and arranged on the outer side in the tire radial direction of the carcass layer 13.
[0016] The belt cover 143 and the pair of belt edge covers 144 and 144 are formed by coating a belt cover cord made of steel or organic fiber material with a coating rubber, and have a cord angle of 0° or more and 10° or less in absolute value. Also, the belt cover 143 and the belt edge cover 144 are, for example, strip materials formed by coating one or a plurality of belt cover cords with a coating rubber, and this strip material is wound around the outer peripheral surface of the crossed belts 141 and 142 a plurality of times in a spiral shape in the tire circumferential direction. Further, the belt cover 143 is arranged to cover the entire area of the crossed belts 141 and 142, and the pair of belt edge covers 144 and 144 are arranged to cover the left and right edge portions of the crossed belts 141 and 142 from the outer side in the tire radial direction.
[0017] The tread rubber 15 is arranged on the outer periphery in the tire radial direction of the carcass layer 13 and the belt layer 14 to form the tread portion of the tire 1. Also, the tread rubber 15 includes a cap tread 151 and an under tread 152.
[0018] The cap tread 151 is made of a rubber material with excellent contact characteristics and weather resistance, and is exposed to the tread surface over the entire tire contact area, forming the outer surface of the tread portion. The cap tread 151 has a rubber hardness Hs_cap of 50 to 80, a modulus M_cap [MPa] at 100% elongation of 1.0 to 4.0, and a loss tangent tanδ_cap of 0.03 to 0.36, preferably a rubber hardness Hs_cap of 58 to 76, a modulus M_cap [MPa] at 100% elongation of 1.5 to 3.2, and a loss tangent tanδ_cap of 0.06 to 0.29.
[0019] Rubber hardness Hs is measured under temperature conditions of 20°C in accordance with JIS K6253.
[0020] The modulus (breaking strength) is measured by a tensile test at a temperature of 20°C using a dumbbell-shaped test specimen, in accordance with JIS K6251 (using a No. 3 dumbbell).
[0021] The loss tangent tanδ is measured using a viscoelastic spectrometer manufactured by Toyo Seiki Seisakusho Co., Ltd. under the conditions of a temperature of 60°C, a shear strain of 10%, an amplitude of ±0.5%, and a frequency of 20Hz.
[0022] The undertread 152 is made of a rubber material with excellent heat resistance and is sandwiched between the cap tread 151 and the belt layer 14 to form the base portion of the tread rubber 15. The undertread 152 has a rubber hardness Hs_ut of 47 to 80, a modulus M_ut [MPa] of 100% elongation of 1.4 to 5.5, and a loss tangent tanδ_ut of 0.02 to 0.23, preferably a rubber hardness Hs_ut of 50 to 65, a modulus M_ut [MPa] of 100% elongation of 1.7 to 3.5, and a loss tangent tanδ_ut of 0.03 to 0.10.
[0023] Furthermore, the difference in rubber hardness Hs_cap-Hs_ut is in the range of 3 to 20, preferably in the range of 5 to 15. Also, the difference in modulus M_cap-M_ut[MPa] is in the range of 0 to 1.4, preferably in the range of 0.1 to 1.0. Furthermore, the difference in loss tangent tanδ_cap-tanδ_ut is in the range of 0 to 0.22, preferably in the range of 0.02 to 0.16.
[0024] A pair of sidewall rubbers 16, 16 are positioned on the outer side of the carcass layer 13 in the tire width direction, respectively, to form the left and right sidewall sections. In the configuration shown in Figure 1, the outer ends of the sidewall rubbers 16 in the tire radial direction are positioned in the lower layer of the tread rubber 15 and sandwiched between the end of the belt layer 14 and the carcass layer 13. However, the configuration is not limited to this; the outer ends of the sidewall rubbers 16 in the tire radial direction may also be positioned in the outer layer of the tread rubber 15 and exposed in the buttress section of the tire (not shown). In this case, a belt cushion (not shown) is sandwiched between the end of the belt layer 14 and the carcass layer 13.
[0025] Furthermore, the sidewall rubber 16 has a rubber hardness Hs_sw of 48 to 65, a modulus M_sw [MPa] of 100% elongation of 1.0 to 2.4, and a loss tangent tanδ_sw of 0.02 to 0.22, preferably a rubber hardness Hs_sw of 50 to 59, a modulus M_sw [MPa] of 100% elongation of 1.2 to 2.2, and a loss tangent tanδ_sw of 0.04 to 0.20.
[0026] The pair of rim cushion rubbers 17, 17 extend from the inside in the tire radial direction to the outside in the tire width direction of the reversal portion of the left and right bead cores 11, 11 and the carcass layer 13, forming the rim fitting surface of the bead portion. In the configuration of Figure 1, the outer end of the rim cushion rubber 17 in the tire radial direction is inserted into the lower layer of the sidewall rubber 16 and is sandwiched between the sidewall rubber 16 and the carcass layer 13.
[0027] The inner liner 18 is an air permeability-preventing layer positioned on the inner surface of the tire and covering the carcass layer 13. It suppresses oxidation of the carcass layer 13 due to exposure and prevents air from leaking out of the tire. The inner liner 18 may be composed of, for example, a rubber composition mainly composed of butyl rubber, or a thermoplastic resin or a thermoplastic elastomer composition in which an elastomer component is blended into a thermoplastic resin.
[0028] Furthermore, in Figure 1, the tire outer diameter OD [mm] is in the range of 200 ≤ OD ≤ 660, preferably in the range of 250 [mm] ≤ OD ≤ 580 [mm]. By applying such small-diameter tires, the load performance improvement effect described later can be significantly obtained. Also, the tire total width SW [mm] is in the range of 100 ≤ SW ≤ 400, preferably in the range of 105 [mm] ≤ SW ≤ 340 [mm]. With such small-diameter tires 1, for example, the floor of a small vehicle can be lowered to expand the interior space. In addition, because the rotational inertia is small and the tire weight is small, fuel efficiency is improved and transportation costs are reduced. In particular, when mounted on an in-wheel motor of a vehicle, the load on the motor is effectively reduced.
[0029] The tire outer diameter (OD) is measured when the tire is mounted on a specified rim, subjected to a specified internal pressure, and under no-load conditions.
[0030] The tire's total width SW is measured as the straight-line distance between the sidewalls (including all parts of the tire's sidewall, such as patterns and lettering) when the tire is mounted on a specified rim, subjected to specified internal pressure, and under no-load conditions.
[0031] The specified rim refers to the "applicable rim" specified by JATMA, the "Design Rim" specified by TRA, or the "Measuring Rim" specified by ETRTO. The specified internal pressure refers to the "maximum air pressure" specified by JATMA, the maximum value of "TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES" specified by TRA, or the "INFLATION PRESSURES" specified by ETRTO. The specified load refers to the "maximum load capacity" specified by JATMA, the maximum value of "TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES" specified by TRA, or the "LOAD CAPACITY" specified by ETRTO. However, in JATMA, for passenger car tires, the specified internal pressure is 180 [kPa] air pressure, and the specified load is 88 [%] of the maximum load capacity.
[0032] Furthermore, the total tire width SW [mm] is in the range of 0.23 ≤ SW / OD ≤ 0.84 relative to the tire outer diameter OD [mm], and preferably in the range of 0.25 ≤ SW / OD ≤ 0.81.
[0033] Furthermore, it is preferable that the tire outer diameter OD and the tire total width SW satisfy the following formula (1). Here, A1min = -0.0017, A2min = 0.9, A3min = 130, A1max = -0.0019, A2max = 1.4, A3max = 400, and preferably A1min = -0.0018, A2min = 0.9, A3min = 160, A1max = -0.0024, A2max = 1.6, A3max = 362.
[0034]
number
[0035] The above tire 1 is assumed to use a rim 10 having a rim diameter of 5 inches to 16 inches (i.e., 125 mm to 407 mm). Furthermore, the rim diameter RD [mm] is in the range of 0.50 ≤ RD / OD ≤ 0.74 with respect to the tire outer diameter OD [mm], preferably in the range of 0.52 ≤ RD / OD ≤ 0.71. The above lower limit ensures the rim diameter RD, and in particular, ensures the installation space for the in-wheel motor. The above upper limit ensures the tire's internal volume V, which will be described later, and ensures the tire's load capacity.
[0036] Note that the inner diameter of the tire is equal to the rim diameter RD of rim 10.
[0037] Furthermore, the above-mentioned tire 1 is intended for use at an internal pressure higher than specified, specifically between 350 kPa and 1200 kPa, preferably between 500 kPa and 1000 kPa. The lower limit effectively reduces the rolling resistance of the tire, and the upper limit ensures the safety of the internal pressure filling process.
[0038] Furthermore, the above-mentioned tire 1 is intended to be mounted on vehicles that travel at low speeds, such as small shuttle buses. The maximum speed of the vehicle is 100 km / h or less, preferably 80 km / h or less, and more preferably 60 km / h or less. The above-mentioned tire 1 is intended to be mounted on vehicles with 6 to 12 wheels. This ensures that the tire's load capacity is properly utilized.
[0039] Furthermore, the aspect ratio of the tire, that is, the ratio of the tire section height SH [mm] (see Figure 2 described later) to the tire section width [mm] (dimension symbols omitted in the figures: in Figure 1, it is the same as the total tire width SW), is in the range of 0.16 to 0.85, and preferably in the range of 0.19 to 0.82.
[0040] The tire section height SH is half the difference between the tire's outer diameter and its rim diameter, and is measured under no-load conditions with the tire mounted on a specified rim and under specified internal pressure.
[0041] The tire section width is measured as the straight-line distance between the sidewalls (excluding patterns, lettering, etc. on the tire sidewall) when the tire is mounted on a specified rim, subjected to specified internal pressure, and under no-load conditions.
[0042] Furthermore, the tire contact width TW is in the range of 0.75 ≤ TW / SW ≤ 0.95 relative to the total tire width SW, and preferably in the range of 0.80 ≤ TW / SW ≤ 0.92.
[0043] The tire contact width TW is measured as the maximum straight distance in the axial direction of the tire at the contact surface between the tire and the flat plate when the tire is mounted on a specified rim, subjected to a specified internal pressure, and placed perpendicular to a flat plate in a stationary state while a load corresponding to a specified load is applied.
[0044] Furthermore, the tire internal volume V [m^3] is within the range of 4.0 ≤ (V / OD) × 10^6 ≤ 60 relative to the tire outer diameter OD [mm], and preferably within the range of 6.0 ≤ (V / OD) × 10^6 ≤ 50. This optimizes the tire internal volume V. Specifically, the above lower limit ensures the tire internal volume and thus the tire's load capacity. In particular, for small-diameter tires, where use at high internal pressure and high loads is anticipated, it is preferable to ensure a sufficient tire internal volume V. The above upper limit suppresses the need for larger tires due to an excessively large tire internal volume V.
[0045] Furthermore, the tire internal volume V [m^3] is in the range of 0.5 ≤ V × RD ≤ 17 with respect to the rim diameter RD [mm], and preferably in the range of 1.0 ≤ V × RD ≤ 15.
[0046] [Beadcore] In Figure 1, as described above, the pair of bead cores 11, 11 are formed by winding one or more bead wires (not shown) made of steel in a ring-like and multi-layered manner. In addition, the pair of bead fillers 12, 12 are arranged on the outer circumference of the pair of bead cores 11, 11 in the radial direction of the tire.
[0047] Furthermore, the strength Tbd[N] of one bead core 11 is in the range of 45≦Tbd / OD≦120 with respect to the tire outer diameter OD[mm], preferably in the range of 50≦Tbd / OD≦110, and more preferably in the range of 60≦Tbd / OD≦105. Also, the strength Tbd[N] of the bead core is in the range of 90≦Tbd / SW≦400 with respect to the total tire width SW[mm], preferably in the range of 110≦Tbd / SW≦350. This ensures that the load capacity of the bead core 11 is properly secured. Specifically, the above lower limits suppress tire deformation when used under high load, ensuring the wear resistance of the tire. In addition, it becomes possible to use the tire at high internal pressure, and the rolling resistance of the tire is reduced. In particular, for small diameter tires, where use at high internal pressure and high load is expected, the above-mentioned wear resistance and reduction of rolling resistance of the tire are significantly obtained. The above upper limit suppresses the deterioration of rolling resistance caused by the increase in mass of the bead core.
[0048] The strength Tbd[N] of the bead core 11 is calculated as the product of the strength per bead wire [N / wire] and the total number of bead wires [wires] in the radial cross-sectional view. The strength of the bead wire is, JIS G3510 It is measured by a tensile test at a temperature of 20°C in accordance with the standard.
[0049] Furthermore, it is preferable that the strength Tbd[N] of the bead core 11 satisfies the following formula (2) with respect to the tire outer diameter OD[mm], distance SWD[mm], and rim diameter RD[mm]. Here, B1min=0.26, B2min=10.0, B1max=2.5, B2max=99.0, preferably B1min=0.35, B2min=14.0, B1max=2.5, B2max=99.0, more preferably B1min=0.44, B2min=17.6, B1max=2.5, B2max=99.0, and even more preferably B1min=0.49, B2min=17.9, B1max=2.5, B2max=99.0. Furthermore, it is preferable that B1min=0.0016×P and B2min=0.07×P using the specified internal pressure P[kPa] of the tire.
[0050]
number
[0051] Distance SWD is twice the radial distance from the tire rotation axis (not shown) to the tire's maximum width position Ac, i.e., the diameter of the tire at the maximum width position Ac. It is measured with the tire mounted on a specified rim, with a specified internal pressure applied, and under no-load conditions.
[0052] The tire's maximum width position, Ac, is defined as the position of the maximum width of the tire section as specified by JATMA.
[0053] Furthermore, in a radial cross-sectional view of one bead core 11, the total cross-sectional area σbd [mm^2] of the bead wire made of the steel described above is in the range of 0.025 ≤ σbd / OD ≤ 0.075 with respect to the tire outer diameter OD [mm], preferably in the range of 0.030 ≤ σbd / OD ≤ 0.065. Also, the total cross-sectional area σbd [mm^2] of the bead wire is in the range of 11 ≤ σbd ≤ 36, preferably in the range of 13 ≤ σbd ≤ 33. This achieves the strong Tbd [N] of the bead core 11 described above.
[0054] The total cross-sectional area σbd [mm^2] of the bead wire is calculated as the sum of the cross-sectional areas of the bead wire in a radial cross-sectional view of one bead core 11.
[0055] For example, in the configuration shown in Figure 1, the bead core 11 has a square shape formed by arranging bead wires (not shown) having a circular cross-section in a grid pattern. However, it is not limited to this, and the bead core 11 may also have a hexagon shape formed by arranging bead wires having a circular cross-section in a close-packed structure (not shown). In addition, any bead wire arrangement structure can be adopted within the scope of what is obvious to those skilled in the art.
[0056] Furthermore, it is preferable that the total cross-sectional area σbd [mm^2] of the bead wire satisfies the following formula (3) with respect to the tire outer diameter OD [mm], distance SWD [mm], and rim diameter RD [mm]. Here, Cmin = 30 and Cmax = 8, preferably Cmin = 25 and Cmax = 10.
[0057]
number
[0058] Furthermore, the total cross-sectional area σbd [mm^2] of the bead wire is in the range of 0.50 ≤ σbd / Nbd ≤ 1.40, and preferably in the range of 0.60 ≤ σbd / Nbd ≤ 1.20, with respect to the total number of cross-sections (i.e., total number of turns) Nbd [wires] of the bead wire in a radial cross-sectional view. That is, the cross-sectional area σbd' [mm^2] of a single bead wire is in the range of 0.50 [mm^2 / wire] or more and 1.40 [mm^2 / wire] or less, and preferably in the range of 0.60 [mm^2 / wire] or more and 1.20 [mm^2 / wire] or less.
[0059] Furthermore, the maximum width Wbd [mm] of one bead core 11 in a radial cross-sectional view (see Figure 2 described later) is in the range of 0.16 ≤ Wbd / σbd ≤ 0.50 with respect to the total cross-sectional area σbd [mm^2] of the bead wire, preferably in the range of 0.20 ≤ Wbd / σbd ≤ 0.40.
[0060] Furthermore, in Figure 1, the distance Dbd [mm] between the centers of gravity of the pair of bead cores 11, 11 is in the range of 0.63 ≤ Dbd / SW ≤ 0.97 with respect to the total tire width SW [mm], preferably in the range of 0.65 ≤ Dbd / SW ≤ 0.95. The lower limit reduces the amount of tire deflection, thereby reducing the rolling resistance of the tire. The upper limit reduces the stress acting on the tire sidewall, thereby suppressing tire failure.
[0061] [Carcass layer] Figure 2 is an enlarged view of tire 1 as shown in Figure 1. This figure shows one side of the tire, with the tire equatorial plane CL as the boundary.
[0062] In the configuration shown in Figure 1, as described above, the carcass layer 13 consists of a single carcass ply and is arranged in a toroidal manner between the left and right bead cores 11, 11. In addition, both ends of the carcass layer 13 are wrapped back outward in the tire width direction and secured to enclose the bead core 11 and the bead filler 12.
[0063] Furthermore, the strength Tcs [N / 50mm] per 50 [mm] width of the carcass ply constituting the carcass layer 13 is in the range of 17 ≤ Tcs / OD ≤ 120 with respect to the tire outer diameter OD [mm], preferably in the range of 20 ≤ Tcs / OD ≤ 120. Also, the strength Tcs [N / 50mm] of the carcass layer 13 is in the range of 30 ≤ Tcs / SW ≤ 260 with respect to the total tire width SW [mm], preferably in the range of 35 ≤ Tcs / SW ≤ 220. This ensures that the load capacity of the carcass layer 13 is properly secured. Specifically, the above lower limits suppress tire deformation when used under high load, ensuring the wear resistance of the tire. In addition, it becomes possible to use the tire at high internal pressure, reducing the rolling resistance of the tire. In particular, for small diameter tires, where use at high internal pressure and high load is expected, the above-mentioned wear resistance and reduction of rolling resistance of the tire are significantly obtained. The above upper limit suppresses the deterioration of rolling resistance caused by the increase in the mass of the carcass layer.
[0064] The strength Tcs [N / 50mm] of the carcass ply is calculated as follows: Specifically, the carcass ply that spans the left and right bead cores 11, 11 and extends across the entire inner circumference of the tire is defined as the effective carcass ply. The product of the strength per carcass cord constituting the effective carcass ply [N / cord] and the number of carcass cords driven in per 50 [mm] width [cords / 50mm] on the tire's equatorial plane CL is calculated as the strength Tcs [N / 50mm] of the carcass ply. The strength of the carcass cord is: JIS L1017The strength is measured by a tensile test at a temperature of 20°C in accordance with the standard. For example, in a configuration where one carcass cord is made up of multiple strands twisted together, the strength of the twisted single carcass cord is measured and the strength Tcs of the carcass layer 13 is calculated. In a configuration where the carcass layer 13 has a multilayer structure (not shown) made up of multiple effective carcass plies stacked together, the strength Tcs described above is defined for each of the multiple effective carcass plies.
[0065] For example, in the configuration shown in Figure 1, the carcass layer 13 has a single-layer structure consisting of a single carcass ply (not shown in the figure), and the carcass ply is composed of carcass cords made of steel covered with coated rubber, arranged at a cord angle of 80 [deg] to 100 [deg] with respect to the circumferential direction of the tire (not shown). Furthermore, the above-mentioned steel carcass cords have a cord diameter φcs [mm] in the range of 0.3 ≤ φcs ≤ 1.1 and a number of cords driven in Ecs [cords / 50mm] in the range of 25 ≤ Ecs ≤ 80, thereby achieving the above-mentioned strength Tcs [N / 50mm] of the carcass layer 13. In addition, the carcass cords are made by twisting together multiple strands, and the diameter of the strands φcss [mm] is in the range of 0.12 ≤ φcss ≤ 0.24, preferably in the range of 0.14 ≤ φcss ≤ 0.22.
[0066] Furthermore, the carcass ply may be composed of a carcass cord made of organic fiber material (e.g., aramid, nylon, polyester, rayon, etc.) coated with a rubber coating. In this case, the carcass cord made of the organic fiber material has a cord diameter φcs [mm] in the range of 0.6 ≤ φcs ≤ 0.9 and a number of strands Ecs [strands / 50mm] in the range of 40 ≤ Ecs ≤ 70, thereby achieving the above-mentioned strength Tcs [N / 50mm] of the carcass layer 13. In addition, carcass cords made of high-strength organic fiber material such as nylon, aramid, or hybrids can be used within the scope of what is obvious to those skilled in the art.
[0067] Furthermore, the carcass layer 13 may have a multilayer structure consisting of multiple, for example, two layers of carcass ply (not shown). This can effectively increase the load capacity of the tire.
[0068] Furthermore, the total strength TTcs [N / 50mm] of the carcass layer 13 is in the range of 300 ≤ TTcs / OD ≤ 3500 with respect to the tire outer diameter OD [mm], preferably in the range of 400 ≤ TTcs / OD ≤ 3000. This ensures the overall load capacity of the carcass layer 13.
[0069] The total strength TTcs [N / 50mm] of the carcass layer 13 is calculated as the sum of the strength Tcs [N / 50mm] of the effective carcass plies described above. Therefore, the total strength TTcs [N / 50mm] of the carcass layer 13 increases with an increase in the strength Tcs [N / 50mm] of each carcass ply, the number of layers of carcass plies, and the circumference of the carcass plies.
[0070] Furthermore, it is preferable that the total strength TTcs [N / 50mm] of the carcass layer 13 satisfies the following formula (4) with respect to the tire outer diameter OD [mm] and distance SWD [mm]. Here, Dmin = 2.2 and Dmax = 40, preferably Dmin = 4.3 and Dmax = 40, more preferably Dmin = 6.5 and Dmax = 40, and even more preferably Dmin = 8.7 and Dmax = 40. Furthermore, it is preferable that Dmin = 0.02 × P using the specified internal pressure P [kPa] of the tire.
[0071]
number
[0072] Further, in the configuration of FIG. 1, the carcass layer 13 has a main body portion 131 extending along the inner surface of the tire and a winding-up portion 132 wound outward in the tire width direction so as to wrap the bead core 11 and extending in the tire radial direction. Also, in FIG. 2, the radial height Hcs [mm] from the measurement point of the rim diameter RD to the end of the winding-up portion 132 of the carcass layer 13 is in the range of 0.49 ≦ Hcs / SH ≦ 0.80 with respect to the tire cross-sectional height SH [mm], preferably in the range of 0.55 ≦ Hcs / SH ≦ 0.75. Thereby, the radial height Hcs of the winding-up portion 132 of the carcass layer 13 is optimized. Specifically, the lower limit ensures the load capacity of the tire side portion, and the upper limit suppresses the deterioration of the rolling resistance due to the increase in the mass of the carcass layer.
[0073] The radial height Hcs [mm] of the winding-up portion 132 of the carcass layer 13 is measured in a non-loaded state while mounting the tire on a specified rim and applying a specified internal pressure.
[0074] For example, in the configuration of FIG. 2, the outer end in the radial direction of the winding-up portion 132 of the carcass layer 13 (reference numerals in the figure are omitted) is in the region between the tire maximum width position Ac and the end of the belt layer 14 (point Au described later), and more specifically, it is in the region up to the radial position Au' which is 70[%] of the distance Hu described later from the tire maximum width position Ac. At this time, the contact height Hcs' [mm] between the main body portion 131 and the winding-up portion 132 of the carcass layer 13 is in the range of 0.07 ≦ Hcs' / SH with respect to the tire cross-sectional height SH [mm], preferably in the range of 0.15 ≦ Hcs' / SH. Thereby, the load capacity of the tire side portion is effectively increased. The upper limit of the ratio Hcs' / SH is not particularly limited, but is restricted by the relationship Hcs' < Hcs with respect to the radial height Hcs of the winding-up portion 132 of the carcass layer 13.
[0075] The contact height Hcs' of the carcass layer 13 is the extending length in the tire radial direction of the region where the main body portion 131 and the winding-up portion 132 contact each other, and is measured in a non-loaded state while mounting the tire on a specified rim and applying a specified internal pressure.
[0076] Furthermore, the carcass layer 13 may have a so-called low turn-up structure, so that the end of the winding portion 132 of the carcass layer 13 is positioned in the region between the tire's maximum width position Ac and the bead core (not shown).
[0077] [Belt layer] Figure 3 is an explanatory diagram showing the laminated structure of the belt layer of tire 1 as described in Figure 1. In this figure, the thin lines attached to each belt ply 141 to 144 schematically show the arrangement of the belt cords.
[0078] In the configuration shown in Figure 1, as described above, the belt layer 14 is made up of multiple belt plies 141 to 144 stacked together. Furthermore, as shown in Figure 3, these belt plies 141 to 144 are composed of a pair of cross belts 141 and 142, a belt cover 143 and a pair of belt edge covers 144 and 144.
[0079] In this case, the strength Tbt [N / 50mm] per 50 [mm] width of each of the pair of cross belts 141 and 142 is in the range of 25 ≤ Tbt / OD ≤ 250 with respect to the tire outer diameter OD [mm], preferably in the range of 30 ≤ Tbt / OD ≤ 230. Furthermore, the strength Tbt [N / 50mm] of the cross belts 141 and 142 is in the range of 45 ≤ Tbt / SW ≤ 500 with respect to the total tire width SW [mm], preferably in the range of 50 ≤ Tbt / SW ≤ 450. This ensures that the load capacity of each of the pair of cross belts 141 and 142 is properly secured. Specifically, the above lower limits suppress tire deformation when used under high load, ensuring the tire's wear resistance. In addition, it becomes possible to use the tire at high internal pressure, reducing the tire's rolling resistance. In particular, with small-diameter tires, where high internal pressure and high loads are expected, the aforementioned wear resistance and reduction in rolling resistance of the tire are significantly improved. The above upper limit suppresses the deterioration of rolling resistance caused by the increase in mass of the cross belt.
[0080] The strength Tbt [N / 50mm] of the belt ply is calculated as follows: Specifically, the belt ply extending over 80% of the tire contact width TW (i.e., the central part of the tire contact area) centered on the tire equatorial plane CL is defined as the effective belt ply. The product of the strength per belt cord constituting the effective belt ply [N / cord] and the number of belt cords driven in per 50mm width in the aforementioned 80% of the tire contact width TW area [cords] is calculated as the strength Tbt [N / 50mm] of the belt ply. The strength of the belt cord is, JIS L1017 The strength is measured by a tensile test at a temperature of 20°C in accordance with the standard. For example, in a configuration where a single belt cord is made up of multiple strands twisted together, the strength of the twisted single belt cord is measured and the strength Tbt of the belt ply is calculated. Also, in a configuration where the belt layer 14 is made up of multiple effective carcass plies laminated together (see Figure 1), the above-mentioned strength Tbt is defined for each of the multiple effective carcass plies. For example, in the configuration of Figure 1, a pair of cross belts 141, 142 and a belt cover 143 correspond to effective belt plies.
[0081] For example, in the configuration shown in Figure 3, a pair of cross belts 141 and 142 are constructed by arranging steel belt cords covered with coated rubber at a cord angle (dimension symbols omitted in the figure) of 15 degrees to 55 degrees relative to the circumferential direction of the tire. Furthermore, the steel belt cords have a cord diameter φbt [mm] in the range of 0.50 ≤ φbt ≤ 1.80 and a number of cords Ebt [cords / 50 mm] in the range of 15 ≤ Ebt ≤ 60, thereby achieving a strong Tbt [N / 50 mm] for the cross belts 141 and 142. In addition, the cord diameter φbt [mm] and the number of cords Ebt [cords / 50 mm] are preferably in the ranges of 0.55 ≤ φbt ≤ 1.60 and 17 ≤ Ebt ≤ 50, and more preferably in the ranges of 0.60 ≤ φbt ≤ 1.30 and 20 ≤ Ebt ≤ 40. Furthermore, the belt cord is made up of multiple strands twisted together, and the diameter of the strands φbts [mm] is in the range of 0.16 ≤ φbts ≤ 0.43, preferably in the range of 0.21 ≤ φbts ≤ 0.39.
[0082] Furthermore, the cross belts 141 and 142 may also be constructed from belt cords made of organic fiber material (e.g., aramid, nylon, polyester, rayon, etc.) coated with coated rubber. In this case, the belt cord made of the organic fiber material has a cord diameter φbt [mm] in the range of 0.50 ≤ φbt ≤ 0.90 and a number of strands Ebt [strands / 50mm] in the range of 30 ≤ Ebt ≤ 65, thereby achieving the above-mentioned strength Tbt [N / 50mm] of the cross belts 141 and 142. In addition, belt cords made of high-strength organic fiber material such as nylon, aramid, or hybrids can be used within the scope of what is obvious to those skilled in the art.
[0083] Furthermore, the belt layer 14 may have an additional belt (not shown). Such an additional belt may be, for example, (1) a third cross belt, constructed by covering a plurality of belt cords made of steel or organic fiber material with a coating rubber and rolling it, and having a cord angle of 15 [deg] to 55 [deg] in absolute value, or (2) a so-called high-angle belt, constructed by covering a plurality of belt cords made of steel or organic fiber material with a coating rubber and rolling it, and having a cord angle of 45 [deg] to 70 [deg] in absolute value, preferably 54 [deg] to 68 [deg] in absolute value. The additional belt may also be positioned (a) between a pair of cross belts 141, 142 and the carcass layer 13, (b) between a pair of cross belts 141, 142, or (c) radially outside the pair of cross belts 141, 142 (not shown). This improves the load capacity of the belt layer 14.
[0084] Furthermore, the total strength TTbt [N / 50mm] of the belt layer 14 is in the range of 70 ≤ TTbt / OD ≤ 750 with respect to the tire outer diameter OD [mm], preferably in the range of 90 ≤ TTbt / OD ≤ 690, more preferably in the range of 110 ≤ TTbt / OD ≤ 690, and even more preferably in the range of 120 ≤ TTbt / OD ≤ 690. This ensures the overall load capacity of the belt layer 14. Moreover, it is preferable that 0.16 × P ≤ TTbt / OD is met using the specified internal pressure P [kPa] of the tire.
[0085] The total strength TTbt [N / 50mm] of the belt layer 14 is calculated as the sum of the strength Tbt [N / 50mm] of the effective belt plies (a pair of cross belts 141, 142 and belt cover 143 in Figure 1). Therefore, the total strength TTbt [N / 50mm] of the belt layer 14 increases with an increase in the strength Tbt [N / 50mm] of each belt ply, the number of belt plies stacked, and so on.
[0086] Furthermore, the width Wb1 [mm] of the widest cross belt (in Figure 3, the inner diameter cross belt 141) of the pair of cross belts 141 and 142 (including the additional belt in the configuration with the additional belt described above; not shown) is in the range of 1.00 ≤ Wb1 / Wb2 ≤ 1.40 relative to the width Wb2 [mm] of the narrowest cross belt (in Figure 3, the outer diameter cross belt 142), preferably in the range of 1.10 ≤ Wb1 / Wb2 ≤ 1.35. Also, the width Wb2 [mm] of the narrowest cross belt is in the range of 0.61 ≤ Wb2 / SW ≤ 0.96 relative to the total tire width SW [mm], preferably in the range of 0.70 ≤ Wb2 / SW ≤ 0.94. The above lower limits ensure the width of the belt ply, optimize the contact pressure distribution in the tire contact area, and ensure the tire's resistance to uneven wear. The above upper limit reduces distortion at the ends of the belt ply during tire rolling, and suppresses separation of the surrounding rubber at the ends of the belt ply.
[0087] The width of the belt ply is the distance between the left and right ends of each belt ply in the tire rotation axis direction, and is measured with the tire mounted on a specified rim, with a specified internal pressure applied, and under no-load conditions.
[0088] Furthermore, the width Wb1 [mm] of the widest crossing belt (in Figure 3, the inner diameter crossing belt 141) of the pair of crossing belts 141 and 142 (including the additional belt in the configuration with the additional belt described above; not shown) is in the range of 0.85 ≤ Wb1 / TW ≤ 1.23 with respect to the tire contact width TW [mm], preferably in the range of 0.90 ≤ Wb1 / TW ≤ 1.20.
[0089] For example, in the configurations shown in Figures 1 to 3, a wide cross belt 141 is positioned in the innermost layer in the radial direction of the tire, and a narrow cross belt 142 is positioned radially outside the wide cross belt 141. A belt cover 143 is positioned radially outside the narrow cross belt 142, covering the entirety of both the pair of cross belts 141 and 142. A pair of belt edge covers 144, 144 are positioned radially outside the belt cover 143, spaced apart from each other, covering the left and right edges of the pair of cross belts 141 and 142, respectively.
[0090] [Tread profile and tread gauge] Figure 4 is an enlarged view showing the tread portion of tire 1 as described in Figure 1.
[0091] In Figure 4, the tread profile drop DA [mm] at the tire contact edge T, the tire contact width TW [mm], and the tire outer diameter OD [mm] have a relationship of 0.025 ≤ TW / (DA × OD) ≤ 0.400, preferably 0.030 ≤ TW / (DA × OD) ≤ 0.300. Furthermore, the tread profile drop DA [mm] at the tire contact edge T has a relationship of 0.008 ≤ DA / TW ≤ 0.060 with respect to the tire contact width TW [mm], preferably 0.013 ≤ DA / TW ≤ 0.050. This optimizes the drop angle of the tread shoulder region (defined as the ratio DA / (TW / 2)), ensuring the tread's load capacity is properly maintained. Specifically, the above lower limit ensures the drop angle of the tread shoulder region, suppressing a decrease in wear life caused by excessive contact pressure in the tread shoulder region. The above upper limit ensures that the tire contact area becomes flat and the contact pressure is uniform, thereby ensuring the tire's wear resistance. In particular, small-diameter tires are expected to be used under high internal pressure and high load, so the above configuration can effectively optimize the contact pressure distribution in the tire contact area.
[0092] The drop amount DA is the radial distance of the tire from the intersection point C1 of the tire's equatorial plane CL and the tread profile in a cross-sectional view along the tire's meridian direction to the tire's contact edge T. It is measured with the tire mounted on a specified rim, with a specified internal pressure applied, and under no-load conditions.
[0093] The tire profile is the contour line of the tire in a cross-sectional view along the tire meridian, and is measured using a laser profiler. For example, a tire profile measuring device (manufactured by Matsuo Co., Ltd.) is used as a laser profiler.
[0094] Furthermore, it is preferable that the amount of tread profile drop DA [mm] at the tire contact edge T satisfies the following formula (5) with respect to the tire outer diameter OD [mm] and tire total width SW [mm]. Here, Emin = 3.5 and Emax = 17, preferably Emin = 3.8 and Emax = 13, and even more preferably Emin = 4.0 and Emax = 9.
[0095]
number
[0096] Furthermore, in Figure 4, we define point C1 on the tread profile at the tire equatorial plane CL, and a pair of points C2, C2 on the tread profile at a distance of 1 / 4 of the tire contact width TW from the tire equatorial plane CL.
[0097] At this time, the radius of curvature TRc [mm] of the arc passing through point C1 and the pair of points C2 is in the range of 0.15 ≤ TRc / OD ≤ 15 with respect to the tire outer diameter OD [mm], preferably in the range of 0.18 ≤ TRc / OD ≤ 12. Furthermore, the radius of curvature TRc [mm] of the arc is in the range of 30 ≤ TRc ≤ 3000, preferably in the range of 50 ≤ TRc ≤ 2800, and even more preferably in the range of 80 ≤ TRc ≤ 2500. This ensures that the load capacity of the tread is properly secured. Specifically, the lower limit makes the center region of the tread flat, equalizing the contact pressure in the tire contact area and ensuring the wear resistance of the tire. The upper limit suppresses the reduction in wear life caused by excessive contact pressure in the shoulder region of the tread. In particular, small diameter tires are expected to be used under high internal pressure and high load, so the effect of equalizing the contact pressure under such usage conditions is effectively obtained.
[0098] The radius of curvature of the arc is measured with the tire mounted on a specified rim, under specified internal pressure, and in an unloaded state.
[0099] Furthermore, in Figure 4, the radius of curvature TRw [mm] of the arc passing through point C1 on the tire equatorial plane CL and the left and right tire contact edges T, is in the range of 0.30 ≤ TRw / OD ≤ 16 with respect to the tire outer diameter OD [mm], preferably in the range of 0.35 ≤ TRw / OD ≤ 11. Also, the radius of curvature TRw [mm] of the arc is in the range of 150 ≤ TRw ≤ 2800, preferably in the range of 200 ≤ TRw ≤ 2500. This ensures that the load capacity of the tread is properly secured. Specifically, the lower limit ensures that the entire tire contact area is flat and the contact pressure is uniform, thereby ensuring the wear resistance of the tire. The upper limit suppresses the reduction in wear life caused by excessive contact pressure in the tread shoulder area. In particular, small diameter tires are expected to be used under high internal pressure and high load, so the above configuration can effectively optimize the contact pressure distribution in the tire contact area.
[0100] Furthermore, the radius of curvature TRw [mm] of the first arc passing through points C1 and C2 is in the range of 0.50 ≤ TRw / TRc ≤ 1.00, preferably in the range of 0.60 ≤ TRw / TRc ≤ 0.95, and more preferably in the range of 0.70 ≤ TRw / TRc ≤ 0.90, relative to the radius of curvature TRw [mm] of the second arc passing through point C1 and the tire contact edge T. This optimizes the tire's contact shape. Specifically, the lower limit distributes the contact pressure in the center region of the tread, improving the tire's wear life. The upper limit suppresses the reduction in wear life caused by excessive contact pressure in the shoulder region of the tread.
[0101] Furthermore, in Figure 4, we define point B1 on the carcass layer 13 in the tire equatorial plane CL, the left and right tire contact points T, and the feet B2, B2 of the perpendiculars drawn from T to the carcass layer 13.
[0102] At this time, the radius of curvature CRw of the arc passing through point B1 and the pair of points B2, B2 is in the range of 0.35 ≤ CRw / TRw ≤ 1.10, preferably in the range of 0.40 ≤ CRw / TRw ≤ 1.00, and more preferably in the range of 0.45 ≤ CRw / TRw ≤ 0.92, with respect to the radius of curvature TRw of the arc passing through point C1 and the tire contact edges T, T. Furthermore, the radius of curvature CRw [mm] is in the range of 100 ≤ CRw ≤ 2500, preferably in the range of 120 ≤ CRw ≤ 2200. This further optimizes the tire contact shape. Specifically, the lower limit suppresses the decrease in wear life caused by the increase in rubber gauge in the tread shoulder area. The upper limit ensures the wear life in the tread center area.
[0103] Figure 5 is an enlarged view showing one side of the tread area described in Figure 4.
[0104] In the configuration shown in Figure 1, as described above, the belt layer 14 has a pair of cross belts 141 and 142, and the tread rubber 15 has a cap tread 151 and an under tread 152.
[0105] Furthermore, in Figure 5, the distance Tce [mm] from the tread profile at the tire equatorial plane CL to the outer surface of the wide cross belt 141 has a relationship of 0.008 ≤ Tce / OD ≤ 0.13 with respect to the tire outer diameter OD [mm], preferably 0.012 ≤ Tce / OD ≤ 0.10, and more preferably 0.015 ≤ Tce / OD ≤ 0.07. Also, the distance Tce [mm] is in the range of 5 ≤ Tce ≤ 25, preferably 7 ≤ Tce ≤ 20. This ensures that the load capacity of the tread portion is properly secured. Specifically, the above lower limit suppresses tire deformation when used under high load, ensuring the wear resistance of the tire. In particular, for small diameter tires, where use under high internal pressure and high load is expected, the above wear resistance is significantly improved. The above upper limit suppresses the deterioration of rolling resistance caused by the increase in the mass of the tread rubber.
[0106] The distance Tce is measured with the tire mounted on a specified rim, under specified internal pressure, and in an unloaded state.
[0107] The outer circumferential surface of the belt ply is defined as the radially outer circumferential surface of the entire belt ply, which consists of the belt cord and the coating rubber.
[0108] Furthermore, it is preferable that the distance Tce [mm] from the tread profile at the tire equatorial plane CL to the outer surface of the wide cross belt 141 satisfies the following formula (6) with respect to the tire outer diameter OD [mm]. Here, Fmin = 35 and Fmax = 207, preferably Fmin = 42 and Fmax = 202.
[0109]
number
[0110] Furthermore, the distance Tsh [mm] from the tread profile at the tire contact edge T to the outer surface of the wide cross belt 141 is in the range of 0.60 ≤ Tsh / Tce ≤ 1.70, preferably in the range of 1.01 ≤ Tsh / Tce ≤ 1.55, and more preferably in the range of 1.10 ≤ Tsh / Tce ≤ 1.50, relative to the distance Tce [mm] at the tire equatorial plane CL. The above lower limit ensures a tread gauge in the shoulder region, thereby suppressing repeated deformation of the tire during tire rolling and ensuring the tire's wear resistance. Also, the above upper limit ensures a tread gauge in the center region, thereby suppressing tire deformation during high-load use, which is characteristic of small-diameter tires, and ensuring the tire's wear resistance.
[0111] Distance Tsh is measured with the tire mounted on a specified rim, under specified internal pressure, and in an unloaded state. Furthermore, if there is no wide cross belt directly beneath the tire contact edge T, distance Tsh is measured as the distance from the tread profile to a virtual line extending the outer circumference of the belt ply.
[0112] Furthermore, it is preferable that the distance Tsh [mm] from the tread profile at the tire contact edge T to the outer surface of the wide cross belt 141 satisfies the following formula (7) with respect to the distance Tce [mm] at the tire equatorial plane CL. Here, Gmin = 0.36 and Gmax = 0.72, preferably Gmin = 0.37 and Gmax = 0.71, and more preferably Gmin = 0.38 and Gmax = 0.70.
[0113]
number
[0114] Furthermore, in Figure 5, a section with a width ΔTW of 10% of the tire contact width TW is defined. In this case, the ratio of the maximum value Ta to the minimum value Tb of the rubber gauge of the tread rubber 15 in any section of the tire contact area is in the range of 0% to 40%, preferably in the range of 0% to 20%. With this configuration, the amount of change in the rubber gauge of the tread rubber 15 in any section of the tire contact area (particularly the section including the ends of the belt plies 141 to 144) is set to be small, so the contact pressure distribution in the tire width direction becomes smoother, and the wear resistance performance of the tire is improved.
[0115] The rubber gauge of the tread rubber 15 is defined as the distance from the tread profile to the inner surface of the tread rubber 15 (in Figure 5, the distance from the outer surface of the cap tread 151 to the inner surface of the under tread 152). Therefore, the grooves formed on the tread surface are excluded when measuring the rubber gauge of the tread rubber 15.
[0116] Furthermore, in Figure 5, the rubber gauge UTce of the undertread 152 at the tire equatorial plane CL is in the range of 0.04 ≤ UTce / Tce ≤ 0.60 with respect to the distance Tce at the tire equatorial plane CL, and preferably in the range of 0.06 ≤ UTce / Tce ≤ 0.50. This optimizes the rubber gauge UTce of the undertread 152.
[0117] Furthermore, the distance Tsh at the tire contact end T is in the range of 1.50 ≤ Tsh / Tu ≤ 6.90, preferably in the range of 2.00 ≤ Tsh / Tu ≤ 6.50, with respect to the rubber gauge Tu [mm] from the end of the wide cross belt 141 to the outer surface of the carcass layer 13. This optimizes the profile of the carcass layer 13 and optimizes the tension of the carcass layer 13. Specifically, the lower limit ensures the tension of the carcass layer and the tread gauge in the shoulder region, thereby suppressing repeated deformation of the tire during tire rolling and ensuring the tire's wear resistance. The upper limit ensures the rubber gauge near the end of the belt ply, thereby suppressing separation of the surrounding rubber of the belt ply.
[0118] The rubber gauge Tu is measured in effect as a gauge of the rubber member (sidewall rubber 16 in Figure 5) inserted between the end of the wide cross belt 141 and the carcass layer 13.
[0119] The outer circumferential surface of the carcass layer 13 is defined as the radially outer circumferential surface of the carcass ply, which consists of carcass cords and coating rubber. Furthermore, if the carcass layer 13 has a multilayer structure consisting of multiple carcass ply (not shown), the outer circumferential surface of the outermost carcass ply constitutes the outer circumferential surface of the carcass layer 13. In addition, if the winding portion 132 of the carcass layer 13 (see Figure 1) exists between the end of the wide cross belt 141 and the carcass layer 13 (not shown), the outer circumferential surface of this winding portion 132 constitutes the outer circumferential surface of the carcass layer 13.
[0120] For example, in the configuration shown in Figure 5, the sidewall rubber 16 is inserted between the end of the wide cross belt 141 and the carcass layer 13, forming a rubber gauge Tu between the end of the wide cross belt 141 and the carcass layer 13. However, this is not the only option; for example, a belt cushion may be inserted between the end of the wide cross belt 141 and the carcass layer 13 instead of the sidewall rubber 16 (not shown). Furthermore, the inserted rubber member has a rubber hardness Hs_sp of 46 to 67, a modulus M_sp [MPa] at 100% elongation of 1.0 to 3.5, and a loss tangent tanδ_sp of 0.02 to 0.22, preferably a rubber hardness Hs_sp of 48 to 63, a modulus M_sp [MPa] at 100% elongation of 1.2 to 3.2, and a loss tangent tanδ_sp of 0.04 to 0.20.
[0121] Furthermore, in the configuration shown in Figure 1, the tire 1 has a tread surface comprising a plurality of circumferential main grooves 21a, 21b, 22a, and 22b (see Figure 4) extending in the circumferential direction of the tire, and land areas (notation omitted in the figure) partitioned by these circumferential main grooves 21a, 21b, 22a, and 22b. The main grooves are defined as grooves that have a wear indicator display obligation as specified by JATMA.
[0122] At this time, the groove depth Gd1a [mm] of the circumferential main groove 21a, which is closest to the tire equatorial plane CL among the multiple circumferential main grooves 21a, 21b, 22a, and 22b, is in the range of 0.50 ≤ Gd1a / Gce ≤ 1.00, and preferably in the range of 0.55 ≤ Gd1a / Gce ≤ 0.98, with respect to the rubber gauge Gce [mm] of the tread rubber 15. This ensures the wear resistance performance of the tire. Specifically, the lower limit distributes the contact pressure in the center area of the tread, improving the tire's wear life. The upper limit ensures the rigidity of the ground portion, and also ensures the rubber gauge from the groove bottom of the circumferential main grooves 21a, 21b, 22a, and 22b to the belt layer.
[0123] The circumferential main groove closest to the tire's equatorial plane CL is defined as the circumferential main groove located on the tire's equatorial plane CL (not shown). If there is no circumferential main groove on the tire's equatorial plane CL (see Figure 4), it is defined as the circumferential main groove 21a closest to the tire's equatorial plane CL.
[0124] Furthermore, it is preferable that the above-mentioned ratio Gd1a / Gce satisfies the following formula (8) with respect to the tire outer diameter OD [mm]. Here, Hmin = 0.10 and Hmax = 0.60, preferably Hmin = 0.12 and Hmax = 0.50, and more preferably Hmin = 0.14 and Hmax = 0.40.
[0125]
number
[0126] Furthermore, among the multiple circumferential main grooves 21a, 21b, 22a, and 22b, the groove depth Gd1a [mm] of the circumferential main groove 21a closest to the tire equatorial plane CL is greater than or equal to the groove depths Gd1b [mm], Gd2a [mm], and Gd2b [mm] of the other circumferential main grooves 21b, 22a, and 22b (Gd1b ≤ Gd1a, Gd2a ≤ Gd1a, Gd2b ≤ Gd1a). Specifically, when the region from the tire equatorial plane CL to the tire contact edge T is divided into two equal parts in the tire width direction, the groove depth Gd1a of the circumferential main groove 21a closest to the tire equatorial plane CL is in the range of 1.00 to 2.50 times, preferably 1.00 to 2.00 times, and more preferably 1.00 to 1.80 times, the maximum value of the groove depths Gd1b, Gd2a, and Gd2b of the other circumferential main grooves 21b and the other circumferential main grooves 22a and 22b located in the region on the tire contact edge T side. The lower limit above distributes the contact pressure in the center region of the tread, improving the tire's wear resistance. The upper limit above suppresses uneven wear caused by an excessive difference in contact pressure between the center region and the shoulder region of the tread.
[0127] [Side Profile and Side Gauge] Figure 6 is an enlarged view showing the sidefall and bead portions of tire 1 as described in Figure 1. Figure 7 is an enlarged view showing the sidewall portion as described in Figure 6.
[0128] In Figure 6, we define point Au on the side profile, which is at the same position in the tire radial direction relative to the end of the innermost layer of the belt layer 14 (in Figure 6, the inner diameter cross belt 141), and point Al on the side profile, which is at the same position in the tire radial direction relative to the radially outer end of the bead core 11. We also define the tire radial distance Hu from the tire maximum width position Ac to point Au, and the tire radial distance Hl from the tire maximum width position Ac to point Al. Furthermore, we define point Au' on the side profile, which is at a radial position 70% of the distance Hu from the tire maximum width position Ac, and point Al' on the side profile, which is at a radial position 70% of the distance Hl from the tire maximum width position Ac.
[0129] At this time, the sum of distance Hu[mm] and distance Hl[mm] is in the range of 0.45≦(Hu+Hl) / SH≦0.90 with respect to the tire cross-sectional height SH[mm] (see Figure 2), preferably in the range of 0.50≦(Hu+Hl) / SH≦0.85. This optimizes the radial distance from the belt layer 14 to the bead core 11. Specifically, the above lower limit ensures a deformable area of the tire sidewall, suppressing failures of the tire sidewall (for example, separation of the rubber material at the radially outer end of the bead filler 12). The above upper limit reduces the amount of deflection of the tire sidewall during tire rolling, thereby reducing the tire's rolling resistance.
[0130] Distances Hu and Hl are measured with the tire mounted on a specified rim, under specified internal pressure, and in an unloaded state.
[0131] Furthermore, it is preferable that the sum of distances Hu[mm] and Hl[mm] satisfies the following formula (9) with respect to the tire outer diameter OD (Figure 1), tire section height SH[mm] (see Figure 2), and the radius of curvature RSc[mm] of the arc passing through the tire maximum width position Ac, point Au', and point Al'. Here, I1min=0.06, I1max=0.20, and I2=0.70, and preferably I1min=0.09, I1max=0.20, and I2=0.65.
[0132]
number
[0133] The radius of curvature RSc of the arc is measured with the tire mounted on a specified rim, under specified internal pressure, and in an unloaded state.
[0134] Furthermore, the distances Hu[mm] and Hl[mm] have a relationship of 0.30≦Hu / (Hu+Hl)≦0.70, preferably 0.35≦Hu / (Hu+Hl)≦0.65. This optimizes the position of the tire's maximum width position Ac in the deformable region of the tire sidewall. Specifically, the lower limit alleviates stress concentration near the end of the belt ply caused by the tire's maximum width position Ac being too close to the end of the belt layer 14, thereby suppressing separation of the surrounding rubber. The upper limit alleviates stress concentration near the bead portion caused by the tire's maximum width position Ac being too close to the end of the bead core 11, thereby suppressing failure of the bead portion reinforcing member (bead filler 12 in Figure 6).
[0135] Furthermore, the radius of curvature RSc [mm] of the arc passing through the tire's maximum width position Ac, point Au', and point Al' is in the range of 0.05 ≤ RSc / OD ≤ 1.70 with respect to the tire's outer diameter OD [mm], preferably in the range of 0.10 ≤ RSc / OD ≤ 1.60. Also, the radius of curvature RSc [mm] of the arc is in the range of 25 ≤ RSc ≤ 330, preferably in the range of 30 ≤ RSc ≤ 300. This optimizes the radius of curvature of the side profile and ensures the proper load capacity of the tire sidewall. Specifically, the lower limit reduces the amount of deflection of the tire sidewall during tire rolling, thereby reducing the tire's rolling resistance. The upper limit suppresses the occurrence of stress concentration caused by the flattening of the tire sidewall, improving the tire's durability. In particular, with small-diameter tires, large stresses tend to act on the tire sidewall due to the high internal pressure and high load conditions described above, so there is also the issue of ensuring the tire's resistance to sidewall cuts. In this regard, the lower limit ensures the radius of curvature of the side profile and optimizes the carcass tension, thereby suppressing tire deformation and preventing tire side cuts. Furthermore, the upper limit suppresses tire side cuts caused by excessive tension in the carcass layer 13.
[0136] Furthermore, the radius of curvature RSc [mm] of the arc is in the range of 0.50 ≤ RSc / SH ≤ 0.95 with respect to the tire section height SH [mm], and preferably in the range of 0.55 ≤ RSc / SH ≤ 0.90.
[0137] Furthermore, it is preferable that the radius of curvature RSc [mm] of the arc satisfies the following formula (10) with respect to the tire outer diameter OD [mm] and rim diameter RD [mm]. Here, Jmin = 15 and Jmax = 360, preferably Jmin = 20 and Jmax = 330, and more preferably Jmin = 25 and Jmax = 300.
[0138]
number
[0139] Furthermore, in Figure 6, point Bc is defined on the main body portion 131 of the carcass layer 13 at the same position in the radial direction of the tire relative to the tire's maximum width position Ac. Also, point Bu' is defined on the main body portion 131 of the carcass layer 13 at a radial position of 70% of the distance Hu described above from the tire's maximum width position Ac. Also, point Bl' is defined on the main body portion 131 of the carcass layer 13 at a radial position of 70% of the distance Hl described above from the tire's maximum width position Ac.
[0140] At this time, the radius of curvature RSc [mm] of the arc passing through the tire's maximum width position Ac, point Au', and point Al' is in the range of 1.10 ≤ RSc / RCc ≤ 4.00, preferably in the range of 1.50 ≤ RSc / RCc ≤ 3.50, with respect to the radius of curvature RCc [mm] of the arc passing through point Bc, point Bu', and point Bl'. Also, the radius of curvature RCc [mm] of the arc passing through point Bc, point Bu', and point Bl' is in the range of 5 ≤ RCc ≤ 300, preferably in the range of 10 ≤ RCc ≤ 270. This optimizes the relationship between the radius of curvature RSc of the tire's side profile and the radius of curvature RCc of the carcass layer 13's side profile. Specifically, the lower limit ensures the radius of curvature RCc of the carcass profile, the internal volume V of the tire (described later) is ensured, and the load capacity of the tire is ensured. The upper limit ensures the total gauges Gu and Gl of the tire side (described later) are ensured, and the load capacity of the tire side is ensured.
[0141] Furthermore, it is preferable that the radius of curvature RSc [mm] of the side profile described above satisfies the following formula (11) with respect to the radius of curvature RCc [mm] of the carcass profile and the tire outer diameter OD [mm]. Here, Kmin = 1 and Kmax = 130, preferably Kmin = 2 and Kmax = 100, and more preferably Kmin = 3 and Kmax = 70.
[0142]
number
[0143] Furthermore, in Figure 6, the total gauge Gu [mm] of the tire sidewall at point Au is in the range of 0.010 ≤ Gu / OD ≤ 0.080 with respect to the tire outer diameter OD [mm], preferably in the range of 0.017 ≤ Gu / OD ≤ 0.070. This optimizes the total gauge Gu in the radially outer region of the tire sidewall. Specifically, the lower limit ensures the total gauge Gu in the radially outer region of the tire sidewall, suppressing tire deformation during high-load use and ensuring the tire's wear resistance. In particular, small-diameter tires are expected to be used under high internal pressure and high load, so the reduction in tire rolling resistance described above is significantly achieved. The upper limit suppresses the deterioration of tire rolling resistance caused by an excessively large total gauge Gu.
[0144] The total gauge of the tire sidewall is measured as the distance from the sidewall to the inner surface of the tire, along a perpendicular line drawn from a predetermined point on the sidewall to the main body portion 131 of the carcass layer 13.
[0145] Furthermore, in Figure 6, the total gauge Gu [mm] at point Au is in the range of 1.30 ≤ Gu / Gc ≤ 5.00 with respect to the total gauge Gc [mm] of the tire side portion at the tire's maximum width position Ac, preferably the ratio Gu / Gc is in the range of 1.90 ≤ Gu / Gc ≤ 3.00. This optimizes the gauge distribution of the tire side portion from the tire's maximum width position Ac to the innermost layer of the belt layer 14. Specifically, the lower limit ensures a sufficient total gauge Gu in the radially outer region, suppressing tire deformation during high-load use and ensuring the tire's wear resistance. The upper limit suppresses the deterioration of the tire's rolling resistance caused by an excessively large total gauge Gu.
[0146] Furthermore, it is preferable that the total gauge Gu [mm] at point Au satisfies the following formula (12) with respect to the total gauge Gc [mm] at the tire's maximum width position Ac and the tire's outer diameter OD [mm]. Here, Lmin = 0.10 and Lmax = 0.70, preferably Lmin = 0.14 and Lmax = 0.70, and more preferably Lmin = 0.19 and Lmax = 0.70.
[0147]
number
[0148] Furthermore, in Figure 6, the total gauge Gc [mm] of the tire sidewall at the tire's maximum width position Ac has a relationship of 0.003 ≤ Gc / OD ≤ 0.060 with respect to the tire's outer diameter OD [mm], preferably 0.004 ≤ Gc / OD ≤ 0.050. The lower limit ensures that the total gauge Gc at the tire's maximum width position Ac is sufficient, thereby ensuring the tire's load capacity. The upper limit ensures that the rolling resistance of the tire is reduced by thinning the total gauge Gc at the tire's maximum width position Ac.
[0149] Furthermore, it is preferable that the total gauge Gc [mm] at the tire's maximum width position Ac satisfies the following formula (13) with respect to the tire's outer diameter OD [mm]. Here, Mmin = 70 and Mmax = 450, preferably Mmin = 80 and Mmax = 400.
[0150]
number
[0151] Furthermore, it is preferable that the total gauge Gc [mm] at the tire's maximum width position Ac satisfies the following formula (14) with respect to the tire's outer diameter OD [mm] and total tire width SW [mm]. Here, Nmin = 0.20 and Nmax = 15, preferably Nmin = 0.40 and Nmax = 15, and more preferably Nmin = 0.60 and Nmax = 12.
[0152]
number
[0153] Furthermore, it is preferable that the total gauge Gc [mm] at the tire's maximum width position Ac satisfies the following formula (15) with respect to the radius of curvature RSc [mm] of the arc passing through the tire's maximum width position Ac, point Au', and point Al'. Here, Omin = 13 and Omax = 260, preferably Omin = 20 and Omax = 200.
[0154]
number
[0155] Furthermore, in Figure 6, the total gauge Gl [mm] of the tire sidewall at point Al is in the range of 0.010 ≤ Gl / OD ≤ 0.150 with respect to the tire outer diameter OD, preferably in the range of 0.015 ≤ Gl / OD ≤ 0.100. This optimizes the total gauge Gl in the radially inner region of the tire sidewall. Specifically, the lower limit ensures the total gauge Gl in the radially inner region of the tire sidewall, suppressing tire deformation during high-load use and ensuring the tire's wear resistance. In particular, small-diameter tires are expected to be used under high internal pressure and high load, so the reduction in tire rolling resistance described above is significantly achieved. The upper limit suppresses the deterioration of tire rolling resistance caused by an excessively large total gauge Gl.
[0156] Furthermore, in Figure 6, the ratio Gl / Gc between the total gauge Gl [mm] of the tire sidewall at point Al and the total gauge Gc [mm] of the tire sidewall at the tire's maximum width position Ac is in the range of 1.00 ≤ Gl / Gc ≤ 7.00, and preferably the ratio Gu / Gc is in the range of 2.00 ≤ Gl / Gc ≤ 5.00. This optimizes the gauge distribution of the tire sidewall from the tire's maximum width position Ac to the bead core 11. Specifically, the lower limit ensures a sufficient total gauge Gl in the radially inner region, suppressing tire deformation during high-load use and ensuring the tire's wear resistance. The upper limit suppresses the deterioration of the tire's rolling resistance caused by an excessively large total gauge Gl.
[0157] Furthermore, it is preferable that the total gauge Gl [mm] of the tire side portion at point Al satisfies the following formula (16) with respect to the total gauge Gc [mm] at the tire maximum width position Ac and the tire outer diameter OD [mm]. Here, Pmin = 0.12 and Pmax = 1.00, preferably Pmin = 0.15 and Pmax = 1.00, and more preferably Pmin = 0.18 and Pmax = 1.00.
[0158]
number
[0159] Furthermore, in Figure 6, the total gauge Gl [mm] at point Al is in the range of 0.80 ≤ Gl / Gu ≤ 5.00, and preferably in the range of 1.00 ≤ Gl / Gu ≤ 4.00, relative to the total gauge Gu [mm] at point Au. This optimizes the ratio of the total gauge Gl in the radially outer region of the tire sidewall to the total gauge Gu in the radially inner region.
[0160] Further, it is preferable that the total gauge Gl [mm] at the above-mentioned point Al satisfies the following mathematical formula (17) with respect to the total gauge Gu [mm] at the above-mentioned point Au and the tire outer diameter OD [mm]. Here, Qmin = 0.09, Qmax = 0.80, preferably Qmin = 0.10, Qmax = 0.70, and more preferably Qmin = 0.11, Qmax = 0.50.
[0161]
Number
[0162] Also, in FIG. 6, the average rubber hardness Hsc at the measurement position of the total gauge Gc, the average rubber hardness Hsu at the measurement position of the total gauge Gu, and the average rubber hardness Hsl at the measurement point position of the total gauge Gl have a relationship of Hsc ≦ Hsu < Hsl, preferably a relationship of 1 ≦ Hsu - Hsc ≦ 18 and 2 ≦ Hsl - Hsu ≦ 27, and more preferably a relationship of 2 ≦ Hsu - Hsc ≦ 15 and 5 ≦ Hsl - Hsu ≦ 23. Thereby, the relationship of the rubber hardness of the tire side portion is optimized.
[0163] The average rubber hardnesses Hsc, Hsu, and Hsl are calculated as the sum of the values obtained by dividing the product of the cross-sectional length and the rubber hardness of each rubber member at each measurement point of the total gauge Gc [mm] at the tire maximum width position Ac, the total gauge Gu at the point Au, and the total gauge Gl at the point Al by the total gauge.
[0164] Furthermore, in Figure 7, the distance ΔAu' [mm] in the tire width direction from the tire's maximum width position Ac to point Au' is in the range of 0.03 ≤ ΔAu' / (Hu × 0.70) ≤ 0.23 relative to 70% of the distance Hu [mm] from the tire's maximum width position Ac, and preferably in the range of 0.07 ≤ ΔAu' / (Hu × 0.70) ≤ 0.17. This optimizes the curvature of the side profile in the radially outer region. Specifically, the lower limit suppresses the occurrence of stress concentration caused by the flattening of the tire sidewall, thereby improving the tire's durability. The upper limit reduces the amount of deflection of the tire sidewall during tire rolling, thereby reducing the tire's rolling resistance. In particular, with small-diameter tires, large stresses tend to act on the tire sidewall due to the use under high internal pressure and high load as described above, so there is also the issue of ensuring the tire's resistance to sidewall cuts. In this regard, the lower limit ensures the radius of curvature of the side profile and optimizes the carcass tension, thereby suppressing tire deformation and preventing tire side cuts. Furthermore, the upper limit suppresses tire side cuts caused by excessive tension in the carcass layer 13.
[0165] Furthermore, the distance ΔAl'[mm] in the tire width direction from the tire's maximum width position Ac to point Al' is in the range of 0.03≦ΔAl' / (Hl×0.70)≦0.28 relative to 70% of the distance Hl[mm] from the tire's maximum width position Ac, and preferably in the range of 0.07≦ΔAl' / (Hl×0.70)≦0.20. This optimizes the curvature of the side profile in the radially inner region. Specifically, the above lower limit suppresses the occurrence of stress concentration caused by the flattening of the tire sidewall, thereby improving the tire's durability. Especially in small-diameter tires, since the bead core 11 is reinforced as described above, stress concentration near the bead core 11 is effectively suppressed. The above upper limit reduces the amount of deflection of the tire sidewall during tire rolling, thereby reducing the tire's rolling resistance.
[0166] The distances ΔAu' and ΔAl' are measured with the tire mounted on a specified rim, under specified internal pressure, and in an unloaded state.
[0167] Furthermore, it is preferable that the distance ΔAu' [mm] in the tire width direction from the tire maximum width position Ac to point Au' satisfies the following formula (18) with respect to the radius of curvature RSc [mm] of the arc passing through the tire maximum width position Ac, point Au', and point Al' described above. Here, Rmin = 0.05 and Rmax = 5.00, preferably Rmin = 0.10 and Rmax = 4.50.
[0168]
number
[0169] Furthermore, in Figure 7, the distance ΔBu' [mm] in the tire width direction from point Bc to point Bu' is in the range of 1.10 ≤ ΔBu' / ΔAu' ≤ 8.00, preferably in the range of 1.60 ≤ ΔBu' / ΔAu' ≤ 7.50, relative to the distance ΔAu' [mm] in the tire width direction from the tire's maximum width position to point Au'. This optimizes the relationship between the curvature of the side profile and the curvature of the carcass profile in the radially outer region. Specifically, the lower limit ensures the cut resistance of the tire side. The upper limit ensures the tension of the carcass layer 13, ensuring the rigidity of the tire side, and thus ensuring the tire's load capacity and durability.
[0170] Furthermore, in Figure 7, the distance ΔBl'[mm] in the tire width direction from point Bc to point Bl' is in the range of 1.80≦ΔBl' / ΔAl'≦11.0 with respect to the distance ΔAl'[mm] in the tire width direction from the tire's maximum width position Ac to point Al', preferably in the range of 2.30≦ΔBl' / ΔAl'≦9.50. This optimizes the relationship between the curvature of the side profile and the curvature of the carcass profile in the radially inner region. Specifically, the lower limit ensures the total gauge Gl of the tire side, thereby ensuring the load capacity of the tire side. The upper limit ensures the tension of the carcass layer 13, ensuring the rigidity of the tire side, thereby ensuring the load capacity and durability of the tire.
[0171] The distances ΔBu' and ΔBl' are measured with the tire mounted on a specified rim, under specified internal pressure, and in an unloaded state.
[0172] Furthermore, it is preferable that the distance ΔBu' [mm] in the tire width direction from point Bc to point Bu' satisfies the following formula (19) with respect to the radius of curvature RCc [mm] of the arc passing through points Bc, Bu', and Bl' as described above. Here, Smin = 0.40 and Smax = 7.0, preferably Smin = 0.50 and Smax = 6.0.
[0173]
number
[0174] Furthermore, in Figure 7, the rubber gauge Gcr [mm] of the sidewall rubber 16 at the tire's maximum width position Ac is in the range of 0.40 ≤ Gcr / Gc ≤ 0.90 relative to the total gauge Gc [mm] at the tire's maximum width position Ac described above. Also, the rubber gauge Gcr [mm] of the sidewall rubber 16 is in the range of 1.5 ≤ Gcr, preferably in the range of 2.5 ≤ Gcr. The above lower limit ensures that the rubber gauge Gcr [mm] of the sidewall rubber 16 is maintained, thereby ensuring the load capacity of the sidewall.
[0175] Furthermore, it is preferable that the rubber gauge Gcr [mm] of the sidewall rubber 16 at the tire's maximum width position Ac satisfies the following formula (20) with respect to the total gauge Gc [mm] and tire outer diameter OD [mm] at the tire's maximum width position Ac described above. Here, Tmin = 80 and Tmax = 0.90, preferably Tmin = 120 and Tmax = 0.90.
[0176]
number
[0177] Furthermore, in Figure 7, the rubber gauge Gin [mm] (not shown) of the inner liner 18 at the tire's maximum width position Ac is in the range of 0.03 ≤ Gin / Gc ≤ 0.50, preferably in the range of 0.05 ≤ Gin / Gc ≤ 0.40, relative to the total gauge Gc [mm] at the tire's maximum width position Ac. This ensures that the inner surface of the carcass layer 13 is properly protected.
[0178] As described above, this tire 1 comprises a pair of bead cores 11, 11, a carcass layer 13 spanning the bead cores 11, 11, and a belt layer 14 positioned radially outward of the carcass layer 13 (see Figure 1). The tire outer diameter OD [mm] is in the range of 200 ≤ OD ≤ 660, and the tire total width SW [mm] is in the range of 100 ≤ SW ≤ 400. Furthermore, the strength Tcs [N / 50mm] per 50 [mm] width of the carcass ply constituting the carcass layer 13 is in the range of 17 ≤ Tcs / OD ≤ 120 with respect to the tire outer diameter OD [mm].
[0179] In this configuration, the load capacity of the carcass layer 13 is appropriately ensured in small-diameter tires, thus offering the advantage of achieving both wear resistance and low rolling resistance. Specifically, the above lower limit of relative Tcs / OD suppresses tire deformation during high-load use, ensuring tire wear resistance. Furthermore, it enables use at high internal pressures, reducing tire rolling resistance. Especially in small-diameter tires, where high internal pressures and high loads are anticipated, the above-mentioned effects of wear resistance and reduced rolling resistance are significantly achieved. The above upper limit of relative Tcs / OD suppresses the deterioration of rolling resistance caused by an increase in the mass of the carcass layer.
[0180] Furthermore, in this tire 1, the carcass ply of the carcass layer 13 is constructed by covering steel carcass cords with coated rubber. In addition, the cord diameter φcs [mm] of the carcass cords is in the range of 0.3 ≤ φcs ≤ 1.1, and the number of carcass cords Ecs [cords / 50mm] is in the range of 25 ≤ Ecs ≤ 80. This has the advantage of achieving the strong Tcs of the carcass layer 13 described above.
[0181] Furthermore, in this tire 1, the carcass ply of the carcass layer 13 is constructed by covering carcass cords made of organic fibers with a coating rubber. In addition, the cord diameter φcs [mm] of the carcass cords is in the range of 0.6 ≤ φcs ≤ 0.9, and the number of carcass cords Ecs [cords / 50mm] is in the range of 40 ≤ Ecs ≤ 70. This has the advantage of achieving the strong Tcs of the carcass layer 13 described above.
[0182] Furthermore, in this tire 1, the carcass layer 13 has a main body portion 131 that extends along the inner surface of the tire and a winding portion 132 that is wound outward in the tire width direction so as to enclose the bead core 11 and extends in the tire radial direction (see Figure 1). In addition, the radial height Hcs [mm] from the measurement point of the rim diameter RD to the end of the winding portion 132 of the carcass layer 13 is in the range of 0.49 ≤ Hcs / SH ≤ 0.80 with respect to the tire cross-sectional height SH [mm] (see Figure 2). This has the advantage of optimizing the radial height Hcs of the winding portion 132 of the carcass layer 13. Specifically, the above lower limit ensures the load capacity of the tire side, and the above upper limit suppresses the deterioration of rolling resistance caused by the increase in the mass of the carcass layer.
[0183] Furthermore, in this tire 1, the contact height Hcs' [mm] between the main body portion 131 and the winding portion 132 of the carcass layer 13 is within the range of 0.07 ≤ Hcs' / SH with respect to the tire cross-sectional height SH [mm] (see Figure 2). This has the advantage of effectively increasing the load capacity of the tire sidewall.
[0184] Furthermore, in this tire 1, the distance Tsh at the tire contact edge T is in the range of 1.50 ≤ Tsh / Tu ≤ 6.90 with respect to the rubber gauge Tu [mm] from the end of the wide cross belt 141 to the outer surface of the carcass layer 13 (see Figure 5). This has the advantage of optimizing the profile of the carcass layer 13 and thus optimizing the tension of the carcass layer 13.
[0185] Furthermore, in this tire 1, the distance ΔBu' [mm] in the tire width direction from point Bc to point Bu' is within the range of 1.10 ≤ ΔBu' / ΔAu' ≤ 8.00 with respect to the distance ΔAu' [mm] in the tire width direction from the tire's maximum width position Ac to point Au' (see Figure 7). This has the advantage of optimizing the relationship between the curvature of the side profile and the curvature of the carcass profile in the radially outer region. Specifically, the lower limit ensures the cut resistance of the tire side. The upper limit ensures the tension of the carcass layer 13, ensuring the rigidity of the tire side, and thus ensuring the tire's load capacity and durability.
[0186] Furthermore, in this tire 1, the distance ΔBl'[mm] in the tire width direction from point Bc to point Bl' is within the range of 1.80 ≤ ΔBl' / ΔAl' ≤ 11.0 relative to the distance ΔAl'[mm] in the tire width direction from the tire's maximum width position Ac to point Al' (see Figure 7). This has the advantage of optimizing the relationship between the curvature of the side profile and the curvature of the carcass profile in the radially inner region. Specifically, the lower limit ensures the total gauge Gl of the tire side, thereby ensuring the load capacity of the tire side. The upper limit ensures the radius of curvature RCc of the carcass profile, ensuring the internal volume V of the tire, thereby ensuring the load capacity of the tire.
[0187] Furthermore, in this tire 1, the amount of tread profile drop DA [mm] at the tire contact edge T has a relationship of 0.008 ≤ DA / TW ≤ 0.060 with respect to the tire contact width TW [mm] (see Figure 4). This has the advantage of optimizing the drop angle of the tread shoulder region (defined as the ratio DA / (TW / 2)) and ensuring the proper load capacity of the tread. Specifically, the lower limit ensures the drop angle of the tread shoulder region, suppressing a decrease in wear life caused by excessive contact pressure in the tread shoulder region. The upper limit makes the tire contact area flat and equalizes the contact pressure, ensuring the tire's wear resistance. Especially in small diameter tires, where use at high internal pressure and high load is expected, the above configuration can effectively optimize the contact pressure distribution in the tire contact area.
[0188] Furthermore, in this tire 1, the belt layer 14 is equipped with a pair of cross belts 141 and 142, each consisting of a steel belt cord covered with coated rubber (see Figure 1). In addition, the strength Tbt [N / 50mm] per 50 [mm] width of each of the pair of cross belts 141 and 142 is in the range of 25 ≤ Tbt / OD ≤ 250 with respect to the tire outer diameter OD [mm]. This has the advantage of ensuring that the load capacity of the cross belts 141 and 142 is properly maintained. Specifically, the above lower limit suppresses tire deformation when used under high load, ensuring the tire's wear resistance. It also enables use at high internal pressure, reducing the tire's rolling resistance. In particular, for small diameter tires, where use at high internal pressure and high load is expected, the above-mentioned wear resistance and reduction in rolling resistance are significantly obtained. The above upper limit suppresses the deterioration of rolling resistance caused by an increase in the mass of the cross belts.
[0189] Furthermore, in this tire 1, the strength Tbd[N] of one bead core 11 is within the range of 45≦Tbd / OD≦120 relative to the tire outer diameter OD[mm]. This has the advantage of ensuring the appropriate load capacity of the bead core 11. Specifically, the above lower limit suppresses tire deformation when used under high load, ensuring the tire's wear resistance. It also enables use at high internal pressures, reducing the tire's rolling resistance. Especially in small-diameter tires, where use at high internal pressures and high loads is expected, the above-mentioned wear resistance and reduction in rolling resistance are significantly obtained. The above upper limit suppresses the deterioration of rolling resistance caused by an increase in the mass of the bead core.
[0190] Furthermore, in this tire 1, the bead core 11 is composed of bead wire made of steel. Also, the total cross-sectional area σbd [mm^2] of the bead wire is in the range of 0.025 ≤ σbd / OD ≤ 0.075 with respect to the tire outer diameter OD [mm]. This has the advantage of achieving the strong Tbd [N] of the bead core 11 described above.
[0191] [Tread surface] Figure 8 shows an example of the tread surface of the tread portion. As shown in Figure 8, the tread portion has circumferential main grooves 21a, 21b, 22a, and 22b that extend in the circumferential direction of the tire. These four circumferential main grooves 21a, 21b, 22a, and 22b divide and form multiple land areas 30, 31a, 31b, 32a, and 32b. The tread portion also has lateral grooves 24a, 24b, 25a, and 25b. The lateral groove 24a extends in the circumferential and width directions of the tire and connects the circumferential main grooves 21a and 22a. The lateral groove 24b extends in the circumferential and width directions of the tire and connects the circumferential main grooves 21b and 22b. The lateral groove 25a extends outward from the circumferential main groove 22a in the width direction of the tire and reaches the outside of the contact edge T. The lateral groove 25b extends outward in the tire width direction from the circumferential main groove 22b and reaches the outside of the contact edge T. In Figure 8, the symbol Tss indicates the tire contact area. In the contact area Tss, the tire contact width is indicated by the symbol TW [mm] and the tire contact length is indicated by the symbol TL.
[0192] In Figure 8, the tread center region Rce is the region centered on the tire equatorial plane CL, with a contact width of TW × 0.4 × (OD / SW)^(1 / 4) [mm]. The tread shoulder region Rsh is the region included in the contact width TW [mm], excluding the tread center region Rce.
[0193] [Groove area ratio] In a tire 1 having the tread surface shown in Figure 8, it is preferable that the tire outer diameter OD [mm] is in the range of 200 ≤ OD ≤ 660, the tire total width SW [mm] is in the range of 100 ≤ SW ≤ 400, and the groove area ratio Aa [%] of the entire tread area is in the range of 25 + 100 × (25.4 / OD) ≤ Aa ≤ 50 + 100 × (25.4 / OD).
[0194] Reducing the outer diameter (OD) allows for a lower vehicle floor, increasing interior space. Furthermore, a smaller OD reduces rotational inertia and weight, significantly improving fuel efficiency.
[0195] When aiming to improve bump-climbing performance, the smaller the outer diameter (OD), the larger the groove area ratio needs to be. By changing the appropriate range of the groove area ratio according to the outer diameter (OD), the grooves can grip bumps more easily, making it easier to climb over them, thus achieving both bump-climbing performance and fuel efficiency. The groove area of the entire tread area includes the groove area of the lateral grooves. Even tires where the tread area does not have circumferential main grooves and the groove area of the lateral grooves is within the above range can have their bump-climbing performance improved. Furthermore, it is more preferable that the groove area ratio Aa[%] of the entire tread area is within the range of 25+100×(25.4 / OD)≦Aa≦45+100×(25.4 / OD).
[0196] The groove area ratio is the ratio of the total groove area in a predetermined region of the tread to the area of that region. [%] This is calculated as groove area / (groove area + contact area) ×100The following definitions apply: Groove area refers to the opening area of the grooves on the contact surface. Grooves refer to the circumferential grooves, narrow grooves, and lateral grooves (lug grooves) of the tread, and do not include sipes or calves. Contact area refers to the contact area between the tire and the contact surface. The groove area and contact area are measured at the contact surface between the tire and the plate when the tire is mounted on a specified rim, subjected to a specified internal pressure (230 kPa), and placed perpendicular to a plate in a stationary state, with a load corresponding to a specified load (80% of the maximum load capacity) applied.
[0197] These tires can be fitted with sound-absorbing materials to reduce noise, such as for use in mobile conference rooms, or with sensors, sealants, and thermoplastic resin inner liners for maintenance-free applications, such as in transport vehicles. They are also highly effective when fitted to vehicles equipped with monitoring systems. When used at high internal pressure, the tread wear limit is reached before the durability limits of the tire sidewall and belt, making them suitable for retreading.
[0198] The maximum groove depth Gmax [mm] across the entire tread area preferably satisfies 0.006 ≤ Gmax / OD ≤ 0.083. As the outer diameter OD increases, the inertial force increases, so if the groove depth is not increased and the mass is not reduced, fuel efficiency may deteriorate. If the tire groove depth is too large relative to the outer diameter OD, the groove walls may collapse under high load, and the groove effect may not be fully realized. Furthermore, if the groove depth is appropriate for the outer diameter OD, the grooves will grip the bumps more easily when going over bumps, so the above range is desirable. The groove area across the entire tread area includes the groove area of the lateral grooves. If the tread area does not have circumferential main grooves but has lateral grooves, the bump-going performance can also be improved for tires where the maximum groove depth Gmax of the lateral grooves is within the above range. It is more preferable that the maximum groove depth Gmax across the entire tread area satisfies 0.009 ≤ Gmax / OD ≤ 0.060.
[0199] As shown in Figure 8, the tread portion of this example has circumferential main grooves 21a, 21b, 22a, and 22b that extend in the circumferential direction of the tire. The circumferential main grooves shall have a groove width of 3 mm or more. The projected area C [mm²] of the circumferential main grooves is given by the product of the outer diameter OD and the total width SW. 2 It is preferable that the circumferential main groove area satisfies 0.03 ≤ C / (SW × OD) ≤ 1.01. When the area of the circumferential main groove is within the above range relative to the outer diameter OD and total width SW, the envelope characteristics are improved, making it easier to overcome bumps. The projected area C is the total area of the circumferential grooves around the circumference of the tire. As shown in Figure 8, if the tread has multiple circumferential main grooves, the projected area C is the sum of the areas of all circumferential main grooves. If the tread has only one circumferential main groove, the projected area C is the area of that single circumferential main groove. Note that the projected area C of the circumferential main groove [mm²] 2 It is more preferable that 0.15 ≤ C / (SW × OD) ≤ 0.94 is satisfied.
[0200] In the contact area of the tread, the average number of pitches P (where P is a natural number) within the tire contact length preferably satisfies OD / 200 ≤ P ≤ OD / 50 with respect to the outer diameter OD. When the average number of pitches P is within this range, the number of lateral grooves is within an appropriate range according to the number of pitches, making it easier to grip bumps when going over them. Since the bump-going performance is less favorable as the outer diameter OD is smaller, it is desirable to reduce the pitch and increase block rigidity. The above average number of pitches P preferably satisfies OD / 180 ≤ P ≤ OD / 60 with respect to the outer diameter OD. For example, when the outer diameter OD is 300 [mm], the number of pitches P is preferably a natural number between 2 and 6. Also, when the outer diameter OD is 650 [mm], the number of pitches P is preferably a natural number between 4 and 13.
[0201] Here, the average pitch count is the average value of the pitch counts within the ribs within the tire contact length, assuming that the number of pitches within the ribs within the tire contact length fluctuates with each tire rotation. Furthermore, if there are multiple ribs with different pitch counts, the average pitch count is calculated by averaging the values for each rib.
[0202] The tread portion preferably includes circumferential main grooves extending in the tire circumferential direction. And the number Nm [pieces] (Nm is a natural number) of the circumferential main grooves preferably satisfies SW / 400 ≦ Nm ≦ SW / 20. As the total width SW becomes wider, the ground contact width TW becomes wider. Therefore, when the number of the circumferential main grooves is within the above range, the envelope characteristics are further improved and the step-over performance is improved. For example, when the total width SW is 100 [mm], the number Nm of the circumferential main grooves is preferably 1 or more and 3 or less. Also, when the total width SW is 400 [mm], the number Nm of the circumferential main grooves is preferably 1 or more and 13 or less.
[0203] It is preferable that the groove area ratio Ace of the tread portion center region Rce and the groove area ratio Ash of the region other than the tread portion center region, that is, the tread portion shoulder region Rsh, have a relationship of Ace < Ash, that is, a relationship of Ace / Ash < 1. The tread portion center region Rce has a greater influence on the noise performance than the tread portion shoulder region Rsh. Therefore, reducing the groove area ratio of the tread portion center region Rce can effectively improve the noise performance. When the total width SW is small, the ground contact width TW is narrow and the tire ground contact length TL is long, resulting in deteriorated noise performance. Therefore, it is necessary to increase the tread portion center region Rce with fewer grooves. Similarly, when the outer diameter OD is increased, the tire ground contact length TL becomes long, so it is necessary to increase the tread portion center region Rce.
[0204] Moreover, it is more preferable that the groove area ratio Ace and the groove area ratio Ash have a relationship of 0.2×(OD / 300) ≦ Ace / Ash < 1. By having this relationship, the noise performance and the low rolling resistance performance can be improved. The larger the outer diameter OD, the more necessary it is to increase the groove area ratio Ace of the tread portion center region Rce. It is more preferable that the relationship between the groove area ratio Ace and the groove area ratio Ash is 0.3×(OD / 300) ≦ Ace / Ash < 0.95. It is further preferable that the relationship between the groove area ratio Ace and the groove area ratio Ash is 0.3×(OD / 300) ≦ Ace / Ash < 0.90.
[0205] The relationship between the number of pitches Pce in the center region Rce of the tread and the number of pitches Psh in the shoulder region Rsh is preferably 0.4 ≤ Pce / Psh ≤ 1.2. This relationship between the number of pitches Pce and the number of pitches Psh improves noise performance and low rolling resistance performance. The relationship between the number of pitches Pce and the number of pitches Psh is more preferably 0.5 ≤ Pce / Psh ≤ 1.0. The number of pitches refers to the number of lateral grooves 24a or lateral grooves 24b formed with a predetermined pitch length around the circumference of the tire. When the outer diameter OD is small, it is preferable to reduce the number of pitches Pce.
[0206] In the tread center region Rce, it is preferable that the relationship between the average lateral groove width WLce [mm] within the tire contact length TL and the average number of pitches PCce [pieces] within the tire contact length TL is 1500 ≤ (WLce × PCce × OD) ≤ 33000. Since a larger outer diameter OD results in a larger contact area, it is preferable to reduce the lateral groove area within the contact surface. The above relationship between the average lateral groove width WLce and the average number of pitches PCce allows for further improvement in noise performance and low rolling resistance performance. It is even more preferable that the relationship between the average lateral groove width WLce and the average number of pitches PCce is 3000 ≤ (WLce × PCce × OD) ≤ 26000. If there are ribs with different average lateral groove widths and average number of pitches, the determination is made based on the average value for each rib.
[0207] In the tread center region Rce, it is preferable that the average number of pitches PCce [pitches] within the tire contact length TL around the entire circumference of the tire satisfies the relationship 0.005 ≤ PCce / OD ≤ 0.020. Within the range where this relationship is satisfied, the larger the outer diameter OD, the longer the tire circumference, so the number of pitches Pce can be increased and more lateral grooves can be arranged. By satisfying the above relationship, the same effect can be obtained at any contact surface, and noise performance and low rolling resistance performance can be further improved. It is even more preferable that the average number of pitches PCce [pitches] within the tire circumference satisfies the relationship 0.007 ≤ PCce / OD ≤ 0.017. Note that the average number of pitches PCce is a natural number. [Examples]
[0208] Figures 9 to 12 are charts showing the results of performance tests of tires according to embodiments of this invention.
[0209] In this performance test, several types of test tires were evaluated for (1) bump-climbing performance and (2) fuel efficiency. In addition, two types of test tires were used as an example of small diameter tires. Specifically, [A] a 235 / 45R10 test tire was mounted on a rim with a rim size of 10×8, [B] a 145 / 80R12 test tire was mounted on a rim with a rim size of 12×4.00B, and [C] a 165 / 25R5 test tire was mounted on a rim with a rim size of 5×6.5.
[0210] (1) In the evaluation of the step-climbing performance, the test tire [A] above was subjected to an internal pressure of 230 [kPa] and a load of 4.2 [kN], the test tire [B] above was subjected to an internal pressure of 80 [%] of the JATMA specified internal pressure and a load of 80 [%] of the JATMA specified load, and the test tire [C] above was subjected to an internal pressure of 230 [kPa] and a load of 1.1 [kN]. In addition, a four-wheeled low-floor vehicle equipped with the test tires on all wheels entered a step in a straight line at 10 km / h on the test course to perform step-climbing. The height of the step that could be overcome without the tires slipping was measured. The step height that could be overcome with the standard tire was set as the baseline (100), and a larger index is preferable, indicating that higher steps can be overcome and step-climbing performance is good. This evaluation was performed using an index evaluation with the comparative example as the baseline (100), and a larger value is preferable.
[0211] (2) For the fuel efficiency evaluation, the test tire [A] above was subjected to an internal pressure of 230 [kPa] and a load of 4.2 [kN], the test tire [B] above was subjected to an internal pressure of 80 [%] of the JATMA specified internal pressure and a load of 80 [%] of the JATMA specified load, and the test tire [C] above was subjected to an internal pressure of 230 [kPa] and a load of 1.1 [kN]. In addition, a four-wheeled low-floor vehicle equipped with the test tires on all wheels was driven 50 laps of a 2 km test course at a speed of 100 km / h, and the fuel consumption rate (km / l) was measured. The evaluation was performed using an index with the comparative example as the baseline (100), and a higher number indicates better fuel efficiency.
[0212] The test tire of the embodiment has the structure shown in Figure 1 and comprises a pair of bead cores 11, 11, a carcass layer 13 consisting of a single layer of carcass ply, a belt layer 14 consisting of a pair of cross belts 141, 142, a belt cover 143 and a pair of belt edge covers 144, 144, tread rubber 15, sidewall rubber 16 and rim cushion rubber 17.
[0213] The comparative example test tire has the same tire outer diameter OD = 531 [mm], tire total width SW = 143 [mm], and tire contact width TW = 123 [mm] as the test tire of Example 1, and is mounted on a rim of rim size 12.
[0214] As the test results show, the test tire in this example demonstrates that it achieves both good performance in overcoming obstacles and good fuel efficiency. [Explanation of symbols]
[0215] 1 Tire; 10 Rim; 11 Bead core; 12 Bead filler; 13 Carcass layer; 131 Main body; 132 Wrap-around section; 14 Belt layer; 141, 142 Cross belt; 143 Belt cover; 144 Belt edge cover; 15 Tread rubber; 151 Cap tread; 152 Under tread; 16 Sidewall rubber; 17 Rim cushion rubber; 18 Inner liner; 21a, 21b, 22a, 22b Circumferential main groove; 24a, 24b, 25a, 25b Lateral groove
Claims
1. A tire comprising a pair of bead cores, a carcass layer spanning the bead cores, a belt layer positioned radially outward of the carcass layer, and a tread portion, The tire outer diameter (OD) [mm] is in the range of 250 ≤ OD ≤ 580. The total tire width SW [mm] is in the range of 100 ≤ SW ≤ 400. The groove area ratio Aa[%] across the entire tread portion is in the range of 25 + 100 × (25.4 / OD) ≤ Aa ≤ 50 + 100 × (25.4 / OD), A tire characterized in that the total gauge Gu [mm] of the tire side portion at point Au on the side profile, which is at the same position in the tire radial direction with respect to the end of the innermost layer of the belt layer, is in the range of 0.010 ≤ Gu / OD ≤ 0.080 with respect to the tire outer diameter OD [mm].
2. The maximum groove depth Gmax [mm] across the entire tread area is, The tire according to claim 1, satisfying 0.006 ≤ Gmax / OD ≤ 0.
083.
3. The tread portion has circumferential main grooves extending in the circumferential direction of the tire, The aforementioned circumferential main groove has a groove width of 3 mm or more. Projection area C [mm²] of the circumferential main groove 2 ]teeth, A tire according to claim 1 or claim 2, satisfying 0.03 ≤ C / (SW × OD) ≤ 1.
01.
4. The average number of pitches P within the tire contact length in the contact area of the tread portion. [piece] (where P is a natural number) is a tire according to any one of claims 1 to 3, satisfying OD / 200 ≤ P ≤ OD / 50 with respect to the outer diameter OD [mm].
5. The tread portion is provided with circumferential main grooves extending in the circumferential direction of the tire, The tire according to any one of claims 1 to 4, wherein the number of circumferential main grooves Nm [grooves] (where Nm is a natural number) satisfies SW / 400 ≤ Nm ≤ SW / 30.
Citation Information
Patent Citations
Pneumatic tire
JP1995081303A
Motor vehicle and combination of front wheel and rear wheel pneumatic tires used therefor
JP2000158908A
Pneumatic tire
JP2000309206A
Pneumatic tire
JP2005047441A
Pneumatic tire
JP2005231430A