Motorcycle tires
The motorcycle tire design addresses turning performance imbalances by optimizing the geometric and structural features of both front and rear tires, resulting in improved steering characteristics and agility.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- SUMITOMO RUBBER INDUSTRIES LTD
- Filing Date
- 2022-03-30
- Publication Date
- 2026-05-19
AI Technical Summary
Motorcycle tires often exhibit oversteering or understeering tendencies due to imbalances in turning performance between the front and rear tires, limiting the vehicle's overall performance.
A pair of tires for motorcycles, comprising a front tire and a rear tire, with specific geometric and structural designs including inclined carcass cords, circumferentially extending bands, and tread surfaces divided into distinct arc sections, with defined radius ratios to optimize turning performance.
The tire design improves the vehicle's turning performance by balancing the forces between the front and rear tires, reducing steering imbalances and enhancing agility and responsiveness.
Smart Images

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Abstract
Description
Technical Field
[0005]
[0001] The present invention relates to a pair of tires for motorcycles.
Background Art
[0002] A motorcycle turns by tilting its body. The tread surface of the tire mounted on the motorcycle has a rounded shape. In straight running, the portion of the equatorial plane of the tread surface mainly contacts the road surface. In turning running, the outer portion in the axial direction of the tread surface mainly contacts the road surface. In the case of motorcycle tires, in order to improve performance such as turning performance and agility, attempts have been made to define the radius of curvature of the tread surface according to the area of the tread surface (for example, Patent Document 1 below).
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In a motorcycle, even if the turning force of the front tire is increased, for example, if the rear tire does not have sufficient turning force, the steering characteristics show an oversteering tendency. Even if the front tire has high turning performance, if the rear tire has higher turning performance than the front tire, the steering characteristics show an understeering tendency. For example, even if measures for improving turning performance are taken for the front tire, depending on the rear tire to be combined, the measures taken for this front tire may not be fully utilized. In order to improve the performance of the vehicle, it is necessary to tune not only the front tire but also the rear tire.
[0005] This invention has been made in view of these circumstances. The object of this invention is to provide a pair of tires for a motorcycle that can improve the turning performance of the vehicle. [Means for solving the problem]
[0006] A pair of tires for a two-wheeled vehicle according to one aspect of the present invention comprises a front tire and a rear tire. In this tire pair, each of the front tire and the rear tire comprises a pair of beads, a carcass spanning between a first bead and a second bead of the pair of beads, a band located radially outward of the carcass, and a tread located radially outward of the band. The carcass includes a number of parallel carcass cords, each carcass cord inclined with respect to the equatorial plane. The band includes band cords that extend substantially circumferentially. The tread has a tread surface that contacts the road surface. In a meridional cross-section, the contour of the tread surface is divided into five parts by dividing the portion from the equator to the edge of the tread surface in a length ratio of 1:2:1. The five parts are a center portion including the equator, a pair of middle portions connected to the center portion, and a pair of shoulder portions connected to the middle portions. The first arc is the arc passing through the equator and both ends of the center section, the second arc is the arc passing through the inner and outer ends and their centers of the middle section, and the third arc is the arc passing through the inner and outer ends and their centers of the shoulder section. The ratio of the radius R1f of the first arc of the front tire to the radius R1r of the first arc of the rear tire (R1f / R1r) is the center arc index, the ratio of the radius R2f of the second arc of the front tire to the radius R2r of the second arc of the rear tire (R2f / R2r) is the middle arc index, and the ratio of the radius R3f of the third arc of the front tire to the radius R3r of the third arc of the rear tire (R3f / R3r) is the shoulder arc index. The middle arc index is equal to or greater than the center arc index. The shoulder arc index is smaller than the center arc index.
[0007] Preferably, in this pair of motorcycle tires, the middle arc index is 0.50 or higher, and the shoulder arc index is 0.35 or higher.
[0008] Preferably, in this pair of motorcycle tires, the radial distance from the equator to the edge of the tread surface is the tread height. In the front tire, the ratio of the tread height to the outer diameter is 5.0% to 10.0%, and in the rear tire, the ratio of the tread height to the outer diameter is 8.5% to 15.0%.
[0009] Preferably, in this pair of motorcycle tires, the ratio of the radius R1f of the first arc to the outer diameter of the front tire is 8.0% or more and 13.0% or less, and the ratio of the radius R1r of the first arc to the outer diameter of the rear tire is 9.0% or more and 21.0% or less.
[0010] Preferably, in this pair of motorcycle tires, the tread surface does not have grooves that intersect the equator.
[0011] Preferably, in this pair of motorcycle tires, the angle that the carcass cords make with respect to the equatorial plane is between 20 degrees and 65 degrees.
[0012] More preferably, in this pair of motorcycle tires, the carcass cords are made of organic fibers. [Effects of the Invention]
[0013] According to the present invention, a pair of tires for a motorcycle that can improve the turning performance of the vehicle can be obtained. [Brief explanation of the drawing]
[0014] [Figure 1] Figure 1 is a cross-sectional view showing a portion of a front tire constituting a pair of tires for a motorcycle according to one embodiment of the present invention. [Figure 2] Figure 2 is a schematic diagram illustrating the configuration of the carcass and band in the front tire. [Figure 3] Figure 3 is a cross-sectional view illustrating the contour line of the tread surface of a front tire. [Figure 4] Figure 4 is a developed view showing a modified example of the tread surface. [Figure 5] Figure 5 is a cross-sectional view showing a part of a rear tire that constitutes a pair of tires for a two-wheeled vehicle according to an embodiment of the present invention. [Figure 6] Figure 6 is a schematic view illustrating the structure of a carcass and a band in a rear tire. [Figure 7] Figure 7 is a cross-sectional view illustrating the contour line of the tread surface of a rear tire.
Embodiments for Carrying Out the Invention
[0015] Hereinafter, the present invention will be described in detail based on preferred embodiments with reference to the drawings as appropriate.
[0016] A tire is assembled to a rim. Air is filled inside the tire, and the internal pressure of the tire is adjusted. In the present disclosure, a tire assembled to a rim is a tire-rim assembly. The tire-rim assembly includes a rim and a tire assembled to this rim.
[0017] In the present disclosure, a state in which a tire is assembled to a standard rim, the internal pressure of the tire is adjusted to a standard internal pressure, and no load is applied to this tire is referred to as a standard state.
[0018] In the present disclosure, unless otherwise specified, the dimensions and angles of each part of the tire are measured in the standard state. Dimensions and angles of each part in the meridian cross-section of the tire that cannot be measured in the state where the tire is assembled to the standard rim are measured in the cross-section of the tire obtained by cutting the tire along a plane including the rotation axis, with the distance between the left and right beads made to coincide with the distance between the beads in the tire assembled to the standard rim.
[0019] The standard rim means the rim defined in the standards on which the tire depends. The "Standard Rim" in the JATMA standard, the "Design Rim" in the TRA standard, and the "Measuring Rim" in the ETRTO standard are standard rims. Unless otherwise specified, the rim in the present disclosure means the standard rim.
[0020] The standard internal pressure means the internal pressure defined in the standards on which the tire depends. The "Maximum Air Pressure" in the JATMA standard, the "Maximum Value" published in "TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES" in the TRA standard, and the "INFLATION PRESSURE" in the ETRTO standard are standard internal pressures.
[0021] The standard load means the load defined in the standards on which the tire depends. The "Maximum Load Capacity" in the JATMA standard, the "Maximum Value" published in "TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES" in the TRA standard, and the "LOAD CAPACITY" in the ETRTO standard are standard loads.
[0022] In the present disclosure, the tread portion of the tire is the portion of the tire that contacts the road surface. The bead portion is the portion of the tire that is fitted to the rim. The side portion is the portion of the tire that bridges between the tread portion and the bead portion. The tire includes, as parts, a tread portion, a pair of bead portions, and a pair of side portions.
[0023] A pair of tires for a two-wheeled vehicle according to an embodiment of the present invention includes a front tire mounted on the front wheel of a two-wheeled vehicle (not shown) and a rear tire mounted on the rear wheel. The front tire and the rear tire will be described below.
[0024] [Front Tire] Figure 1 shows a portion of the cross-section of the front tire 2 (hereinafter also referred to as the meridian cross-section) along the plane containing the rotation axis of the tire 2. In Figure 1, the left-right direction is the axial direction of the tire 2, and the up-down direction is the radial direction of the tire 2. The direction perpendicular to the plane of the paper in Figure 1 is the circumferential direction of the tire 2. In Figure 1, the dashed line ELf is the equatorial plane of the tire 2.
[0025] In Figure 1, tire 2 is mounted on rim Rf (regular rim). Air is filled inside tire 2, and the internal pressure of tire 2 is adjusted.
[0026] This tire 2 comprises a tread 4, a pair of sidewalls 6, a pair of beads 8, a carcass 10, a band 12, and an inner liner 14.
[0027] The tread 4 is made of cross-linked rubber. The tread 4 is located radially outward of the band 12. The tread 4 has a tread surface 16 that contacts the road surface. The tire 2 contacts the road surface at the tread surface 16. As shown in Figure 1, in the meridian cross-section, the tread surface 16 is curved such that its equatorial portion protrudes radially outward. The tread of tire 2 (tire 2) has no grooves. This tire 2 is a slick tire.
[0028] In Figure 1, the position indicated by the symbol Ef is the intersection of the tread surface 16 and the equatorial surface. Intersection Ef is the equator of tire 2. If a groove is located on the equatorial surface, the equator Ef is determined based on the virtual outer surface (tread contour line TLf, described later) obtained by assuming the absence of a groove. The equator Ef is also the radial outer edge of tire 2.
[0029] In Figure 1, the position indicated by the symbol Fe is the edge of the tread surface 16. The length indicated by the double arrow TWf is the width of the tread surface 16. The width TWf of the tread surface 16 is represented by the axial distance from the first edge Fe to the second edge Fe of the tread surface 16. The edge Fe of the tread surface 16 of this tire 2 is the axial outer edge of the tire 2.
[0030] Each sidewall 6 is made of cross-linked rubber. The sidewall 6 is connected to the edge of the tread 4. The sidewall 6 is located radially inward of the tread 4.
[0031] Each bead 8 is located radially inward of the sidewall 6. Each bead 8 comprises a core 18 and an apex 20. Although not shown, the core 18 contains steel wires. The apex 20 is located radially outward of the core 18. The apex 20 tapers outward. The apex 20 is made of cross-linked rubber with high rigidity.
[0032] The carcass 10 is located inside the tread 4 and a pair of sidewalls 6. The carcass 10 spans between the first bead 8 and the second bead 8 of a pair of beads 8.
[0033] The carcass 10 includes at least one carcass ply 22. The carcass 10 of this tire 2 is composed of one carcass ply 22. The carcass ply 22 includes a ply body 22a that spans between the first core 18 and the second core 18, and a pair of folded portions 22b that are connected to the ply body 22a and folded back axially from the inside to the outside around each core 18.
[0034] Figure 2 shows the configuration of the carcass 10 together with the band 12, which will be described later. In Figure 2, the left-right direction is the axial direction of the tire 2, and the up-down direction is the circumferential direction of the tire 2. The direction perpendicular to the plane of the paper is the radial direction of the tire 2. The front side of the paper is the radially outward direction, and the back side is the radially inward direction.
[0035] As shown in Figure 2, the carcass ply 22 constituting the carcass 10 contains a number of parallel carcass cords 24. In Figure 2, for ease of explanation, the carcass cords 24 are represented by solid lines, but the carcass cords 24 are covered with topping rubber 26.
[0036] Each carcass cord 24 is inclined with respect to the equatorial plane. In Figure 2, the angle indicated by the sign θf is the angle (inclination angle θf) that the carcass cord 24 in the carcass ply 22 makes with respect to the equatorial plane. In this tire 2, the inclination angle θf of the carcass cord 24 is between 20 degrees and 65 degrees.
[0037] In this tire 2, the carcass cord 24 can be made of organic fibers (organic fiber cord). Examples of organic fibers include nylon fibers, rayon fibers, polyester fibers, and aramid fibers. In this tire 2, the carcass cord 24 may also be made of inorganic fibers. In this case, examples of inorganic fibers include glass fibers and carbon fibers. In this tire 2, from the viewpoint of achieving a good balance between strength and handling stability, it is preferable that the carcass cord 24 be an organic fiber cord.
[0038] Band 12 is located radially outward of the carcass 10. Band 12 is laminated on the carcass 10 radially inward of the tread 4. Band 12 is located between the tread 4 and the carcass 10.
[0039] The band 12 includes a helically wound band cord 28. In Figure 2, for illustrative purposes, the band cord 28 is represented by a solid line, but the band cord 28 is covered with topping rubber 30. In this tire 2, the band cord 28 extends substantially circumferentially. More specifically, the angle that the band cord 28 makes with respect to the circumferential direction is 5° or less. The band 12 is also called a jointless band.
[0040] In this tire 2, a cord made of organic fibers (organic fiber cord) can be used as the band cord 28. Examples of organic fibers include nylon fibers, rayon fibers, polyester fibers, and aramid fibers. In this tire 2, the band cord 28 may also be a cord made of inorganic fibers. In this case, glass fibers and carbon fibers are suggested as inorganic fibers. The band cord 28 may also be a steel cord.
[0041] In Figure 1, the position indicated by the symbol Bf is the end of band 12. The length indicated by the double arrow BWf is the width of band 12. The width BWf of band 12 is represented by the axial distance from the first end Bf to the second end Bf of band 12. In this tire 2, the ratio of the width BWf of band 12 to the width TWf of the tread surface 16 (BWf / TWf) is between 0.80 and 0.95.
[0042] The inner liner 14 is located inside the carcass 10. The inner liner 14 forms the inner surface of the tire 2. The inner liner 14 is made of cross-linked rubber with a low gas permeability coefficient. The inner liner 14 maintains the internal pressure of the tire 2.
[0043] In Figure 1, the length indicated by the symbol Hf is the tread height. The tread height Hf is the radial distance from the equator Ef to the edge Fe of the tread surface 16. The length indicated by the symbol Df is the outer diameter of tire 2. The outer diameter Df is measured in tire 2 under normal conditions.
[0044] In this tire 2, the ratio of tread height Hf to outer diameter Df (Hf / Df) is preferably 5.0% or more and 10.0% or less. By setting this ratio (Hf / Df) to 5.0% or higher, sufficient turning force can be obtained with this tire 2. From this viewpoint, a ratio (Hf / Df) of 7.0% or higher is more preferable, and 8.2% or higher is even more preferable. By setting this ratio (Hf / Df) to 10.0% or less, sufficient rigidity can be obtained in the side portion of tire 2. From this viewpoint, a ratio (Hf / Df) of 9.0% or less is more preferable, and 8.5% or less is even more preferable.
[0045] Figure 3 shows the contour of tire 2 in a meridian cross-section. This contour of tire 2 can be obtained, for example, by measuring the outer surface shape of tire 2 in a normal state using a displacement sensor. Of the contour lines, the portion from the first edge Fe of the tread surface 16 to its second edge Fe is the contour line TLf of the tread surface 16 (hereinafter referred to as the tread contour line TLf). For example, if grooves are cut into the tread 4, the contour line of the part with grooves is represented by a virtual contour line obtained as if there were no grooves. The contour line of the tread surface of the rear tire, which will be described later, is obtained in the same manner as this contour line TLf.
[0046] In Figure 3, the tread contour line TLf has a shape symmetrical with respect to the equatorial plane. In this tire 2, the tread contour line TLf is divided into five parts by dividing the portion from the equator Ef to the edge Fe of the tread surface 16 in a length ratio of 1:2:1.
[0047] Of the five parts, the part located in the center in the axial direction is the center section CLf. The center section CLf includes the equator Ef. The part located axially outside the center section CLf is the middle section MLf. The middle section MLf is connected to the center section CLf. The part located axially outside the middle section MLf is the shoulder section SLf. The shoulder section SLf is connected to the middle section MLf. The five parts are the central section CLf, which includes the equatorial region Ef; a pair of middle sections MLf connected to the central section CLf; and a pair of shoulder sections SLf connected to the middle sections MLF.
[0048] In Figure 3, the position indicated by the symbol CMf is the boundary between the center section CLf and the middle section MLf. Boundary CMf is the edge of the center section CLf and the inner edge of the middle section MLf. The position indicated by the symbol MSf is the boundary between the middle section MLf and the shoulder section SLf. Boundary MSf is the outer edge of the middle section MLf and the inner edge of the shoulder section SLf. The outer edge of the shoulder section SLf is the edge Fe of the tread surface 16. The shoulder section SLf of this tire 2 includes the edge Fe of the tread surface 16.
[0049] In this tire 2, the length of the portion of the tread contour line TLf from the first boundary CMf to the second boundary CMf, i.e., the length of the center portion CLf, is 1 / 4 of the length of the tread surface 16 from the first end Fe to the second Fe end, i.e., the length of the tread contour line TLf. The length of the middle section MLf, which is the portion of the tread contour line TLf from boundary CMf to boundary MSf, is 1 / 4 of the length of the tread contour line TLf. The length of the portion of the tread contour line TLf from the boundary MSf to the edge Fe of the tread surface 16, i.e., the length of the shoulder portion SLf, is 1 / 8 of the length of the tread contour line TLf.
[0050] In this tire 2, the first circular arc is the arc that passes through the equator Ef and both ends CMf of the center section CLf. In Figure 3, arrow R1f is the radius of the first circular arc. Although not shown, the center of the first circular arc lies on the equatorial plane. The second arc is the arc that passes through the inner end CMf and outer end MSf of the middle section MLf, and their centers. In Figure 3, arrow R2f is the radius of the second arc. The center of the middle section MLf is the intersection of the perpendicular bisector of the line segment connecting the inner end CMf and the outer end MSf with the middle section MLf. The third arc is the arc that passes through the inner end MSf and outer end Fe of the shoulder portion SLf, and their centers. In Figure 3, arrow R3f is the radius of the third arc. The center of the shoulder portion SLf is the intersection of the perpendicular bisector of the line segment connecting the inner end MSf and the outer end Fe with the shoulder portion SLf.
[0051] In this tire 2, the ratio of the radius R1f of the first arc to the outer diameter Df (R1f / Df) is preferably 8.0% or more and 13.0% or less. Setting the ratio (R1f / Df) to 8.0% or higher suppresses understeer in the initial stages of cornering. From this perspective, a ratio (R1f / Df) of 9.0% or higher is more preferable, and 9.7% or higher is even more preferable. Setting the ratio (R1f / Df) to 13.0% or less improves initial responsiveness. From this perspective, a ratio (R1f / Df) of 12.0% or less is more preferable.
[0052] In this tire 2, the ratio of the radius R2f of the second arc to the radius R1f of the first arc (R2f / R1f) is preferably 0.99 or more and 1.22 or less. By setting the ratio (R2f / R1f) to 0.99 or higher, understeer in the initial stages of a turn is suppressed. By setting the ratio (R2f / R1f) to 1.22 or less, sufficient turning force can be obtained with this tire 2.
[0053] In this tire 2, the ratio of the radius R3f of the third arc to the radius R2f of the second arc (R3f / R2f) is preferably 0.79 or more and 1.06 or less. Setting the ratio (R3f / R2f) to 0.79 or higher suppresses understeer in the initial stages of a turn. From this perspective, a ratio (R3f / R2f) of 1.01 or higher is more preferable. By setting the ratio (R3f / R2f) to 1.06 or less, sufficient turning force can be obtained with this tire 2.
[0054] As mentioned above, the tread surface 16 of this tire 2 does not have grooves. The tread surface 16 does not have grooves that intersect the equator Ef. This tire 2 has higher rigidity in the equatorial surface, which is the part that mainly contacts the road surface during straight-line driving, compared to a tire with grooves that intersect the equator. This tire 2 can quickly transition from straight-line driving to cornering. This tire 2 has excellent initial response.
[0055] Figure 4 shows a modified example of the tread surface 16. As shown in Figure 4, grooves can be etched into the tread surface 16 of this tire 2. By etching grooves into the tread surface 16, a tread pattern like the one shown in Figure 4 can be formed. In Figure 4, the left-right direction is the axial direction of tire 2, and the up-down direction is the circumferential direction of tire 2. The direction perpendicular to the plane of paper in Figure 4 is the radial direction of tire 2. In Figure 4, arrow A indicates the direction of rotation of tire 2. This tread surface 16 is shown in Figure 4. under From the side above It makes contact with the road surface towards the side. The upper part of the paper rear The receiving side is the bottom side of the paper. destination This is the wearing side. The tread pattern in Figure 4 is an example of a tread pattern that can be engraved on the tread surface 16 of this tire 2. The tread patterns that can be engraved on the tread surface 16 of this tire 2 will be explained using Figure 4.
[0056] The tread surface 16 shown in Figure 4 has inclined grooves 34 as grooves 32. The inclined grooves 34 are inclined with respect to the circumferential direction. rear The contact end 36a is located on the Fe side of the tread surface 16. destination The endpoint 36b is located on the equatorial side Ef. The inclined groove 34 comprises a first inclined groove 34a carved between the equator Ef and the first end Fea of the tread surface 16, and a second inclined groove 34b carved between the equator Ef and the second end Feb of the tread surface 16. On this tread surface 16, a plurality of first inclined grooves 34a are arranged circumferentially at a constant pitch. A plurality of second inclined grooves 34b are arranged circumferentially at a constant pitch. The first inclined grooves 34a and the second inclined grooves 34b are arranged alternately in the circumferential direction.
[0057] As shown in Figure 4, the entire first inclined groove 34a is located between the equator Ef and the edge Fe of the tread surface 16. The entire second inclined groove 34b is also located between the equator Ef and the edge Feb of the tread surface 16. Even on this tread surface 16, there are no grooves that intersect the equator Ef. Therefore, even in this case, the tire 2 has higher rigidity in the equatorial surface portion that mainly contacts the road surface during straight-line driving compared to a tire with grooves that intersect the equator. The tire 2 can quickly transition from straight-line driving to cornering. The tire 2 has excellent initial response. From the viewpoint of obtaining good initial response, it is preferable that the tread surface 16 of this tire 2 does not have grooves that intersect the equator Ef.
[0058] [Rear tire] Figure 5 shows a portion of the cross-section of the rear tire 42 (hereinafter referred to as the meridian cross-section) along the plane containing the rotation axis of the tire 42. In Figure 5, the left-right direction is the axial direction of the tire 42, and the up-down direction is the radial direction of the tire 42. The direction perpendicular to the plane of the paper in Figure 5 is the circumferential direction of the tire 42. In Figure 5, the dashed line ELr is the equatorial plane of the tire 42.
[0059] In Figure 5, the tire 42 is mounted on the rim Rr (regular rim). Air is filled inside the tire 42, and the internal pressure of the tire 42 is adjusted.
[0060] The tire 42 comprises a tread 44, a pair of sidewalls 46, a pair of beads 48, a carcass 50, a band 52, and an inner liner 54.
[0061] The tread 44 is made of cross-linked rubber. The tread 44 is located radially outward of the band 52. The tread 44 has a tread surface 56 that contacts the road surface. The tire 42 contacts the road surface at the tread surface 56. As shown in Figure 5, in the meridian cross-section, the tread surface 56 is curved such that its equatorial portion protrudes radially outward. The tread of this tire 42 has no grooves. This tire 42 is a slick tire.
[0062] In Figure 5, the position indicated by the symbol Er is the intersection of the tread surface 56 and the equatorial plane. Intersection Er is the equator of the tire 42. When a groove is located on the equatorial plane, the equatorial Er is determined based on the tread contour line TLr, which will be described later. The equatorial Er is also the radial outer edge of the tire 42.
[0063] In Figure 5, the position indicated by the symbol Re is the edge of the tread surface 56. The length indicated by the double arrow TWr is the width of the tread surface 56. The width TWr of the tread surface 56 is expressed as the axial distance from the first edge Re to the second edge Re of the tread surface 56. The edge Re of the tread surface 56 of this tire 42 is the axial outer edge of the tire 42. The width TWr of the tread surface 56 of this tire 42 is also called the total width (see JATMA, etc.).
[0064] Each sidewall 46 is made of cross-linked rubber. The sidewall 46 is connected to the edge of the tread 44. The sidewall 46 is located radially inward of the tread 44.
[0065] Each bead 48 is located radially inward of the sidewall 46. The bead 48 comprises a core 58 and an apex 60. Although not shown, the core 58 contains steel wires. The apex 60 is located radially outward of the core 58. The apex 60 tapers outward. The apex 60 is made of cross-linked rubber with high rigidity.
[0066] The carcass 50 is located inside the tread 44 and a pair of sidewalls 46. The carcass 50 spans between the first bead 48 and the second bead 48 of a pair of beads 48.
[0067] The carcass 50 includes at least one carcass ply 62. The carcass 50 of this tire 42 consists of one carcass ply 62. Carcass ply 62 It includes a ply body 62a that spans between the first core 58 and the second core 58, and a pair of folded portions 62b that are connected to the ply body 62a and folded back axially from the inside to the outside around each core 58.
[0068] Figure 6 shows the configuration of the carcass 50 together with the band 52, which will be described later. In Figure 6, the left-right direction is the axial direction of the tire 42, and the up-down direction is the circumferential direction of the tire 42. The direction perpendicular to the plane of the paper is the radial direction of the tire 42. The front side of the paper is the radially outward direction, and the back side is the radially inward direction.
[0069] As shown in Figure 6, the carcass ply 62 constituting the carcass 50 contains a number of parallel carcass cords 64. In Figure 6, for the sake of clarity, the carcass cords 64 are represented by solid lines, but the carcass cords 64 are covered with topping rubber 66.
[0070] Each carcass cord 64 is inclined with respect to the equatorial plane. In Figure 6, the angle indicated by the sign θr is the angle (inclination angle θr) that the carcass cord 64 in the carcass ply 62 makes with respect to the equatorial plane. In this tire 42, the inclination angle θr of the carcass cord 64 is between 20 degrees and 65 degrees.
[0071] In this tire 42, the carcass cord 64 can be made of organic fibers (organic fiber cord). Examples of organic fibers include nylon fibers, rayon fibers, polyester fibers, and aramid fibers. In this tire 42, the carcass cord 64 may also be made of inorganic fibers. In this case, examples of inorganic fibers include glass fibers and carbon fibers. Example It will be done. In this tire 42, it is preferable that the carcass cord 64 be an organic fiber cord, from the viewpoint of achieving a good balance between strength and handling stability.
[0072] Band 52 is located radially outward of the carcass 50. Band 52 is laminated on the carcass 50 radially inward of the tread 44. Band 52 is located between the tread 44 and the carcass 50.
[0073] The band 52 includes a helically wound band cord 68. In Figure 6, for ease of explanation, the band cord 68 is represented by a solid line, but the band cord 68 is covered with topping rubber 70. In this tire 42, the band cord 68 extends substantially circumferentially. More specifically, the angle that the band cord 68 makes with respect to the circumferential direction is 5° or less. The band 52 is also called a jointless band.
[0074] The tire 42 may use a cord made of organic fibers (organic fiber cord) as the band cord 68. Examples of organic fibers include nylon fibers, rayon fibers, polyester fibers, and aramid fibers. In this tire 42, the band cord 68 may also be a cord made of inorganic fibers. In this case, examples of inorganic fibers include glass fibers and carbon fibers. Example This band code 68 may also be a steel cord.
[0075] In Figure 5, the position indicated by the symbol Br is the end of band 52. The length indicated by the double arrow BWr is the width of band 52. r This is expressed as the axial distance from the first end Br to the second end Br of the band 52. In this tire 42, the ratio of the width BWr of the band 52 to the width TWr of the tread surface 56 (BWr / TWr) is between 0.80 and 0.95.
[0076] The inner liner 54 is located inside the carcass 50. The inner liner 54 forms the inner surface of the tire 42. The inner liner 54 is made of cross-linked rubber with a low gas permeability coefficient. The inner liner 54 is made of tire 42 It maintains the internal pressure.
[0077] In Figure 5, the length indicated by the symbol Hr is the tread height. The tread height Hr is the radial distance from the equator Er to the edge Re of the tread surface 56. The length indicated by the symbol Dr is the outer diameter of this tire 42. The outer diameter Dr is measured in a tire 42 in a normal state.
[0078] In this tire 42, the ratio of tread height Hr to outer diameter Dr (Hr / Dr) is preferably 8.5% or more and 15.0% or less. By setting the ratio (Hr / Dr) to 8.5% or higher, sufficient cornering force can be obtained with this tire 42. From this perspective, a ratio (Hr / Dr) of 9.1% or higher is more preferable. By setting the ratio (Hr / Dr) to 15.0% or less, sufficient rigidity can be obtained in the sidewall of this tire 42. From this viewpoint, a ratio (Hr / Dr) of 9.5% or less is more preferable.
[0079] Figure 7 shows the contour lines of the rear tire 42 in a meridian cross-section. Of the contour lines shown in Figure 7, the portion from the first edge Re of the tread surface 56 to its second edge Re is the contour line TLr of the tread surface 56 (hereinafter referred to as the tread contour line TLr).
[0080] In Figure 7, the tread contour line TLr has a shape symmetrical with respect to the equatorial plane. In this tire 42, the tread contour line TLr is divided into five parts by dividing the portion from the equator Er to the edge Re of the tread surface 56 in a length ratio of 1:2:1.
[0081] Of the five parts, the part located in the center in the axial direction is the center section CLr. The center section CLr includes the equator Er. The part located axially outside the center section CLr is the middle section MLr. The middle section MLr is connected to the center section CLr. The part located axially outside the middle section MLr is the shoulder section SLr. The shoulder section SLr is connected to the middle section MLr. The five parts are the central section CLr, which includes the equatorial section Er; a pair of middle sections MLr connected to the central section CLr; and a pair of shoulder sections SLr connected to the middle sections MLr.
[0082] In Figure 7, the position indicated by the symbol CMr is the boundary between the center section CLr and the middle section MLr. Boundary CMr is the edge of the center section CLr and the inner edge of the middle section MLr. The position indicated by the symbol MSr is the boundary between the middle section MLr and the shoulder section SLr. Boundary MSr is the outer edge of the middle section MLr and the inner edge of the shoulder section SLr. The outer edge of the shoulder section SLr is the edge Re of the tread surface 56. The shoulder section SLr of this tire 42 includes the edge Re of the tread surface 56.
[0083] In this tire 42, the length of the portion of the tread contour line TLr from the first boundary CMr to the second boundary CMr, i.e., the length of the center portion CLr, is 1 / 4 of the length of the tread surface 56 from the first edge Re to the second edge Re, i.e., the length of the tread contour line TLr. Among the tread contour lines (TLr), the boundary line (CM) r From Boundary MS r The length of the section up to that point, i.e., the length of the middle section MLr, is 1 / 4 the length of the tread contour line TLr. The length of the portion of the tread contour line TLr from the boundary MSr to the edge Re of the tread surface 56, i.e., the length of the shoulder portion SLr, is 1 / 8 of the length of the tread contour line CLr.
[0084] In this tire 42, the first circular arc is the arc that passes through the equator Er and both ends CMr of the center section CLr. In Figure 7, arrow R1r is the radius of the first circular arc. Although not shown, the center of the first circular arc lies on the equatorial plane. The second arc is the arc that passes through the inner end CMr and outer end MSr of the middle section MLr, and their centers. In Figure 7, arrow R2r is the radius of the second arc. The center of the middle section MLr is the intersection of the perpendicular bisector of the line segment connecting the inner end CMr and the outer end MSr with the middle section MLr. The third arc is the arc that passes through the inner end MSr and outer end Re of the shoulder portion SLr, and their centers. In Figure 7, arrow R3r is the radius of the third arc. The center of the shoulder portion SLr is the intersection of the perpendicular bisector of the line segment connecting the inner end MSr and the outer end Re with the shoulder portion SLr.
[0085] In this tire 42, it is preferable that the ratio of the radius R1r of the first arc to the outer diameter Dr (R1r / Dr) is between 9.0% and 21.0%. Setting the ratio (R1r / Dr) to 9.0% or higher helps to suppress understeer in the initial stages of cornering. From this perspective, a ratio of 9.1% or higher is more preferable. Setting this ratio to 21.0% or less improves initial responsiveness. From this perspective, a ratio of 20.7% or less is more preferable.
[0086] In this tire 42, the ratio of the radius R2r of the second arc to the radius R1r of the first arc (R2r / R1r) is preferably 0.84 or more and 1.19 or less. By setting the ratio (R2r / R1r) to 0.84 or higher, understeer in the initial stages of cornering is effectively suppressed. From this perspective, a ratio (R2r / R1r) of 0.94 or higher is more preferable, and 0.99 or higher is even more preferable. By setting the ratio (R2r / R1r) to 1.19 or less, sufficient cornering force can be obtained with this tire 42.
[0087] In this tire 42, the ratio of the radius R3r of the third arc to the radius R2r of the second arc (R3r / R2r) is preferably 0.81 or more and 1.44 or less. The ratio (R3r / R2r) 0.81 By setting the values as described above, understeer in the initial stages of a turn is effectively suppressed. From this perspective, a ratio (R3r / R2r) of 0.93 or higher is more preferable, and 1.15 or higher is even more preferable. By setting the ratio (R3r / R2r) to 1.44 or less, sufficient cornering force can be obtained with this tire 42.
[0088] As mentioned above, the tread surface 56 of this tire 42 does not have grooves. The tread surface 56 does not have grooves that intersect the equator Er. This tire 42 has higher rigidity in the equatorial surface, which is the part that mainly contacts the road surface during straight-line driving, compared to tires with grooves that intersect the equator. This tire 42 can quickly transition from straight-line driving to cornering. This tire 42 has excellent initial response.
[0089] This tire 42, like the tread surface 16 of the front tire 2 described above, can also have grooves cut into its tread surface 56. In this case, similar to the tread surface 16, the tread pattern (not shown) is constructed so as not to include grooves that intersect the equator Er. This tire 42 has higher rigidity in the equatorial surface portion that mainly contacts the road surface during straight-line driving compared to a tire with grooves that intersect the equator. This tire 42 can quickly transition from straight-line driving to cornering driving. This tire 42 has excellent initial response. In this tire 42, from the viewpoint of obtaining good initial response, it is preferable that the tread surface 56 does not have grooves that intersect the equator Er.
[0090] [Tire vs] A tire pair according to one embodiment of the present invention consists of the front tire 2 described above and the rear tire 42. In this tire pair, in order to effectively contribute to improving the turning performance of the vehicle, the tread contour line TLf of the front tire 2 and the tread contour line TLr of the rear tire 42 are set in an exquisite balance.
[0091] In this tire pair, the following center arc index Ac, middle arc index Am, and shoulder arc index As are used to appropriately set the tread contour lines TLf and TLr. The center arc index Ac is the ratio (R1f / R1r) of the radius R1f of the first arc of the front tire 2 to the radius R1r of the first arc of the rear tire 42. The middle arc index Am is the ratio (R2f / R2r) of the radius R2f of the second arc of the front tire 2 to the radius R2r of the second arc of the rear tire 42. The shoulder arc index As is the ratio (R3f / R3r) of the radius R3f of the third arc of the front tire 2 to the radius R3r of the third arc of the rear tire 42.
[0092] In corners where a vehicle turns at high speed (hereinafter referred to as high-speed corners), the portion of the tire tread surface corresponding to the center and middle portions of the tread contour line is used. Specifically, in the tread surface 16 of the front tire 2, the portion corresponding to the center portion CLf and middle portion MLf of the tread contour line TLf is used, and in the tread surface 56 of the rear tire 42, the portion corresponding to the center portion CLr and middle portion MLr of the tread contour line TLr is used.
[0093] In this tire pair, the middle arc index Am is equal to or greater than the center arc index Ac. In the initial stages of cornering, the rear tire 42 of this tire pair exhibits a smaller canvas thrust compared to the canvas thrust generated by the front tire 2. This tire pair makes it easier to change the direction of the vehicle. Because the cornering ability of the front tire 2 is improved compared to that of the rear tire 42, the front tire 2 contributes to the vehicle's cornering before the rear tire 42. This tire pair can maintain good cornering ability without oversteer. By making the cornering force when leaning the vehicle equal to or less than the cornering force in the initial stages of cornering, the vehicle can travel stably through high-speed corners. This tire pair has excellent cornering stability. This tire pair has excellent cornering ability in high-speed corners. From this viewpoint, it is preferable that the middle arc index Am is greater than the center arc index Ac.
[0094] In corners where the vehicle turns at medium to low speeds (hereinafter referred to as medium to low speed corners), the portion of the tread surface from the equator to the edge of the tread surface, that is, from the portion corresponding to the center of the tread contour line to the portion corresponding to the shoulder, is used. Specifically, in the tread surface 16 of the front tire 2, the portion from the portion corresponding to the center CLf of the tread contour line TLf to the portion corresponding to the shoulder SLf is used, and in the tread surface 56 of the rear tire 42, the portion from the portion corresponding to the center CLr of the tread contour line TLr to the portion corresponding to the shoulder SLr is used.
[0095] When a vehicle is driving through a low-to-medium speed corner, as described above when a vehicle is driving through a high-speed corner, the portion of the tire tread corresponding to the center and middle sections of the tread contour line is used first. As mentioned earlier, the middle radius index Am is equal to or greater than the center radius index Ac. Using this tire pair, the vehicle can easily change direction and can drive stably through low to medium speed corners.
[0096] The radius of curvature in medium- and low-speed corners is smaller than that of high-speed corners. When a vehicle is traveling through a medium- and low-speed corner, it may be traveling with the vehicle fully leaned (i.e., in a full bank position). In this case, the portion of the tire tread surface that corresponds to the shoulder of the tread contour line is used.
[0097] In this tire pair, the shoulder arc index As is smaller than the center arc index Ac. Using this tire pair, the vehicle can navigate medium-to-low speed corners while maintaining the necessary turning force. While there is a concern that further leaning the vehicle may cause understeer, this tire pair effectively suppresses understeer. This tire pair also offers excellent cornering performance in medium-to-low speed corners.
[0098] In this tire pair, the middle arc index Am is equal to or greater than the center arc index Ac, while the shoulder arc index As is smaller than the center arc index Ac. This tire pair can improve cornering performance in medium to low-speed corners while maintaining good cornering performance in high-speed corners. This tire pair can improve the vehicle's cornering performance.
[0099] In this tire pair, from the viewpoint of further improving the vehicle's turning ability, it is preferable that the middle arc index Am is greater than the center arc index Ac, and the shoulder arc index As is smaller than the center arc index Ac.
[0100] In this tire pair, the middle arc index Am is preferably 0.50 or higher. This prevents the overall curvature of the tread surface 56 of the rear tire 42 from becoming too small compared to the overall curvature of the tread surface 16 of the front tire 2. When driving through high-speed corners, where the portion of the tire tread surface corresponding to the center and middle of the tread contour line is used, the turning force of the front tire 2 is appropriately maintained. This tire pair can effectively suppress understeer in the vehicle. From this viewpoint, the middle arc index Am is more preferably 0.54 or higher. From the viewpoint of maintaining good turning performance, the middle arc index Am is preferably 1.10 or lower, and preferably 1.03 or lower. twist preferable.
[0101] In this tire pair, the shoulder arc index As is preferably 0.35 or higher. This prevents the overall curvature of the tread surface 56 of the rear tire 42 from becoming too large compared to the overall curvature of the tread surface 16 of the front tire 2. In full-bank driving in medium-to-low speed corners, where the portion of the tire tread surface corresponding to the shoulder of the tread contour line is used, the contribution of the front tire 2 is prevented from becoming too large compared to the contribution of the rear tire 42. This tire pair can effectively suppress oversteer in full-bank driving. From this viewpoint, the shoulder arc index As is more preferably 0.37 or higher. From the viewpoint of maintaining good cornering performance, the shoulder arc index As is preferably 0.88 or lower, and more preferably 0.68 or lower.
[0102] In this tire pair, from the viewpoint of obtaining good cornering performance, it is more preferable that the middle arc index Am is 0.50 or higher and the shoulder arc index As is 0.35 or higher. In this tire pair, it is even more preferable that the middle arc index Am is equal to or greater than the center arc index Ac, the shoulder arc index As is less than the center arc index Ac, the middle arc index Am is 0.50 or greater, and the shoulder arc index As is 0.35 or greater.
[0103] As mentioned above, for the front tire 2, the ratio of tread height Hf to outer diameter Df (Hf / Df) is preferably 5.0% or more and 10.0% or less. For the rear tire 42, the ratio of tread height Hr to outer diameter Dr (Hr / Dr) is preferably 8.5% or more and 15.0% or less. In this tire pair, from the viewpoint of improving the vehicle's turning ability, it is more preferable that the ratio of tread height Hf to outer diameter Df (Hf / Df) for the front tire 2 is 5.0% or more and 10.0% or less, and that the ratio of tread height Hr to outer diameter Dr (Hr / Dr) for the rear tire 42 is 8.5% or more and 15.0% or less.
[0104] As mentioned above, for the front tire 2, the ratio of the radius R1f of the first arc to the outer diameter Df (R1f / Df) is preferably 8.0% or more and 13.0% or less. For the rear tire 42, the ratio of the radius R1r of the first arc to the outer diameter Dr (R1r / Dr) is preferably 9.0% or more and 21.0% or less. In this tire pair, from the viewpoint of improving the turning ability of the vehicle, it is more preferable that the ratio of the radius R1f of the first arc to the outer diameter Df (R1f / Df) of the front tire 2 is 8.0% or more and 13.0% or less, and that the ratio of the radius R1r of the first arc to the outer diameter Dr (R1r / Dr) of the rear tire 42 is 9.0% or more and 21.0% or less.
[0105] As described above, the present invention provides a pair of tires for a motorcycle that can improve the turning performance of the vehicle. [Examples]
[0106] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples.
[0107] [Example 1] A front tire (120 / 70ZR17) having the basic configuration shown in Figure 1 and the specifications shown in Table 1 below, and Figure 5 A pair of motorcycle tires was prepared, consisting of a rear tire (190 / 55ZR17) with the basic configuration shown and the specifications shown in Table 1 below. The front and rear tires of this Embodiment 1 are slick tires. The tread surfaces of the front and rear tires do not have grooves that intersect the equator. This is indicated by "Y" in the "Groove" column of Table 1.
[0108] [Examples 2-4 and Comparative Examples 1-2] Tire pairs for Example 2-4 and Comparative Example 1-2, having the specifications shown in Table 1 below, were prepared. The basic configuration of each tire pair is the same as that of the tire pair for Example 1. The tread surfaces of Examples 2 and 3 and Comparative Example 1 were provided with grooves that intersect the equator. This is indicated by "N" in the "Grooves" column of Tables 1 and 2. In both tire pairs, the front tire size was 120 / 70ZR17 and the rear tire size was 190 / 55ZR17.
[0109] [Performance evaluation] The front and rear tires were mounted onto their respective standard rims, inflated, and the internal tire pressure was adjusted to the standard level. The front and rear tires were mounted on a large motorcycle (engine displacement = 1000cc). The motorcycle was driven on a dry asphalt test course, and a subjective evaluation (on a 10-point scale) was conducted by a test rider. The evaluation criteria are high-speed turning ability, medium-to-low speed turning ability, and initial response. The evaluation results are shown as an index in Table 1 below. A higher number indicates better performance.
[0110] [Table 1]
[0111] As shown in Table 1, the tire pair of the embodiment has been confirmed to contribute to improving the turning performance of the vehicle. From this evaluation result, the advantages of the present invention are clear. [Industrial applicability]
[0112] The technologies described above, which can contribute to improving the turning ability of vehicles, can also be applied to tire pairs for various types of motorcycles. [Explanation of symbols]
[0113] 2. Front tire 4, 44... tread 8, 48...bead 10, 50...carcass 12, 52...band 22, 62... Carcass ply 24, 64...carcass code 28, 68...band code 42... Rear tire
Claims
1. A tire pair consisting of a front tire and a rear tire, Each of the aforementioned front tire and rear tire is The vehicle comprises a pair of beads, a carcass spanning between a first bead and a second bead of the pair, a band located radially outward of the carcass, and a tread located radially outward of the band. The carcass includes a number of parallel carcass codes, each carcass code being inclined with respect to the equatorial plane. The angle that the carcass code makes with respect to the equatorial plane is between 20 degrees and 65 degrees. The band includes a band cord that is wound in a helical shape and extends substantially circumferentially, The angle that the band code makes with respect to the circumferential direction is 5° or less. The tread has a tread surface that contacts the road surface, In the meridian cross-section, the contour line of the tread surface is divided into five parts by dividing the portion from the equator to the edge of the tread surface in a length ratio of 1:2:
1. The five aforementioned parts are a central section including the equator, a pair of middle sections connected to the central section, and a pair of shoulder sections connected to the middle sections. The first arc is the arc that passes through the equator and both ends of the center portion. The arc passing through the inner end and outer end of the middle section and its center is the second arc. The arc passing through the inner end and outer end of the shoulder portion and its center is the third arc. In the aforementioned front tire, the ratio of the radius R2f of the second arc to the radius R1f of the first arc (R2f / R1f) is 0.99 or more and 1.22 or less, and the ratio of the radius R3f of the third arc to the radius R2f of the second arc (R3f / R2f) is 0.79 or more and 1.06 or less. In the rear tire, the ratio of the radius R2r of the second arc to the radius R1r of the first arc (R2r / R1r) is 0.84 or more and 1.19 or less, and the ratio of the radius R3r of the third arc to the radius R2r of the second arc (R3r / R2r) is 0.81 or more and 1.44 or less. The ratio of the radius R1f of the first arc of the front tire to the radius R1r of the first arc of the rear tire (R1f / R1r) is the center arc index. The ratio of the radius R2f of the second arc of the front tire to the radius R2r of the second arc of the rear tire (R2f / R2r) is the middle arc index. The ratio of the radius R3f of the third arc of the front tire to the radius R3r of the third arc of the rear tire (R3f / R3r) is the shoulder arc index. The middle arc index is equal to or greater than the center arc index, and the shoulder arc index is smaller than the center arc index. Tires for motorcycles.
2. The aforementioned middle arc index is 0.50 or greater, The aforementioned shoulder arc index is 0.35 or greater. A pair of motorcycle tires according to claim 1.
3. The radial distance from the equator to the edge of the tread surface is the tread height. In the aforementioned front tire, the ratio of the tread height to the outer diameter is 5.0% or more and 10.0% or less. In the aforementioned rear tire, the ratio of the tread height to the outer diameter is 8.5% or more and 15.0% or less. A pair of tires for a two-wheeled vehicle according to claim 1 or 2.
4. In the aforementioned front tire, the ratio of the radius R1f of the first arc to the outer diameter is 8.0% or more and 13.0% or less. In the aforementioned rear tire, the ratio of the radius R1r of the first arc to the outer diameter is 9.0% or more and 21.0% or less. A pair of tires for a two-wheeled vehicle according to any one of claims 1 to 3.
5. The tread surface does not have grooves that intersect the equator. A pair of tires for a two-wheeled vehicle according to any one of claims 1 to 4.
6. The carcass cord is a cord made of organic fibers. A pair of tires for a two-wheeled vehicle according to any one of claims 1 to 5.