WO2014099471A1 - Tire with bi-directional performance - Google Patents

Tire with bi-directional performance Download PDF

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Publication number
WO2014099471A1
WO2014099471A1 PCT/US2013/074038 US2013074038W WO2014099471A1 WO 2014099471 A1 WO2014099471 A1 WO 2014099471A1 US 2013074038 W US2013074038 W US 2013074038W WO 2014099471 A1 WO2014099471 A1 WO 2014099471A1
Authority
WO
WIPO (PCT)
Prior art keywords
tire
vehicle
rotation direction
tread
wheel
Prior art date
Application number
PCT/US2013/074038
Other languages
French (fr)
Inventor
Hans DORFI
Sharon REINHARDT
Robert ASPER
Original Assignee
Bridgestone Americas Tire Operations, Llc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Bridgestone Americas Tire Operations, Llc filed Critical Bridgestone Americas Tire Operations, Llc
Priority to BR112015014264A priority Critical patent/BR112015014264A2/en
Priority to JP2015549457A priority patent/JP6141448B2/en
Priority to EP21161032.4A priority patent/EP3851296B1/en
Priority to RU2015128492/11A priority patent/RU2583014C1/en
Priority to CN201380066321.5A priority patent/CN104918794B/en
Priority to EP13865777.0A priority patent/EP2934918B1/en
Priority to EP19190785.6A priority patent/EP3590731B1/en
Priority to US14/653,009 priority patent/US20150336429A1/en
Publication of WO2014099471A1 publication Critical patent/WO2014099471A1/en
Priority to US16/448,134 priority patent/US12115818B2/en

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/0302Tread patterns directional pattern, i.e. with main rolling direction
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/0304Asymmetric patterns
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/12Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes
    • B60C11/1204Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes with special shape of the sipe
    • B60C11/1218Three-dimensional shape with regard to depth and extending direction
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/12Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes
    • B60C11/1236Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes with special arrangements in the tread pattern
    • B60C11/124Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes with special arrangements in the tread pattern inclined with regard to a plane normal to the tread surface
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C13/00Tyre sidewalls; Protecting, decorating, marking, or the like, thereof
    • B60C13/001Decorating, marking or the like
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C19/00Tyre parts or constructions not otherwise provided for
    • B60C19/001Tyres requiring an asymmetric or a special mounting
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C5/00Inflatable pneumatic tyres or inner tubes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C9/00Reinforcements or ply arrangement of pneumatic tyres
    • B60C9/02Carcasses
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/12Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/13Tread patterns characterised by the groove cross-section, e.g. for buttressing or preventing stone-trapping
    • B60C11/1376Three dimensional block surfaces departing from the enveloping tread contour
    • B60C11/1392Three dimensional block surfaces departing from the enveloping tread contour with chamfered block edges
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/12Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes
    • B60C11/1204Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes with special shape of the sipe
    • B60C2011/1213Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes with special shape of the sipe sinusoidal or zigzag at the tread surface
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/12Tread patterns characterised by the use of narrow slits or incisions, e.g. sipes
    • B60C2011/129Sipe density, i.e. the distance between the sipes within the pattern
    • B60C2011/1295Sipe density, i.e. the distance between the sipes within the pattern variable
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49481Wheel making
    • Y10T29/49492Land wheel
    • Y10T29/49496Disc type wheel

Definitions

  • the present disclosure relates to the field of tire performance and tire mounting. More particularly, the present disclosure relates to tires having a different characteristic when rotated in different directions or mounted in different orientation.
  • Tires of different tread patterns and construction are known in the art. Both symmetric and asymmetric tread patterns may be configured to optimize certain features, such as braking performance, wet handling, dry handling, snow handling, traction, wear, noise reduction, and rolling resistance. The position and orientation of carcass plies and other elements may also be configured to optimize such features. Tires can be categorized into symmetric tires, asymmetric tires and directional tires. Symmetric tires have no preferred mounting method while asymmetric tires have a preferred outboard face and directional tires have a preferred rolling direction.
  • the front axle may support a greater portion of the weight of the vehicle. In some instances, the front axle may support 60% of the weight of the vehicle. Additionally, in front wheel drive tires, the rear tires only contribute to braking, and contribute no driving force. Similarly, in rear wheel drive tires, the front tires contribute only to braking and contribute no driving force.
  • the radial and lateral forces may be distributed differently in the front and rear tires.
  • the camber of front tires may be different from that of rear tires in some vehicles. This causes different parts of a tread pattern to engage a rolling surface on a front tire versus a rear tire.
  • Figure 1 is a sample histogram illustrating the distribution of fore/aft forces on front and rear tires of exemplary rear wheel drive vehicles driven on a simulated road course.
  • the histogram is not meant to illustrate properties of a specific tire or specific car, but is presented here to illustrate some of the different forces exerted on front tires versus rear tires.
  • the illustrated example shows forces on two different cars.
  • the x-axis represents a ratio of the fore- aft force to the static front load of a tire.
  • the negative numbers on the axis represent a braking force and the positive numbers represent a driving force.
  • the y-axis represents the percentage of each occurrence.
  • Figure 1 illustrates that rear wheel drive vehicles often exert small driving forces on the rear tires, and occasionally exert larger driving forces on the rear tires. Rear wheel drive vehicles may also exert small to medium braking forces on the rear tires.
  • Peak Fx is the greatest longitudinal force on the slip ratio versus a longitudinal force (N) curve. Peak Fx is known by those skilled in the arts to correlate with traction performance.
  • a tire having an equatorial plane includes a first side and a second side defining a first rotation direction and a second rotation direction of the tire.
  • the first rotation direction of the tire is a rotation of the tire in a counterclockwise direction when the tire is viewed from the first side
  • the second rotation direction of the tire is a rotation of the tire in a clockwise direction when the tire is viewed from the first side.
  • the tire further includes a carcass ply extending from a first bead portion to a second bead portion, and a circumferential tread disposed above a belt.
  • At least one of the circumferential tread and the carcass ply causes the tire to exhibit a first tire performance when the tire is rotated in the first rotation direction, and a second tire performance that is different from the first tire performance when the tire is rotated in the second rotation direction.
  • the tire performance is selected from the group consisting of braking, dry driving traction, wear performance, and snow traction performance.
  • a tire having an equatorial plane includes a first bead portion and a second bead portion.
  • the tire further includes a first side and a second side defining a first mounting position and a second mounting position of the tire. In the first mounting position, the first side faces away from a longitudinal axis of a vehicle, and in the second mounting position, the second side faces away from a longitudinal axis of the vehicle.
  • the tire further includes at least one carcass ply extending from the first bead portion to the second bead portion, and a circumferential belt disposed above the at least one carcass ply.
  • the tire also includes a circumferential tread having a plurality of tread elements disposed above the circumferential belt.
  • At least one of the at least one carcass ply and the plurality of tread elements causes the tire to exhibit a first on- vehicle lateral performance when in the first mounting position on a front axle of the vehicle and the second mounting position on a rear axle of the vehicle, and a second on-vehicle lateral performance when in the first mounting position on the rear axle of the vehicle and the second mounting position on the front axle of the vehicle.
  • a method of mounting a plurality of tires on a vehicle having a front axle and a rear axle includes providing four tires, including a first tire, a second tire, a third tire, and a fourth tire.
  • Each of the four tires has a first bead portion and a second bead portion, a first side, a second side, at least one carcass ply extending from the first bead portion to the second bead portion, a circumferential belt disposed above the at least one carcass ply, and a circumferential tread disposed above the circumferential belt.
  • the first side of each of the four tires is substantially the same, and the second side of each of the four tires is substantially the same.
  • the method further includes mounting the first tire on a first wheel, mounting the second tire on a second wheel, mounting the third tire on a third wheel, and mounting the fourth tire on a fourth wheel.
  • the method also includes mounting the first wheel on a left end of a front axle of a vehicle, such that the first side of the first tire faces away from a longitudinal axis of the vehicle and such that the first tire exhibits a first performance.
  • the method additionally includes mounting the second wheel on a right end of the front axle of the vehicle, such that the second side of the second tire faces away from the longitudinal axis of the vehicle and such that the second tire exhibits the first performance.
  • the method further includes mounting the third wheel on a left end of a rear axle of the vehicle, such that the second side of the third tire faces away from the longitudinal axis of the vehicle and such that the third tire exhibits a second performance that is lower than the first performance.
  • the method also includes mounting the fourth wheel on a right end of the rear axle of the vehicle, such that the first side of the fourth tire faces away from the longitudinal axis of the vehicle and such that the fourth tire exhibits the second performance.
  • a method of mounting a plurality of tires on a vehicle having a front axle and a rear axle includes providing four tires, including a first tire, a second tire, a third tire, and a fourth tire.
  • Each of the four tires has a first bead portion and a second bead portion, a first side, a second side, a carcass ply extending from the first bead portion to the second bead portion, a belt disposed above the carcass ply, and a circumferential tread disposed above the belt, wherein at least one of the circumferential tread and the carcass ply causes the tire to be reflectively asymmetric about an equatorial plane.
  • the first side of each of the four tires is substantially the same, and the second side of each of the four tires is substantially the same. Likewise, the circumferential tread of each of the four tires is substantially the same.
  • the method further includes mounting the first tire on a first wheel, mounting the second tire on a second wheel, mounting the third tire on a third wheel, and mounting the fourth tire on a fourth wheel.
  • the method also includes mounting the first wheel on a left end of a front axle of a vehicle, such that the first side of the first tire faces away from a longitudinal axis of the vehicle.
  • the method additionally includes mounting the second wheel on a right end of the front axle of the vehicle, such that the first side of the second tire faces away from the longitudinal axis of the vehicle.
  • the method further includes mounting the third wheel on a left end of a rear axle of the vehicle, such that the second side of the third tire faces away from the longitudinal axis of the vehicle, and mounting the fourth wheel on a right end of the rear axle of the vehicle, such that the second side of the fourth tire faces away from the longitudinal axis of the vehicle.
  • a method of mounting a plurality of tires on a vehicle having a front axle and a rear axle includes providing four tires, including a first tire, a second tire, a third tire, and a fourth tire.
  • Each of the four tires has a first bead portion and a second bead portion, a first side, a second side, at least one carcass ply extending from the first bead portion to the second bead portion, a circumferential belt disposed above the at least one carcass ply, and a circumferential tread disposed above the circumferential belt.
  • Each of the four tires has a circumferential tire design with one of a tread pattern and a carcass ply with discrete rotational asymmetry of the second order.
  • the first side of each of the four tires is substantially the same, and the second side of each of the four tires is substantially the same.
  • the circumferential tread of each of the four tires is substantially the same.
  • the method further includes mounting the first tire on a first wheel, mounting the second tire on a second wheel, mounting the third tire on a third wheel, and mounting the fourth tire on a fourth wheel.
  • the method also includes mounting the first wheel on a left end of a front axle of a vehicle, such that the first side of the first tire faces away from a longitudinal axis of the vehicle, and mounting the second wheel on a right end of the front axle of the vehicle, such that the second side of the second tire faces away from the longitudinal axis of the vehicle.
  • the method additionally includes mounting the third wheel on a left end of a rear axle of the vehicle, such that the first side of the third tire faces away from the longitudinal axis of the vehicle, and mounting the fourth wheel on a right end of the rear axle of the vehicle, such that the second side of the fourth tire faces away from the longitudinal axis of the vehicle, thereby providing a first rotational direction on all tires that has a first performance on all tires.
  • FIG. 1 is a sample histogram illustrating the distribution of fore/aft forces on front and rear tires of exemplary rear wheel drive vehicles
  • Figure 2 is a schematic drawing of a perspective view of one embodiment of a tire 100 having first and second rolling directions;
  • Figure 3 is a schematic drawing of a front view of the tire 100 of
  • Figure 4 is a schematic drawing of a multi-perspective view of the tire 100 of Figure 2, showing the tire in a first orientation and a second orientation;
  • Figure 5 is a schematic drawing illustrating a plurality of tires 100 mounted on axles of a vehicle
  • Figure 6 is a schematic drawing illustrating service rotations of the plurality of tires 100 mounted on axles of the vehicle of Figure 5;
  • Figure 7 is a schematic drawing of a perspective view of an alternative embodiment of a tire 300 having first and second rolling directions;
  • Figure 8 is a schematic drawing of a front view of the tire 300 of
  • Figure 9 is a schematic drawing of a multi-perspective view of the tire 300 of Figure 7, showing the tire in a first orientation and a second orientation;
  • Figure 10 is a schematic drawing illustrating a plurality of tires 300 mounted on axles of a vehicle
  • Figure 11 is a schematic drawing illustrating service rotations of the plurality of tires 300 mounted on axles of the vehicle of Figure 10;
  • Figure 12 is a schematic drawing of a multi-perspective view of a tire
  • Figure 13 is a schematic drawing illustrating a plurality of tires 500 mounted on axles of a vehicle
  • Figure 14 is a schematic drawing illustrating service rotations of the plurality of tires 500 mounted on axles of the vehicle of Figure 13;
  • Figure 15 is a schematic drawing of a profile of one embodiment of a tread element for a tire
  • Figure 16 is a schematic drawing of a profile of an alternative embodiment of a tread element for a tire
  • Figure 17 is a schematic drawing of a profile of another alternative embodiment of a tread element for a tire
  • Figure 18 is a schematic drawing of a profile of yet another alternative embodiment of a tread element for a tire
  • Figure 19 is a schematic drawing of a profile of still another alternative embodiment of a tread element for a tire.
  • Figure 20 is a schematic drawing of a profile of yet another alternative embodiment of a tread element for a tire.
  • Axial or “axially” refer to a direction that is parallel to the axis of rotation of a tire.
  • Bead refers to the part of the tire that contacts the wheel and defines a boundary of the sidewall.
  • Carcass ply refers to a structural member that connects the bead to a tread, and may be continuous or discrete.
  • “Circumferential” and “circumferentially” refer to a direction extending along the perimeter of the surface of the tread perpendicular to the axial direction.
  • Equatorial plane refers to the plane that is perpendicular to the tire's axis of rotation and passes through the center of the tire.
  • Ring and radially refer to a direction perpendicular to the axis of rotation of a tire.
  • Sidewall refers to that portion of the tire between the tread and the bead.
  • Tread refers to that portion of the tire that comes into contact with the road under normal inflation and load.
  • Figures 2 and 3 show a perspective view and side view, respectively, of a schematic drawing of one embodiment of a tire 100 having an axle specific rolling direction.
  • Figure 4 shows a multi-perspective view of the tire 100 in a first orientation 110a and a second orientation 110b. The tire 100 is described in reference to all of these figures.
  • the tire 100 includes a first and second bead portion (not shown), a first sidewall 120a, and a second sidewall 120b.
  • the tire 100 has two rotation directions. When the tire is viewed from the second sidewall 120b (as shown in Figure 3), the first rotation direction of the tire 100 is in the clockwise direction and the second rotation direction of the tire 100 is in the counterclockwise direction.
  • the tire 100 further includes at least one carcass ply (not shown) extending from the first bead portion to the second bead portion, a circumferential belt disposed above the carcass ply (not shown), and a circumferential tread 130 disposed above the belt.
  • the circumferential tread 130 has a tread pattern shown schematically at 140.
  • the tread pattern 140 has discrete rotational asymmetry of the second order, which causes the tire 100 to be directional. Therefore, when the tire 100 is in the first orientation 110a, the tread pattern 140 has a first appearance, and when the tire 100 is placed in the second orientation 110b, the reversed tread pattern 140 has a second appearance different from the first appearance.
  • the asymmetry of the tread pattern may cause the tread to exhibit different properties when the tire 100 is rotated in the first direction versus the second direction.
  • the tread pattern and the position and orientation of the carcass ply may be selected such that desirable properties for a front tire are exhibited when the tire 100 is rotated in the first direction, and desirable properties for a rear tire are exhibited when the tire 100 is rotated in the second direction.
  • the tread pattern may be selected such that when the tire is rotated in the first rotation direction, the circumferential tread exhibits a first braking performance and a first driving traction performance, and when the tire is rotated in the second direction, the circumferential tread exhibits a second braking performance that is lower than the first braking performance and a second driving traction performance that is higher than the first driving traction performance.
  • the rear wheel drive vehicles it may be more advantageous for the rear tires to exhibit higher driving traction performance.
  • front wheel drive vehicles it may be more advantageous for the front tires to exhibit higher driving traction performance.
  • the tread pattern may be selected such that the circumferential tread exhibits a first wear performance when rotated in the first direction, and a second wear performance different from the first wear performance when rotated in the second direction.
  • first wear performance when rotated in the first direction
  • second wear performance different from the first wear performance when rotated in the second direction.
  • front wheel drive vehicles front tires tend to wear faster.
  • rear wheel drive tires rear tires tend to wear faster.
  • the tread pattern may be selected to reduce the discrepancy between the wear rates of front and rear tires.
  • the tread pattern may be selected such that the circumferential tread exhibits a first snow traction performance when rotated in the first direction, and a second snow traction performance that is different from the first snow traction performance when rotated in the second direction.
  • the tread pattern may also be selected such that other properties are affected by a change in rotation direction.
  • the position and orientation of the carcass ply may be selected such that the carcass ply causes the tire to exhibit different properties according to the rotation direction. Such differences in carcass plies may not be readily observable from the exterior of the tire, but the tire would still exhibit asymmetric properties.
  • the first rotation direction may be indicated as a Front Rotation Direction
  • the second rotation direction may be indicated as a Rear Rotation Direction on one or more locations on the tire.
  • a first indicia 150a is disposed on the first sidewall 120a and a second indicia 150b is disposed on the second sidewall 120b of the tire 100.
  • Both the first indicia 150a and the second indicia 150b include an indicator designating the first rotation direction as a front tire rotation direction and the second rotation direction as a rear tire rotation direction. While the illustrated embodiment shows arrows with a written description, it should be understood that the indicia may take any form or size.
  • Such indicia may be used to aid a person in mounting axle specific tires on a vehicle.
  • the properties of the tire 100 may be selected so that four tires having substantially the same sidewalls, carcass plies, and circumferential tread may be mounted on a vehicle 200 in such a way that first and second tires 100i, IOO2 on a front axle 210 exhibit different properties than third and fourth tires IOO3, IOO4 mounted on a rear axle 220.
  • the first tire lOOi is mounted on a first wheel (not shown)
  • the second tire IOO2 is mounted on a second wheel (not shown)
  • the third tire IOO3 is mounted on a third wheel (not shown)
  • the fourth tire IOO4 is mounted on a fourth wheel (not shown).
  • the first wheel and tire are mounted on a left end of the front axle 210 of a vehicle 200, such that a first sidewall 120ai of the first tire lOOi faces outwards, (i.e., away from a longitudinal axis A of the vehicle 200), and a second sidewall 120bi of the first tire lOOi faces inwards (i.e., towards the longitudinal axis A of the vehicle 200).
  • the second wheel and tire are mounted on a right end of the front axle 210 of the vehicle 200, such that a first sidewall 120a 2 of the second tire IOO2 faces inwards, and a second sidewall 120b 2 of the second tire IOO2 faces outwards.
  • the third wheel and tire are mounted on a left end of the rear axle 220 of the vehicle 200, such that a first sidewall 120a 3 of the third tire IOO3 faces inwards, and a second sidewall 120b 3 of the third tire IOO3 faces outwards.
  • the fourth wheel and tire are mounted on a right end of the rear axle 220 of the vehicle 200, such that a first sidewall 120a 4 of the fourth tire 100 4 faces outwards, and a second sidewall 120b 4 of the fourth tire IOO4 faces inwards.
  • tires may be mounted on the vehicle in any order, and that certain steps described above may be performed concurrently or in a different order.
  • the tires may be rotated in the manner illustrated in Figure 6, without having to dismount the tires from the wheels.
  • the first wheel and tire are removed from the front axle 210 of the vehicle 200 and the fourth wheel and tire are removed from the rear axle 220 of the vehicle 200.
  • the first wheel and tire are mounted on the right end of the rear axle 220 of the vehicle 200, such that the first sidewall 120ai of the first tire lOOi faces outwards, and the second sidewall 120bi of the first tire lOOi faces inwards.
  • the fourth wheel and tire are mounted on the left end of the front axle 210 of the vehicle 200, such that a first sidewall 120a 4 of the fourth tire 100 4 faces outwards, and a second sidewall 120b 4 of the fourth tire 100 4 faces inwards.
  • the second wheel and tire are removed from the front axle 210 of the vehicle 200 and the third wheel and tire are removed from the rear axle 220 of the vehicle 200.
  • the second wheel and tire are mounted on the left end of the rear axle 220 of the vehicle 200, such that a first sidewall 120a 2 of the second tire IOO2 faces inwards, and a second sidewall 120b 2 of the second tire IOO2 faces outwards.
  • the third wheel and tire are mounted on the right end of the front axle 210 of the vehicle 200, such that a first sidewall 120a 3 of the third tire IOO3 faces inwards, and a second sidewall 120b 3 of the third tire IOO3 faces outwards.
  • Figures 2-6 illustrate bidirectional tires that exhibit desirable front tire characteristics when rotated in a first direction, and desirable rear tire characteristics when rotated in a second direction
  • bidirectional tires may also be designed to exhibit desirable summer performance characteristics when rotated in a first direction, and desirable winter performance characteristics when rotated in a second direction.
  • Figures 7 and 8 show a perspective view and side view, respectively, of a schematic drawing of one embodiment of a tire 300 having a season specific rolling direction.
  • Figure 9 shows a multi-perspective view of the tire 300 in a first orientation 310a and a second orientation 310b. The tire 300 is described in reference to all of these figures.
  • the tire 300 includes a first and second bead portion (not shown), a first side wall 320a, and a second sidewall 320b.
  • the tire 300 has two rotation directions. When the tire is viewed from the second sidewall 320b (as shown in Figure 8), the first rotation direction of the tire 300 is in the clockwise direction and the second rotation direction of the tire 300 is in the counterclockwise direction.
  • the tire 300 further includes at least one carcass ply (not shown) extending from the first bead portion to the second bead portion, a circumferential belt disposed above the carcass ply (not shown), and a circumferential tread 330 disposed above the belt.
  • the circumferential tread 330 has a tread pattern shown schematically at 340.
  • the tread pattern 340 has discrete rotational asymmetry of the second order, which causes the tire 300 to be directional. Therefore, when the tire 300 is in the first orientation 310a, the tread pattern 340 has a first appearance, and when the tire 300 is placed in the second orientation 310b, the reversed tread pattern 340 has a second appearance different from the first appearance.
  • the asymmetry of the tread pattern may cause the tread to exhibit different properties when the tire 300 is rotated in the first direction versus the second direction.
  • the tread pattern and the position and orientation of the carcass ply may be selected such that desirable properties for summer performance are exhibited when the tire 300 is rotated in the first direction, and desirable properties for winter performance are exhibited when the tire 300 is rotated in the second direction.
  • the tread pattern may be selected such that the circumferential tread exhibits a first snow traction performance when rotated in the first direction, and a second snow traction performance that is different from the first snow traction performance when rotated in the second direction.
  • the tread pattern may also be selected such that other properties are affected by a change in rotation direction.
  • the tread pattern may be selected such that when the tire is rotated in the first rotation direction, the circumferential tread exhibits a first stopping distance performance, and when the tire is rotated in the second direction, the circumferential tread exhibits a second stopping distance performance that is lower than the first stopping performance. Stopping distance performance may be more important in summer, when vehicles tend to be driven at higher speeds.
  • the tread pattern may be selected such that the circumferential tread exhibits a first wear performance when rotated in the first direction, and a second wear performance different from the first wear performance when rotated in the second direction.
  • tires tend to wear slower in the winter when they are driven over snow.
  • the tread pattern may be selected to reduce the discrepancy between the wear rates in summer and winter.
  • the tread pattern may be selected such that the circumferential tread exhibits a first noise performance when rotated in the first direction, and a second noise performance different from the first noise performance when rotated in the second direction.
  • first noise performance when rotated in the first direction
  • second noise performance different from the first noise performance when rotated in the second direction.
  • tires tend to be quieter in the winter when they are driven over snow.
  • the tread pattern may be selected to reduce the discrepancy between the tire noise in summer and winter.
  • the position and orientation of the carcass ply may be selected such that the carcass ply causes the tire to exhibit different properties according to the rotation direction. Such differences in carcass plies may not be readily observable from the exterior of the tire, but the tire would still exhibit asymmetric properties.
  • the first rotation direction may be indicated as a Summer Rotation Direction
  • the second rotation direction may be indicated as a Winter Rotation Direction on one or more locations on the tire.
  • a first indicia 350a is disposed on the first sidewall 320a
  • a second indicia 350b is disposed on the second sidewall 320b of the tire 300.
  • Both the first indicia 350a and the second indicia 350b include an indicator designating the first rotation direction as a summer rotation direction and the second rotation direction as a winter rotation direction. While the illustrated embodiment shows arrows with a written description, it should be understood that the indicia may take any form or size.
  • Such indicia may be used to aid a person in mounting season specific tires on a vehicle.
  • the properties of the tire 300 may be selected so that four tires having substantially the same sidewalls, carcass plies, and circumferential tread may be mounted on a vehicle 400 in such a way that all tires 300i, 300 2, 3 ⁇ 3, 300 4 exhibit desirable summer performance characteristics.
  • the first tire 300i is mounted on a first wheel (not shown)
  • the second tire 3 ⁇ 2 is mounted on a second wheel (not shown)
  • the third tire 3 ⁇ 3 is mounted on a third wheel (not shown)
  • the fourth tire 300 4 is mounted on a fourth wheel (not shown).
  • the first wheel and tire are mounted on a left end of the front axle 410 of a vehicle 400, such that a first sidewall 320ai of the first tire 300i faces outwards, (i.e., away from a longitudinal axis A of the vehicle 400), and a second sidewall 320bi of the first tire 300i faces inwards (i.e., towards the longitudinal axis A of the vehicle 400).
  • the second wheel and tire are mounted on a right end of the front axle 410 of the vehicle 400, such that a first sidewall 320a 2 of the second tire 3 ⁇ 2 faces inwards, and a second sidewall 320b 2 of the second tire 3 ⁇ 2 faces outwards.
  • the third wheel and tire are mounted on a left end of the rear axle 420 of the vehicle 400, such that a first sidewall 320a 3 of the third tire 3 ⁇ 3 faces outwards, and a second sidewall 320b 3 of the third tire 3 ⁇ 3 faces inwards.
  • the fourth wheel and tire are mounted on a right end of the rear axle 420 of the vehicle 400, such that a first sidewall 320a 4 of the fourth tire 300 4 faces inwards, and a second sidewall 320b 4 of the fourth tire IOO4 faces outwards.
  • tires may be mounted on the vehicle in any order, and that certain steps described above may be performed concurrently or in a different order.
  • the tires may be rotated in the manner illustrated in Figure 11, without having to dismount the tires from the wheels.
  • the first wheel and tire are removed from the front axle 410 of the vehicle 400 and the fourth wheel and tire are removed from the rear axle 420 of the vehicle 400.
  • the first wheel and tire are mounted on the right end of the rear axle 420 of the vehicle 400, such that the first sidewall 320ai of the first tire 300i faces outwards, and the second sidewall 320b 1 of the first tire 300i faces inwards.
  • the fourth wheel and tire are mounted on the left end of the front axle 410 of the vehicle 400, such that a first sidewall 320a 4 of the fourth tire 300 4 faces inwards, and a second sidewall 320b 4 of the fourth tire 100 4 faces outwards.
  • the second wheel and tire are removed from the front axle 410 of the vehicle 400 and the third wheel and tire are removed from the rear axle 420 of the vehicle 400.
  • the second wheel and tire are mounted on the left end of the rear axle 420 of the vehicle 400, such that a first sidewall 320a 2 of the second tire 3 ⁇ 2 faces inwards, and a second sidewall 320b 2 of the second tire 3 ⁇ 2 faces outwards.
  • the third wheel and tire are mounted on the right end of the front axle 410 of the vehicle 400, such that a first sidewall 320a 3 of the third tire 3 ⁇ 3 faces outwards, and a second sidewall 320b 3 of the third tire 3 ⁇ 3 faces inwards.
  • FIG. 12 shows a multi-perspective view of another embodiment of a tire 500 in a first orientation 510a and a second orientation 510b.
  • the tire 500 includes a first and second bead portion (not shown), a first sidewall 520a, and a second sidewall 520b.
  • the first and second sidewall 520a,b define a first mounting position and a second mounting position of the tire, in that the first sidewall 520a faces outwards in the first mounting position, and the second sidewall faces 520b faces outwards in the second mounting position.
  • the tire 500 further includes at least one carcass ply (not shown) extending from the first bead portion to the second bead portion, a circumferential belt disposed above the carcass ply (not shown), and a circumferential tread 530 disposed above the belt.
  • the circumferential tread 530 has a tread pattern shown schematically at 540.
  • the tread pattern 540 is asymmetric about the equatorial plane of the tire 500. Therefore, when the tire 500 is in the first orientation shown in Figure 4, the tread pattern 540 has a first appearance, and when the tire 500 is rotated to the second orientation shown in Figure 7, the reversed tread pattern 540 has a second appearance different from the first appearance.
  • the asymmetry of the tread pattern may cause the tread to exhibit different properties when the tire 100 is mounted in the first mounting position versus the second mounting position.
  • the tread pattern may be selected to account for first wear characteristics when a tire is mounted in the first position, and to account for second wear characteristics different from the first wear characteristics when the tire is mounted in the second position.
  • the front and rear tires may have different cambers.
  • the weight of the vehicle may be distributed different on the front and rear axles. These differences may cause the front tires to have different footprints from the rear tires.
  • the tread patterns in the first and second mounting positions of the tires may be selected to account for these different footprints.
  • the tread pattern may be selected such that the circumferential tread exhibits a first snow traction performance when mounted in the first position, and a second snow traction performance different from the first snow traction performance when mounted in the second position.
  • the tread pattern may also be selected such that other properties are affected by a change in mounting position. For example, the front and rear tires of a vehicle may experience different lateral forces. The tread pattern may be selected to effectively manage these different lateral forces.
  • the position and orientation of the carcass ply may be selected such that the carcass ply causes the tire to exhibit different properties according to the mounting position. Such differences in carcass plies may not be readily observable from the exterior of the tire, but the tire would still exhibit asymmetric properties.
  • the tread pattern and the position and orientation of the carcass ply may be designed to account for the different forces that are exhibited on the front and rear tires. Such different forces may cause the front and rear tires to wear differently.
  • the first mounting direction may be indicated as a Front Mounting Position
  • the second rotation direction may be indicated as a Rear Mounting Position on one or more locations on the tire.
  • a first indicia 550a is disposed on the first sidewall 520a and a second indicia 550b is disposed on the second sidewall 520b of the tire 500. While the illustrated embodiment shows indicia that includes a written description, it should be understood that the indicia may take any form or size.
  • Such indicia may be used to aid a person in mounting axle specific tires on a vehicle.
  • the properties of the tire 500 may be selected so that four tires having substantially the same sidewalls, carcass plies, and circumferential tread may be mounted on a vehicle 600 in such a way that first and second tires 500i, 500 2 on a front axle 610 exhibit different properties than third and fourth tires 5 ⁇ 3, 500 4 mounted on a rear axle 620.
  • the first tire 500i is mounted on a first wheel (not shown)
  • the second tire 5 ⁇ 2 is mounted on a second wheel (not shown)
  • the third tire 5 ⁇ 3 is mounted on a third wheel (not shown)
  • the fourth tire 500 4 is mounted on a fourth wheel (not shown).
  • the first wheel and tire are mounted on a left end of the front axle 610 of a vehicle 600, such that a first sidewall 520ai of the first tire 500i faces outwards, and a second sidewall 520bi of the first tire 500i faces inwards.
  • the second wheel and tire are mounted on a right end of the front axle 610 of the vehicle 600, such that a first sidewall 520a 2 of the second tire 5 ⁇ 2 faces outwards, and a second sidewall 520b 2 of the second tire 5 ⁇ 2 faces inwards.
  • the third wheel and tire are mounted on a left end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a 3 of the third tire 5 ⁇ 3 faces inwards, and a second sidewall 520b 3 of the third tire 5 ⁇ 3 faces outwards.
  • the fourth wheel and tire are mounted on a right end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a 4 of the fourth tire 500 4 faces inwards, and a second sidewall 520b 4 of the fourth tire 500 4 faces outwards.
  • tires may be mounted on the vehicle in any order, and that certain steps described above may be performed concurrently or in a different order.
  • the tires may be rotated in the manner illustrated in Figure 9, without having to dismount the tires from the wheels.
  • the first wheel and tire, and second wheel and tire are removed from the front axle 610 of the vehicle 600.
  • the first wheel and tire are mounted on the right end of the front axle 620 of the vehicle 600, such that the first sidewall 520ai of the first tire 500i faces outwards, and the second sidewall 520bi of the first tire 500i faces inwards.
  • the second wheel and tire are mounted on the left end of the front axle 610 of the vehicle 600, such that a first sidewall 520a 2 of the second tire 5 ⁇ 2 faces outwards, and a second sidewall 520b 2 of the second tire 5 ⁇ 2 faces inwards.
  • the third wheel and tire, and fourth wheel and tire are removed from the rear axle 620 of the vehicle 600.
  • the third wheel and tire are mounted on the right end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a 3 of the third tire 5 ⁇ 3 faces inwards, and a second sidewall 520b 3 of the third tire 5 ⁇ 3 faces outwards.
  • the fourth wheel and tire are mounted on the left end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a 4 of the fourth tire 500 4 faces inwards, and a second sidewall 520b 4 of the fourth tire 500 4 faces outwards.
  • directional tread elements may be selected for the tire that display first characteristics when rotated in a first direction, and second characteristics different from the first characteristics when rotated in a second direction opposite the first direction.
  • Figures 15-19 illustrate examples of tread elements that exhibit different characteristics in different rolling directions. While each of these figures illustrate a single feature, it should be understood that tread elements may employ two or more of the illustrated features. For the sake of brevity the various combinations of features are not shown herein.
  • Figure 15 is a profile view of one embodiment of a tread element 700 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2.
  • the tread element 700 includes a first wall 710 and a second wall 720.
  • the first wall 710 is disposed at a first angle ⁇ i with respect to the base 730 of a groove in the tire.
  • the second wall 720 is disposed at a second angle 0.2 with respect to the base 730 of a groove in the tire that is greater than the first angle ⁇ xi.
  • the top of the tread element 700 and the second wall 720 form a leading edge.
  • the shallower angle ⁇ i of the first wall 710 causes lower edge pressure on the tread element 700 when the tire is rotated in the first direction Di, compared to when the tire is rotated in the second direction D2. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
  • Figure 16 is a profile view of another embodiment of a tread element 800 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2.
  • the tread element 800 includes a first wall 810 and a second wall 820.
  • the tread element 800 includes a plurality of sipes 830 adjacent the second wall, and no sipes adjacent the first wall.
  • the tread element may have sipes adjacent both wall, but a greater number of sipes adjacent the second wall.
  • the top of the tread element 800 and the first wall 810 form a leading edge.
  • the top of the tread element 800 and the second wall 820 form a leading edge, and the sipes 830 provide additional edges adjacent the leading edge. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
  • Figure 17 is a profile view of yet another embodiment of a tread element 900 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D 2 .
  • the tread element 900 includes a first wall 910 and a second wall 920.
  • the tread element 900 includes a plurality of angled sipes 930.
  • the rolling surface When the tire is rotated in the first direction Di, the rolling surface provides a shear force on the top of the tread element 900 that causes the angled sipes 930 to open and provide additional edges.
  • the rolling surface provides a shear force on the top of the tread element 900 that causes the angled sipes 930 to close, thereby eliminating the additional edges. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
  • Figure 18 is a profile view of still another embodiment of a tread element 1000 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2.
  • the tread element 1000 includes a first wall 1010 and a second wall 1020.
  • the tread element 1000 includes a plurality of ratchet- shaped sipes 1030, that may be referred to as three- dimensional (or 3D) sipes 1030.
  • the rolling surface provides a shear force on the top of the tread element 1000 that causes the ratchet- shaped sipes 1030 to open and provide additional edges.
  • the rolling surface When the tire is rotated in the second direction D2, the rolling surface provides a shear force on the top of the tread element 1000 that causes the ratchet- shaped sipes 1030 to close, thereby eliminating the additional edges. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
  • FIG 19 is a profile view of still another embodiment of a tread element 1100 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2.
  • the tread element 1100 includes a first wall 1110 and a second wall 1120.
  • the tread element 1100 includes an edge treatment.
  • the edge treatment is a rounded chamfer 1130 extending from the second wall 1120 to a top surface of the tread element 1100.
  • the rounded chamfer 1130 extending from the second wall 1120 causes lower edge pressure on the tread element 1100 when the tire is rotated in the second direction D2, compared to when the tire is rotated in the first direction Di. It should be understood that other edge treatments may also be employed, such as planar chamfers.
  • the tread element 1100 may be a lug, bounded by a pair of grooves. Alternatively, the tread element 1100 may represent a portion of a lug, bounded by a pair of sipes.
  • the rounded chamfer 1130 has a length that is substantially greater than its height. In one particular embodiment, the length is four times greater than the height. In another known embodiment, the length is two times greater than the height. In an alternative embodiment (not shown), the height is greater than or equal to the length.
  • Figure 20 is a profile view of still another embodiment of a tread element 1200 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2.
  • the tread element 1200 shows that multiple features may be encompassed in a single tread element.
  • the tread element 1200 includes a first wall 1210, and an edge treatment such as a rounded chamfer 1130 extending from the second wall 1220 to a top surface of the tread element 1200.
  • the tread element further includes ratchet shaped sipes 1240 that are disposed at an angle and proximal to the first wall 1210.
  • any combination of the above embodiments may be included in a single tread element.

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Abstract

A tire includes first and second sides defining first and second rotation directions. The first rotation direction is in a counterclockwise direction when the tire is viewed from the first side, and the second rotation direction is in a clockwise direction when the tire is viewed from the first side. The tire further includes a carcass ply extending from a first bead portion to a second bead portion, and a circumferential tread disposed above a belt. At least one of the circumferential tread and the carcass ply causes the tire to exhibit a first tire performance when the tire is rotated in the first rotation direction, and a second tire performance that is different from the first tire performance when the tire is rotated in the second rotation direction. The tire performance is selected from the group consisting of braking, dry driving traction, wear performance, and snow traction performance.

Description

TIRE WITH BI-DIRECTIONAL PERFORMANCE
FIELD OF INVENTION
[0001] The present disclosure relates to the field of tire performance and tire mounting. More particularly, the present disclosure relates to tires having a different characteristic when rotated in different directions or mounted in different orientation.
BACKGROUND
[0002] Tires of different tread patterns and construction are known in the art. Both symmetric and asymmetric tread patterns may be configured to optimize certain features, such as braking performance, wet handling, dry handling, snow handling, traction, wear, noise reduction, and rolling resistance. The position and orientation of carcass plies and other elements may also be configured to optimize such features. Tires can be categorized into symmetric tires, asymmetric tires and directional tires. Symmetric tires have no preferred mounting method while asymmetric tires have a preferred outboard face and directional tires have a preferred rolling direction.
[0003] Many vehicles have different performance needs for tires on a front axle versus tires on a rear axle. The front axle may support a greater portion of the weight of the vehicle. In some instances, the front axle may support 60% of the weight of the vehicle. Additionally, in front wheel drive tires, the rear tires only contribute to braking, and contribute no driving force. Similarly, in rear wheel drive tires, the front tires contribute only to braking and contribute no driving force.
[0004] Additionally, the radial and lateral forces may be distributed differently in the front and rear tires. Further, the camber of front tires may be different from that of rear tires in some vehicles. This causes different parts of a tread pattern to engage a rolling surface on a front tire versus a rear tire.
[0005] Figure 1 is a sample histogram illustrating the distribution of fore/aft forces on front and rear tires of exemplary rear wheel drive vehicles driven on a simulated road course. The histogram is not meant to illustrate properties of a specific tire or specific car, but is presented here to illustrate some of the different forces exerted on front tires versus rear tires.
[0006] The illustrated example shows forces on two different cars. The x-axis represents a ratio of the fore- aft force to the static front load of a tire. The negative numbers on the axis represent a braking force and the positive numbers represent a driving force. The y-axis represents the percentage of each occurrence.
[0007] As can be seen from Figure 1, rear wheel drive vehicles often exert small braking forces on the front tires, and may occasionally exert larger braking forces on the front tires. However, as one would expect, rear wheel drive tires do not any exert driving force on the front tires.
[0008] By contrast, Figure 1 illustrates that rear wheel drive vehicles often exert small driving forces on the rear tires, and occasionally exert larger driving forces on the rear tires. Rear wheel drive vehicles may also exert small to medium braking forces on the rear tires.
[0009] Although the histogram of Figure 1 is specific to a given simulated road course, it should be understood that while changes to the road course would affect the histogram, the general differences between front and rear tires would still hold.
[0010] While "directional tires" are known in the art, it was not generally known how such tires would perform in both a clockwise and counterclockwise direction. Therefore, a sample of existing directional tires were tested on a flat belt tire test machine, which closely controls and sweeps through a matrix of slip rates and loads while recording reaction forces and moments at the tire/wheel assembly center. Table 1 shows the Peak Fx metric relating to dry traction calculated from the resulting data.
Figure imgf000004_0001
Table 1
[0011] In Table 1, Peak Fx is the greatest longitudinal force on the slip ratio versus a longitudinal force (N) curve. Peak Fx is known by those skilled in the arts to correlate with traction performance.
[0012] As can be seen in Table 1 , although the directional tires are configured to be rotated in a specific direction, the differences in peak Fx due to changing the rolling direction were never greater than 3%. Some of the 3% difference is likely due to the error in the testing/measurement, because even the Non Directional Tire A showed differences. Accordingly, current directional tires do not display a significant difference in dry driving or braking traction to affect a significant change in on vehicle performance based on tire rolling direction.
SUMMARY OF THE INVENTION
[0013] In one embodiment, a tire having an equatorial plane includes a first side and a second side defining a first rotation direction and a second rotation direction of the tire. The first rotation direction of the tire is a rotation of the tire in a counterclockwise direction when the tire is viewed from the first side, and the second rotation direction of the tire is a rotation of the tire in a clockwise direction when the tire is viewed from the first side. The tire further includes a carcass ply extending from a first bead portion to a second bead portion, and a circumferential tread disposed above a belt. At least one of the circumferential tread and the carcass ply causes the tire to exhibit a first tire performance when the tire is rotated in the first rotation direction, and a second tire performance that is different from the first tire performance when the tire is rotated in the second rotation direction. The tire performance is selected from the group consisting of braking, dry driving traction, wear performance, and snow traction performance.
[0014] In another embodiment, a tire having an equatorial plane includes a first bead portion and a second bead portion. The tire further includes a first side and a second side defining a first mounting position and a second mounting position of the tire. In the first mounting position, the first side faces away from a longitudinal axis of a vehicle, and in the second mounting position, the second side faces away from a longitudinal axis of the vehicle. The tire further includes at least one carcass ply extending from the first bead portion to the second bead portion, and a circumferential belt disposed above the at least one carcass ply. The tire also includes a circumferential tread having a plurality of tread elements disposed above the circumferential belt. At least one of the at least one carcass ply and the plurality of tread elements causes the tire to exhibit a first on- vehicle lateral performance when in the first mounting position on a front axle of the vehicle and the second mounting position on a rear axle of the vehicle, and a second on-vehicle lateral performance when in the first mounting position on the rear axle of the vehicle and the second mounting position on the front axle of the vehicle.
[0015] In yet another embodiment, a method of mounting a plurality of tires on a vehicle having a front axle and a rear axle is disclosed. The method includes providing four tires, including a first tire, a second tire, a third tire, and a fourth tire. Each of the four tires has a first bead portion and a second bead portion, a first side, a second side, at least one carcass ply extending from the first bead portion to the second bead portion, a circumferential belt disposed above the at least one carcass ply, and a circumferential tread disposed above the circumferential belt. The first side of each of the four tires is substantially the same, and the second side of each of the four tires is substantially the same. Likewise, the circumferential tread of each of the four tires is substantially the same. The method further includes mounting the first tire on a first wheel, mounting the second tire on a second wheel, mounting the third tire on a third wheel, and mounting the fourth tire on a fourth wheel. The method also includes mounting the first wheel on a left end of a front axle of a vehicle, such that the first side of the first tire faces away from a longitudinal axis of the vehicle and such that the first tire exhibits a first performance. The method additionally includes mounting the second wheel on a right end of the front axle of the vehicle, such that the second side of the second tire faces away from the longitudinal axis of the vehicle and such that the second tire exhibits the first performance. The method further includes mounting the third wheel on a left end of a rear axle of the vehicle, such that the second side of the third tire faces away from the longitudinal axis of the vehicle and such that the third tire exhibits a second performance that is lower than the first performance. The method also includes mounting the fourth wheel on a right end of the rear axle of the vehicle, such that the first side of the fourth tire faces away from the longitudinal axis of the vehicle and such that the fourth tire exhibits the second performance.
[0016] In still another embodiment, a method of mounting a plurality of tires on a vehicle having a front axle and a rear axle is disclosed. The method includes providing four tires, including a first tire, a second tire, a third tire, and a fourth tire. Each of the four tires has a first bead portion and a second bead portion, a first side, a second side, a carcass ply extending from the first bead portion to the second bead portion, a belt disposed above the carcass ply, and a circumferential tread disposed above the belt, wherein at least one of the circumferential tread and the carcass ply causes the tire to be reflectively asymmetric about an equatorial plane. The first side of each of the four tires is substantially the same, and the second side of each of the four tires is substantially the same. Likewise, the circumferential tread of each of the four tires is substantially the same. The method further includes mounting the first tire on a first wheel, mounting the second tire on a second wheel, mounting the third tire on a third wheel, and mounting the fourth tire on a fourth wheel. The method also includes mounting the first wheel on a left end of a front axle of a vehicle, such that the first side of the first tire faces away from a longitudinal axis of the vehicle. The method additionally includes mounting the second wheel on a right end of the front axle of the vehicle, such that the first side of the second tire faces away from the longitudinal axis of the vehicle. The method further includes mounting the third wheel on a left end of a rear axle of the vehicle, such that the second side of the third tire faces away from the longitudinal axis of the vehicle, and mounting the fourth wheel on a right end of the rear axle of the vehicle, such that the second side of the fourth tire faces away from the longitudinal axis of the vehicle.
[0017] In yet another embodiment, a method of mounting a plurality of tires on a vehicle having a front axle and a rear axle is disclosed. The method includes providing four tires, including a first tire, a second tire, a third tire, and a fourth tire. Each of the four tires has a first bead portion and a second bead portion, a first side, a second side, at least one carcass ply extending from the first bead portion to the second bead portion, a circumferential belt disposed above the at least one carcass ply, and a circumferential tread disposed above the circumferential belt. Each of the four tires has a circumferential tire design with one of a tread pattern and a carcass ply with discrete rotational asymmetry of the second order. The first side of each of the four tires is substantially the same, and the second side of each of the four tires is substantially the same. Likewise, the circumferential tread of each of the four tires is substantially the same. The method further includes mounting the first tire on a first wheel, mounting the second tire on a second wheel, mounting the third tire on a third wheel, and mounting the fourth tire on a fourth wheel. The method also includes mounting the first wheel on a left end of a front axle of a vehicle, such that the first side of the first tire faces away from a longitudinal axis of the vehicle, and mounting the second wheel on a right end of the front axle of the vehicle, such that the second side of the second tire faces away from the longitudinal axis of the vehicle. The method additionally includes mounting the third wheel on a left end of a rear axle of the vehicle, such that the first side of the third tire faces away from the longitudinal axis of the vehicle, and mounting the fourth wheel on a right end of the rear axle of the vehicle, such that the second side of the fourth tire faces away from the longitudinal axis of the vehicle, thereby providing a first rotational direction on all tires that has a first performance on all tires.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In the accompanying drawings, structures are illustrated that, together with the detailed description provided below, describe exemplary embodiments of the claimed invention. Like elements are identified with the same reference numerals. It should be understood that elements shown as a single component may be replaced with multiple components, and elements shown as multiple components may be replaced with a single component. The drawings are not to scale and the proportion of certain elements may be exaggerated for the purpose of illustration. [0019] Figure 1 is a sample histogram illustrating the distribution of fore/aft forces on front and rear tires of exemplary rear wheel drive vehicles;
[0020] Figure 2 is a schematic drawing of a perspective view of one embodiment of a tire 100 having first and second rolling directions;
[0021] Figure 3 is a schematic drawing of a front view of the tire 100 of
Figure 2;
[0022] Figure 4 is a schematic drawing of a multi-perspective view of the tire 100 of Figure 2, showing the tire in a first orientation and a second orientation;
[0023] Figure 5 is a schematic drawing illustrating a plurality of tires 100 mounted on axles of a vehicle;
[0024] Figure 6 is a schematic drawing illustrating service rotations of the plurality of tires 100 mounted on axles of the vehicle of Figure 5;
[0025] Figure 7 is a schematic drawing of a perspective view of an alternative embodiment of a tire 300 having first and second rolling directions;
[0026] Figure 8 is a schematic drawing of a front view of the tire 300 of
Figure 7;
[0027] Figure 9 is a schematic drawing of a multi-perspective view of the tire 300 of Figure 7, showing the tire in a first orientation and a second orientation;
[0028] Figure 10 is a schematic drawing illustrating a plurality of tires 300 mounted on axles of a vehicle;
[0029] Figure 11 is a schematic drawing illustrating service rotations of the plurality of tires 300 mounted on axles of the vehicle of Figure 10;
[0030] Figure 12 is a schematic drawing of a multi-perspective view of a tire
500 having first and second mounting positions in a first orientation and a second orientation;
[0031] Figure 13 is a schematic drawing illustrating a plurality of tires 500 mounted on axles of a vehicle;
[0032] Figure 14 is a schematic drawing illustrating service rotations of the plurality of tires 500 mounted on axles of the vehicle of Figure 13;
[0033] Figure 15 is a schematic drawing of a profile of one embodiment of a tread element for a tire; [0034] Figure 16 is a schematic drawing of a profile of an alternative embodiment of a tread element for a tire;
[0035] Figure 17 is a schematic drawing of a profile of another alternative embodiment of a tread element for a tire;
[0036] Figure 18 is a schematic drawing of a profile of yet another alternative embodiment of a tread element for a tire;
[0037] Figure 19 is a schematic drawing of a profile of still another alternative embodiment of a tread element for a tire; and
[0038] Figure 20 is a schematic drawing of a profile of yet another alternative embodiment of a tread element for a tire.
DETAILED DESCRIPTION
[0039] The following includes definitions of selected terms employed herein. The definitions include various examples or forms of components that fall within the scope of a term and that may be used for implementation. The examples are not intended to be limiting. Both singular and plural forms of terms may be within the definitions.
[0040] "Axial" or "axially" refer to a direction that is parallel to the axis of rotation of a tire.
[0041] "Bead" refers to the part of the tire that contacts the wheel and defines a boundary of the sidewall.
[0042] "Carcass ply" refers to a structural member that connects the bead to a tread, and may be continuous or discrete.
[0043] "Circumferential" and "circumferentially" refer to a direction extending along the perimeter of the surface of the tread perpendicular to the axial direction.
[0044] "Equatorial plane" refers to the plane that is perpendicular to the tire's axis of rotation and passes through the center of the tire.
[0045] "Radial" and "radially" refer to a direction perpendicular to the axis of rotation of a tire.
[0046] "Sidewall" refers to that portion of the tire between the tread and the bead. [0047] "Tread" refers to that portion of the tire that comes into contact with the road under normal inflation and load.
[0048] Directions are stated in this disclosure with reference to a top view of a vehicle, with respect to a longitudinal axis of the vehicle. The terms "inward" and "inwardly" refer to a general direction towards the longitudinal axis of the vehicle, whereas "outward" and "outwardly" refer to a general direction away from the longitudinal axis of the vehicle. Thus, when relative directional terms such as "inner" and "outer" are used in connection with an element, the "inner" element is spaced closer to the longitudinal axis of the vehicle than the "outer" element. Similarly, the terms "left" and "right" are stated in reference to a top view of the vehicle on which tires are mounted, with respect to a longitudinal axis of the vehicle. The terms "front" and "rear" are also stated in reference to a vehicle on which tires are mounted.
[0049] Figures 2 and 3 show a perspective view and side view, respectively, of a schematic drawing of one embodiment of a tire 100 having an axle specific rolling direction. Figure 4 shows a multi-perspective view of the tire 100 in a first orientation 110a and a second orientation 110b. The tire 100 is described in reference to all of these figures.
[0050] The tire 100 includes a first and second bead portion (not shown), a first sidewall 120a, and a second sidewall 120b. The tire 100 has two rotation directions. When the tire is viewed from the second sidewall 120b (as shown in Figure 3), the first rotation direction of the tire 100 is in the clockwise direction and the second rotation direction of the tire 100 is in the counterclockwise direction.
[0051] The tire 100 further includes at least one carcass ply (not shown) extending from the first bead portion to the second bead portion, a circumferential belt disposed above the carcass ply (not shown), and a circumferential tread 130 disposed above the belt. The circumferential tread 130 has a tread pattern shown schematically at 140. In one embodiment, the tread pattern 140 has discrete rotational asymmetry of the second order, which causes the tire 100 to be directional. Therefore, when the tire 100 is in the first orientation 110a, the tread pattern 140 has a first appearance, and when the tire 100 is placed in the second orientation 110b, the reversed tread pattern 140 has a second appearance different from the first appearance.
[0052] The asymmetry of the tread pattern may cause the tread to exhibit different properties when the tire 100 is rotated in the first direction versus the second direction. The tread pattern and the position and orientation of the carcass ply may be selected such that desirable properties for a front tire are exhibited when the tire 100 is rotated in the first direction, and desirable properties for a rear tire are exhibited when the tire 100 is rotated in the second direction.
[0053] For example, the tread pattern may be selected such that when the tire is rotated in the first rotation direction, the circumferential tread exhibits a first braking performance and a first driving traction performance, and when the tire is rotated in the second direction, the circumferential tread exhibits a second braking performance that is lower than the first braking performance and a second driving traction performance that is higher than the first driving traction performance. In rear wheel drive vehicles, it may be more advantageous for the rear tires to exhibit higher driving traction performance. In front wheel drive vehicles, it may be more advantageous for the front tires to exhibit higher driving traction performance.
[0054] In another example, the tread pattern may be selected such that the circumferential tread exhibits a first wear performance when rotated in the first direction, and a second wear performance different from the first wear performance when rotated in the second direction. For example, in front wheel drive vehicles, front tires tend to wear faster. In rear wheel drive tires, rear tires tend to wear faster. The tread pattern may be selected to reduce the discrepancy between the wear rates of front and rear tires.
[0055] In yet another example, the tread pattern may be selected such that the circumferential tread exhibits a first snow traction performance when rotated in the first direction, and a second snow traction performance that is different from the first snow traction performance when rotated in the second direction. The tread pattern may also be selected such that other properties are affected by a change in rotation direction. [0056] Additionally, or in the alternative, the position and orientation of the carcass ply may be selected such that the carcass ply causes the tire to exhibit different properties according to the rotation direction. Such differences in carcass plies may not be readily observable from the exterior of the tire, but the tire would still exhibit asymmetric properties.
[0057] In one embodiment, the first rotation direction may be indicated as a Front Rotation Direction, and the second rotation direction may be indicated as a Rear Rotation Direction on one or more locations on the tire. As can be seen in the illustrated embodiment, a first indicia 150a is disposed on the first sidewall 120a and a second indicia 150b is disposed on the second sidewall 120b of the tire 100. Both the first indicia 150a and the second indicia 150b include an indicator designating the first rotation direction as a front tire rotation direction and the second rotation direction as a rear tire rotation direction. While the illustrated embodiment shows arrows with a written description, it should be understood that the indicia may take any form or size.
[0058] Such indicia may be used to aid a person in mounting axle specific tires on a vehicle. As shown in Figure 5, the properties of the tire 100 may be selected so that four tires having substantially the same sidewalls, carcass plies, and circumferential tread may be mounted on a vehicle 200 in such a way that first and second tires 100i, IOO2 on a front axle 210 exhibit different properties than third and fourth tires IOO3, IOO4 mounted on a rear axle 220.
[0059] In the illustrated embodiment, the first tire lOOi is mounted on a first wheel (not shown), the second tire IOO2 is mounted on a second wheel (not shown), the third tire IOO3 is mounted on a third wheel (not shown), and the fourth tire IOO4 is mounted on a fourth wheel (not shown). The first wheel and tire are mounted on a left end of the front axle 210 of a vehicle 200, such that a first sidewall 120ai of the first tire lOOi faces outwards, (i.e., away from a longitudinal axis A of the vehicle 200), and a second sidewall 120bi of the first tire lOOi faces inwards (i.e., towards the longitudinal axis A of the vehicle 200). The second wheel and tire are mounted on a right end of the front axle 210 of the vehicle 200, such that a first sidewall 120a2 of the second tire IOO2 faces inwards, and a second sidewall 120b2 of the second tire IOO2 faces outwards. The third wheel and tire are mounted on a left end of the rear axle 220 of the vehicle 200, such that a first sidewall 120a3 of the third tire IOO3 faces inwards, and a second sidewall 120b3 of the third tire IOO3 faces outwards. The fourth wheel and tire are mounted on a right end of the rear axle 220 of the vehicle 200, such that a first sidewall 120a4 of the fourth tire 1004 faces outwards, and a second sidewall 120b4 of the fourth tire IOO4 faces inwards.
[0060] It should be understood that the tires may be mounted on the vehicle in any order, and that certain steps described above may be performed concurrently or in a different order.
[0061] When servicing the vehicle, the tires may be rotated in the manner illustrated in Figure 6, without having to dismount the tires from the wheels. The first wheel and tire are removed from the front axle 210 of the vehicle 200 and the fourth wheel and tire are removed from the rear axle 220 of the vehicle 200. The first wheel and tire are mounted on the right end of the rear axle 220 of the vehicle 200, such that the first sidewall 120ai of the first tire lOOi faces outwards, and the second sidewall 120bi of the first tire lOOi faces inwards. The fourth wheel and tire are mounted on the left end of the front axle 210 of the vehicle 200, such that a first sidewall 120a4 of the fourth tire 1004 faces outwards, and a second sidewall 120b4 of the fourth tire 1004 faces inwards.
[0062] The second wheel and tire are removed from the front axle 210 of the vehicle 200 and the third wheel and tire are removed from the rear axle 220 of the vehicle 200. The second wheel and tire are mounted on the left end of the rear axle 220 of the vehicle 200, such that a first sidewall 120a2 of the second tire IOO2 faces inwards, and a second sidewall 120b2 of the second tire IOO2 faces outwards. The third wheel and tire are mounted on the right end of the front axle 210 of the vehicle 200, such that a first sidewall 120a3 of the third tire IOO3 faces inwards, and a second sidewall 120b3 of the third tire IOO3 faces outwards.
[0063] It should be understood that the steps of rotating tires may be performed in any order and that certain steps described above may be performed concurrently or in a different order. Additionally, it should also be understood that the tires may be dismounted from the wheels such that they may be remounted in any position.
[0064] While Figures 2-6 illustrate bidirectional tires that exhibit desirable front tire characteristics when rotated in a first direction, and desirable rear tire characteristics when rotated in a second direction, bidirectional tires may also be designed to exhibit desirable summer performance characteristics when rotated in a first direction, and desirable winter performance characteristics when rotated in a second direction. Figures 7 and 8 show a perspective view and side view, respectively, of a schematic drawing of one embodiment of a tire 300 having a season specific rolling direction. Figure 9 shows a multi-perspective view of the tire 300 in a first orientation 310a and a second orientation 310b. The tire 300 is described in reference to all of these figures.
[0065] The tire 300 includes a first and second bead portion (not shown), a first side wall 320a, and a second sidewall 320b. The tire 300 has two rotation directions. When the tire is viewed from the second sidewall 320b (as shown in Figure 8), the first rotation direction of the tire 300 is in the clockwise direction and the second rotation direction of the tire 300 is in the counterclockwise direction.
[0066] The tire 300 further includes at least one carcass ply (not shown) extending from the first bead portion to the second bead portion, a circumferential belt disposed above the carcass ply (not shown), and a circumferential tread 330 disposed above the belt. The circumferential tread 330 has a tread pattern shown schematically at 340. In one embodiment, the tread pattern 340 has discrete rotational asymmetry of the second order, which causes the tire 300 to be directional. Therefore, when the tire 300 is in the first orientation 310a, the tread pattern 340 has a first appearance, and when the tire 300 is placed in the second orientation 310b, the reversed tread pattern 340 has a second appearance different from the first appearance.
[0067] The asymmetry of the tread pattern may cause the tread to exhibit different properties when the tire 300 is rotated in the first direction versus the second direction. The tread pattern and the position and orientation of the carcass ply may be selected such that desirable properties for summer performance are exhibited when the tire 300 is rotated in the first direction, and desirable properties for winter performance are exhibited when the tire 300 is rotated in the second direction.
[0068] For example, the tread pattern may be selected such that the circumferential tread exhibits a first snow traction performance when rotated in the first direction, and a second snow traction performance that is different from the first snow traction performance when rotated in the second direction. The tread pattern may also be selected such that other properties are affected by a change in rotation direction.
[0069] In another example, the tread pattern may be selected such that when the tire is rotated in the first rotation direction, the circumferential tread exhibits a first stopping distance performance, and when the tire is rotated in the second direction, the circumferential tread exhibits a second stopping distance performance that is lower than the first stopping performance. Stopping distance performance may be more important in summer, when vehicles tend to be driven at higher speeds.
[0070] In yet another example, the tread pattern may be selected such that the circumferential tread exhibits a first wear performance when rotated in the first direction, and a second wear performance different from the first wear performance when rotated in the second direction. For example, tires tend to wear slower in the winter when they are driven over snow. The tread pattern may be selected to reduce the discrepancy between the wear rates in summer and winter.
[0071] In still another example, the tread pattern may be selected such that the circumferential tread exhibits a first noise performance when rotated in the first direction, and a second noise performance different from the first noise performance when rotated in the second direction. For example, tires tend to be quieter in the winter when they are driven over snow. The tread pattern may be selected to reduce the discrepancy between the tire noise in summer and winter.
[0072] Additionally, or in the alternative, the position and orientation of the carcass ply may be selected such that the carcass ply causes the tire to exhibit different properties according to the rotation direction. Such differences in carcass plies may not be readily observable from the exterior of the tire, but the tire would still exhibit asymmetric properties.
[0073] In one embodiment, the first rotation direction may be indicated as a Summer Rotation Direction, and the second rotation direction may be indicated as a Winter Rotation Direction on one or more locations on the tire. As can be seen in the illustrated embodiment, a first indicia 350a is disposed on the first sidewall 320a and a second indicia 350b is disposed on the second sidewall 320b of the tire 300. Both the first indicia 350a and the second indicia 350b include an indicator designating the first rotation direction as a summer rotation direction and the second rotation direction as a winter rotation direction. While the illustrated embodiment shows arrows with a written description, it should be understood that the indicia may take any form or size.
[0074] Such indicia may be used to aid a person in mounting season specific tires on a vehicle. As shown in Figure 10, the properties of the tire 300 may be selected so that four tires having substantially the same sidewalls, carcass plies, and circumferential tread may be mounted on a vehicle 400 in such a way that all tires 300i, 3002, 3ΟΟ3, 3004 exhibit desirable summer performance characteristics.
[0075] In the illustrated embodiment, the first tire 300i is mounted on a first wheel (not shown), the second tire 3ΟΟ2 is mounted on a second wheel (not shown), the third tire 3ΟΟ3 is mounted on a third wheel (not shown), and the fourth tire 3004 is mounted on a fourth wheel (not shown). The first wheel and tire are mounted on a left end of the front axle 410 of a vehicle 400, such that a first sidewall 320ai of the first tire 300i faces outwards, (i.e., away from a longitudinal axis A of the vehicle 400), and a second sidewall 320bi of the first tire 300i faces inwards (i.e., towards the longitudinal axis A of the vehicle 400). The second wheel and tire are mounted on a right end of the front axle 410 of the vehicle 400, such that a first sidewall 320a2 of the second tire 3ΟΟ2 faces inwards, and a second sidewall 320b2 of the second tire 3ΟΟ2 faces outwards. The third wheel and tire are mounted on a left end of the rear axle 420 of the vehicle 400, such that a first sidewall 320a3 of the third tire 3ΟΟ3 faces outwards, and a second sidewall 320b3 of the third tire 3ΟΟ3 faces inwards. The fourth wheel and tire are mounted on a right end of the rear axle 420 of the vehicle 400, such that a first sidewall 320a4 of the fourth tire 3004 faces inwards, and a second sidewall 320b4 of the fourth tire IOO4 faces outwards.
[0076] It should be understood that the tires may be mounted on the vehicle in any order, and that certain steps described above may be performed concurrently or in a different order.
[0077] To change direction of the tires when the season changes, the tires may be rotated in the manner illustrated in Figure 11, without having to dismount the tires from the wheels. The first wheel and tire are removed from the front axle 410 of the vehicle 400 and the fourth wheel and tire are removed from the rear axle 420 of the vehicle 400. The first wheel and tire are mounted on the right end of the rear axle 420 of the vehicle 400, such that the first sidewall 320ai of the first tire 300i faces outwards, and the second sidewall 320b 1 of the first tire 300i faces inwards. The fourth wheel and tire are mounted on the left end of the front axle 410 of the vehicle 400, such that a first sidewall 320a4 of the fourth tire 3004 faces inwards, and a second sidewall 320b4 of the fourth tire 1004 faces outwards.
[0078] The second wheel and tire are removed from the front axle 410 of the vehicle 400 and the third wheel and tire are removed from the rear axle 420 of the vehicle 400. The second wheel and tire are mounted on the left end of the rear axle 420 of the vehicle 400, such that a first sidewall 320a2 of the second tire 3ΟΟ2 faces inwards, and a second sidewall 320b2 of the second tire 3ΟΟ2 faces outwards. The third wheel and tire are mounted on the right end of the front axle 410 of the vehicle 400, such that a first sidewall 320a3 of the third tire 3ΟΟ3 faces outwards, and a second sidewall 320b3 of the third tire 3ΟΟ3 faces inwards.
[0079] It should be understood that the steps of rotating tires may be performed in any order and that certain steps described above may be performed concurrently or in a different order. Additionally, it should also be understood that the tires may be dismounted from the wheels such that they may be remounted in any position. [0080] Figure 12 shows a multi-perspective view of another embodiment of a tire 500 in a first orientation 510a and a second orientation 510b. The tire 500 includes a first and second bead portion (not shown), a first sidewall 520a, and a second sidewall 520b. The first and second sidewall 520a,b define a first mounting position and a second mounting position of the tire, in that the first sidewall 520a faces outwards in the first mounting position, and the second sidewall faces 520b faces outwards in the second mounting position.
[0081] The tire 500 further includes at least one carcass ply (not shown) extending from the first bead portion to the second bead portion, a circumferential belt disposed above the carcass ply (not shown), and a circumferential tread 530 disposed above the belt. The circumferential tread 530 has a tread pattern shown schematically at 540. The tread pattern 540 is asymmetric about the equatorial plane of the tire 500. Therefore, when the tire 500 is in the first orientation shown in Figure 4, the tread pattern 540 has a first appearance, and when the tire 500 is rotated to the second orientation shown in Figure 7, the reversed tread pattern 540 has a second appearance different from the first appearance.
[0082] The asymmetry of the tread pattern may cause the tread to exhibit different properties when the tire 100 is mounted in the first mounting position versus the second mounting position. For example, the tread pattern may be selected to account for first wear characteristics when a tire is mounted in the first position, and to account for second wear characteristics different from the first wear characteristics when the tire is mounted in the second position. As one of ordinary skill in the art would understand, the front and rear tires may have different cambers. Additionally, the weight of the vehicle may be distributed different on the front and rear axles. These differences may cause the front tires to have different footprints from the rear tires. The tread patterns in the first and second mounting positions of the tires may be selected to account for these different footprints.
[0083] In another example, the tread pattern may be selected such that the circumferential tread exhibits a first snow traction performance when mounted in the first position, and a second snow traction performance different from the first snow traction performance when mounted in the second position.
[0084] The tread pattern may also be selected such that other properties are affected by a change in mounting position. For example, the front and rear tires of a vehicle may experience different lateral forces. The tread pattern may be selected to effectively manage these different lateral forces.
[0085] Additionally, or in the alternative, the position and orientation of the carcass ply may be selected such that the carcass ply causes the tire to exhibit different properties according to the mounting position. Such differences in carcass plies may not be readily observable from the exterior of the tire, but the tire would still exhibit asymmetric properties.
[0086] The tread pattern and the position and orientation of the carcass ply may be designed to account for the different forces that are exhibited on the front and rear tires. Such different forces may cause the front and rear tires to wear differently.
[0087] In such an embodiment, the first mounting direction may be indicated as a Front Mounting Position, and the second rotation direction may be indicated as a Rear Mounting Position on one or more locations on the tire. As can be seen in the illustrated embodiment, a first indicia 550a is disposed on the first sidewall 520a and a second indicia 550b is disposed on the second sidewall 520b of the tire 500. While the illustrated embodiment shows indicia that includes a written description, it should be understood that the indicia may take any form or size.
[0088] Such indicia may be used to aid a person in mounting axle specific tires on a vehicle. As shown in Figure 8, the properties of the tire 500 may be selected so that four tires having substantially the same sidewalls, carcass plies, and circumferential tread may be mounted on a vehicle 600 in such a way that first and second tires 500i, 5002 on a front axle 610 exhibit different properties than third and fourth tires 5ΟΟ3, 5004 mounted on a rear axle 620.
[0089] In the illustrated embodiment, the first tire 500i is mounted on a first wheel (not shown), the second tire 5ΟΟ2 is mounted on a second wheel (not shown), the third tire 5ΟΟ3 is mounted on a third wheel (not shown), and the fourth tire 5004 is mounted on a fourth wheel (not shown). The first wheel and tire are mounted on a left end of the front axle 610 of a vehicle 600, such that a first sidewall 520ai of the first tire 500i faces outwards, and a second sidewall 520bi of the first tire 500i faces inwards. The second wheel and tire are mounted on a right end of the front axle 610 of the vehicle 600, such that a first sidewall 520a2 of the second tire 5ΟΟ2 faces outwards, and a second sidewall 520b2 of the second tire 5ΟΟ2 faces inwards. The third wheel and tire are mounted on a left end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a3 of the third tire 5ΟΟ3 faces inwards, and a second sidewall 520b3 of the third tire 5ΟΟ3 faces outwards. The fourth wheel and tire are mounted on a right end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a4 of the fourth tire 5004 faces inwards, and a second sidewall 520b4 of the fourth tire 5004 faces outwards.
[0090] It should be understood that the tires may be mounted on the vehicle in any order, and that certain steps described above may be performed concurrently or in a different order.
[0091] When servicing the vehicle, the tires may be rotated in the manner illustrated in Figure 9, without having to dismount the tires from the wheels. The first wheel and tire, and second wheel and tire are removed from the front axle 610 of the vehicle 600. The first wheel and tire are mounted on the right end of the front axle 620 of the vehicle 600, such that the first sidewall 520ai of the first tire 500i faces outwards, and the second sidewall 520bi of the first tire 500i faces inwards. The second wheel and tire are mounted on the left end of the front axle 610 of the vehicle 600, such that a first sidewall 520a2 of the second tire 5ΟΟ2 faces outwards, and a second sidewall 520b2 of the second tire 5ΟΟ2 faces inwards.
[0092] The third wheel and tire, and fourth wheel and tire are removed from the rear axle 620 of the vehicle 600. The third wheel and tire are mounted on the right end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a3 of the third tire 5ΟΟ3 faces inwards, and a second sidewall 520b3 of the third tire 5ΟΟ3 faces outwards. The fourth wheel and tire are mounted on the left end of the rear axle 620 of the vehicle 600, such that a first sidewall 520a4 of the fourth tire 5004 faces inwards, and a second sidewall 520b4 of the fourth tire 5004 faces outwards. [0093] It should be understood that the steps of rotating tires may be performed in any order and that certain steps described above may be performed concurrently or in a different order. Additionally, it should also be understood that the tires may be dismounted from the wheels such that they may be remounted in any position.
[0094] In each of the embodiments described above, and illustrated in Figures 2-14, directional tread elements may be selected for the tire that display first characteristics when rotated in a first direction, and second characteristics different from the first characteristics when rotated in a second direction opposite the first direction. Figures 15-19 illustrate examples of tread elements that exhibit different characteristics in different rolling directions. While each of these figures illustrate a single feature, it should be understood that tread elements may employ two or more of the illustrated features. For the sake of brevity the various combinations of features are not shown herein.
[0095] Figure 15 is a profile view of one embodiment of a tread element 700 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2. The tread element 700 includes a first wall 710 and a second wall 720. The first wall 710 is disposed at a first angle < i with respect to the base 730 of a groove in the tire. The second wall 720 is disposed at a second angle 0.2 with respect to the base 730 of a groove in the tire that is greater than the first angle <xi. When the tire is rotated in the first direction Di, the top of the tread element 700 and the first wall 710 form a leading edge (i.e. , the edge that first comes into contact with the rolling surface). When the tire is rotated in the second direction D2, the top of the tread element 700 and the second wall 720 form a leading edge. The shallower angle < i of the first wall 710 causes lower edge pressure on the tread element 700 when the tire is rotated in the first direction Di, compared to when the tire is rotated in the second direction D2. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
[0096] Figure 16 is a profile view of another embodiment of a tread element 800 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2. The tread element 800 includes a first wall 810 and a second wall 820. The tread element 800 includes a plurality of sipes 830 adjacent the second wall, and no sipes adjacent the first wall. In an alternative embodiment (not shown), the tread element may have sipes adjacent both wall, but a greater number of sipes adjacent the second wall.
[0097] When the tire is rotated in the first direction Di, the top of the tread element 800 and the first wall 810 form a leading edge. When the tire is rotated in the second direction D2, the top of the tread element 800 and the second wall 820 form a leading edge, and the sipes 830 provide additional edges adjacent the leading edge. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
[0098] Figure 17 is a profile view of yet another embodiment of a tread element 900 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2. The tread element 900 includes a first wall 910 and a second wall 920. The tread element 900 includes a plurality of angled sipes 930. When the tire is rotated in the first direction Di, the rolling surface provides a shear force on the top of the tread element 900 that causes the angled sipes 930 to open and provide additional edges. When the tire is rotated in the second direction D2, the rolling surface provides a shear force on the top of the tread element 900 that causes the angled sipes 930 to close, thereby eliminating the additional edges. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
[0099] Figure 18 is a profile view of still another embodiment of a tread element 1000 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2. The tread element 1000 includes a first wall 1010 and a second wall 1020. The tread element 1000 includes a plurality of ratchet- shaped sipes 1030, that may be referred to as three- dimensional (or 3D) sipes 1030. When the tire is rotated in the first direction Di, the rolling surface provides a shear force on the top of the tread element 1000 that causes the ratchet- shaped sipes 1030 to open and provide additional edges. When the tire is rotated in the second direction D2, the rolling surface provides a shear force on the top of the tread element 1000 that causes the ratchet- shaped sipes 1030 to close, thereby eliminating the additional edges. This effect is utilized to achieve directional performance of the lug related to traction, wear, noise and other tire performance characteristics.
[0100] Figure 19 is a profile view of still another embodiment of a tread element 1100 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2. The tread element 1100 includes a first wall 1110 and a second wall 1120. The tread element 1100 includes an edge treatment. In this embodiment, the edge treatment is a rounded chamfer 1130 extending from the second wall 1120 to a top surface of the tread element 1100. When the tire is rotated in the first direction Di, the top of the tread element 1100 and the first wall 1110 form a leading edge. When the tire is rotated in the second direction D2, the top of the tread element 1100 and the second wall 1120 form a leading edge. The rounded chamfer 1130 extending from the second wall 1120 causes lower edge pressure on the tread element 1100 when the tire is rotated in the second direction D2, compared to when the tire is rotated in the first direction Di. It should be understood that other edge treatments may also be employed, such as planar chamfers.
[0101] It should be understood that the tread element 1100 may be a lug, bounded by a pair of grooves. Alternatively, the tread element 1100 may represent a portion of a lug, bounded by a pair of sipes.
[0102] In the illustrated embodiment, the rounded chamfer 1130 has a length that is substantially greater than its height. In one particular embodiment, the length is four times greater than the height. In another known embodiment, the length is two times greater than the height. In an alternative embodiment (not shown), the height is greater than or equal to the length.
[0103] Figure 20 is a profile view of still another embodiment of a tread element 1200 that exhibits first characteristics in a first rolling direction Di and second characteristics in a second rolling direction D2. The tread element 1200 shows that multiple features may be encompassed in a single tread element. In the illustrated embodiment, the tread element 1200 includes a first wall 1210, and an edge treatment such as a rounded chamfer 1130 extending from the second wall 1220 to a top surface of the tread element 1200. The tread element further includes ratchet shaped sipes 1240 that are disposed at an angle and proximal to the first wall 1210. However, it should be understood that any combination of the above embodiments may be included in a single tread element.
[0104] To the extent that the term "includes" or "including" is used in the specification or the claims, it is intended to be inclusive in a manner similar to the term "comprising" as that term is interpreted when employed as a transitional word in a claim. Furthermore, to the extent that the term "or" is employed (e.g., A or B) it is intended to mean "A or B or both." When the applicants intend to indicate "only A or B but not both" then the term "only A or B but not both" will be employed. Thus, use of the term "or" herein is the inclusive, and not the exclusive use. See, Bryan A. Garner, A Dictionary of Modern Legal Usage 624 (2d. Ed. 1995). Also, to the extent that the terms "in" or "into" are used in the specification or the claims, it is intended to additionally mean "on" or "onto." Furthermore, to the extent the term "connect" is used in the specification or claims, it is intended to mean not only "directly connected to," but also "indirectly connected to" such as connected through another component or components.
[0105] While the present disclosure has been illustrated by the description of embodiments thereof, and while the embodiments have been described in considerable detail, it is not the intention of the applicants to restrict or in any way limit the scope of the appended claims to such detail. Additional advantages and modifications will readily appear to those skilled in the art. Therefore, the disclosure, in its broader aspects, is not limited to the specific details, the representative apparatus and method, and illustrative examples shown and described. Accordingly, departures may be made from such details without departing from the spirit or scope of the applicant's general inventive concept.

Claims

CLAIMS What is claimed is:
1. A tire having an equatorial plane, the tire comprising:
a first side and a second side defining a first rotation direction and a second rotation direction of the tire,
wherein the first rotation direction of the tire is a rotation of the tire in a counterclockwise direction when the tire is viewed from the first side, and
wherein the second rotation direction of the tire is a rotation of the tire in a clockwise direction when the tire is viewed from the first side;
a carcass ply extending from a first bead portion to a second bead portion; and
a circumferential tread disposed above a belt,
wherein at least one of the circumferential tread and the carcass ply causes the tire to exhibit a first tire performance when the tire is rotated in the first rotation direction, and a second tire performance that is different from the first tire performance when the tire is rotated in the second rotation direction, wherein the tire performance is selected from the group consisting of braking, dry driving traction, noise, wear performance, and snow traction performance.
2. The tire of claim 1, wherein the circumferential tread includes a plurality of tread elements, and wherein at least one of the plurality of tread elements includes a rounded chamfer disposed between a wall and a top surface of the tread element.
3. The tire of claim 1, wherein the circumferential tread includes a plurality of tread elements, and wherein at least one of the plurality of tread elements includes at least one angled sipe.
4. The tire of claim 1 , wherein the circumferential tread includes a plurality of tread elements, and wherein at least one of the plurality of tread elements includes at least one ratchet-shaped sipe.
5. The tire of claim 1, further comprising first indicia disposed on the first side and second indicia disposed on the second side, wherein the first indicia includes an indicator designating the first rotation direction as a front tire rotation direction and the second rotation direction as a rear tire rotation direction, and wherein the second indicia includes an indicator designating the first rotation direction as a front tire rotation direction and the second rotation direction as a rear tire rotation direction.
6. The tire of claim 1, further comprising first indicia disposed on the first side and second indicia disposed on the second side, wherein the first indicia includes an indicator designating the first rotation direction as a summer rotation direction and the second rotation direction as a winter rotation direction, and wherein the second indicia includes an indicator designating the first rotation direction as a summer rotation direction and the second rotation direction as a winter rotation direction.
7. The tire of claim 1, wherein the circumferential tread includes a plurality of tread elements with each tread element having a top surface, and wherein at least one of the plurality of tread elements includes a plurality of sipes having a greater sipe density on a first half of the top surface.
8. A tire having an equatorial plane, the tire comprising:
a first bead portion and a second bead portion;
a first side and a second side defining a first mounting position and a second mounting position of the tire,
where in the first mounting position, the first side faces away from a longitudinal axis of a vehicle, and
where in the second mounting position, the second side faces away from a longitudinal axis of the vehicle; at least one carcass ply extending from the first bead portion to the second bead portion; a circumferential belt disposed above the at least one carcass ply; a circumferential tread having a plurality of tread elements disposed above the circumferential belt, wherein at least one of the at least one carcass ply and the plurality of tread elements causes the tire to exhibit a first on- vehicle lateral performance when in the first mounting position on a front axle of the vehicle and the second mounting position on a rear axle of the vehicle, and a second on-vehicle lateral performance when in the first mounting position on the rear axle of the vehicle and the second mounting position on the front axle of the vehicle.
9. The tire of claim 8, further comprising a first indicia disposed on the first side, the first indicia indicating that the first side is to be outwardly facing on a front axle of a vehicle.
10. The tire of claim 9, further comprising a second indicia disposed on the second side, the second indicia indicating that the second side is to be outwardly facing on a rear axle of a vehicle.
11. The tire of claim 8, wherein at least one of the plurality of tread elements includes a rounded chamfer disposed between a wall and a top surface of the tread element.
12. A method of mounting a plurality of tires on a vehicle having a front axle and a rear axle, the method comprising:
providing four tires, including a first tire, a second tire, a third tire, and a fourth tire,
wherein each of the four tires has a first bead portion and a second bead portion, a first side, a second side, at least one carcass ply extending from the first bead portion to the second bead portion, a circumferential belt disposed above the at least one carcass ply, and a circumferential tread disposed above the circumferential belt,
wherein the first side of each of the four tires is substantially the same,
wherein the second side of each of the four tires is substantially the same, wherein the circumferential tread of each of the four tires is substantially the same;
mounting the first tire on a first wheel;
mounting the second tire on a second wheel;
mounting the third tire on a third wheel;
mounting the fourth tire on a fourth wheel;
mounting the first wheel on a left end of a front axle of a vehicle, such that the first side of the first tire faces away from a longitudinal axis of the vehicle and such that the first tire exhibits a first performance;
mounting the second wheel on a right end of the front axle of the vehicle, such that the second side of the second tire faces away from the longitudinal axis of the vehicle and such that the second tire exhibits the first performance;
mounting the third wheel on a left end of a rear axle of the vehicle, such that the second side of the third tire faces away from the longitudinal axis of the vehicle and such that the third tire exhibits a second performance that is lower than the first performance; and
mounting the fourth wheel on a right end of the rear axle of the vehicle, such that the first side of the fourth tire faces away from the longitudinal axis of the vehicle and such that the fourth tire exhibits the second performance.
13. The method of claim 12, wherein each of the four tires includes a first indicia disposed on the first side and a second indicia disposed on the second side, the first indicia including an indicator designating a counterclockwise direction as a front tire rotation direction and a clockwise direction as a rear tire rotation direction, and the second indicia including an indicator designating a clockwise direction as a front tire rotation direction and a counterclockwise direction as a rear tire rotation direction.
14. The method of claim 12, wherein the circumferential tread of each of the four tires has a tread pattern with discrete rotational asymmetry of the second order. The method of claim 12, further comprising:
removing the first wheel and first tire from the front axle of the vehicle;
removing the second wheel and second tire from the front axle of the vehicle;
removing the third wheel and third tire from the rear axle of the vehicle;
removing the fourth wheel and fourth tire from the rear axle of the vehicle;
mounting the first wheel and first tire on the right end of the rear axle of the vehicle, such that the first side of the first tire faces away from the longitudinal axis of the vehicle;
mounting the second wheel on the left end of the rear axle of the vehicle, such that the second side of the second tire faces away from the longitudinal axis of the vehicle;
mounting the third wheel on the right end of the front axle of the vehicle, such that the second side of the third tire faces away from the longitudinal axis of the vehicle; and
mounting the fourth wheel and fourth tire on the left end of the front axle of the vehicle, such that the first side of the fourth tire faces away from the longitudinal axis of the vehicle.
PCT/US2013/074038 2012-12-19 2013-12-10 Tire with bi-directional performance WO2014099471A1 (en)

Priority Applications (9)

Application Number Priority Date Filing Date Title
BR112015014264A BR112015014264A2 (en) 2012-12-19 2013-12-10 bi-directional performance tire
JP2015549457A JP6141448B2 (en) 2012-12-19 2013-12-10 Tire with bi-directional performance
EP21161032.4A EP3851296B1 (en) 2012-12-19 2013-12-10 Tire with bi-directional performance
RU2015128492/11A RU2583014C1 (en) 2012-12-19 2013-12-10 Tyre with bidirectional characteristic
CN201380066321.5A CN104918794B (en) 2012-12-19 2013-12-10 Tire with equatorial plane
EP13865777.0A EP2934918B1 (en) 2012-12-19 2013-12-10 Tire with bi-directional performance
EP19190785.6A EP3590731B1 (en) 2012-12-19 2013-12-10 Tire with bi-directional performance
US14/653,009 US20150336429A1 (en) 2012-12-19 2013-12-10 Tire with bi-directional performance
US16/448,134 US12115818B2 (en) 2012-12-19 2019-06-21 Tire with bi-directional performance

Applications Claiming Priority (2)

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US201261739320P 2012-12-19 2012-12-19
US61/739,320 2012-12-19

Related Child Applications (2)

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US14/653,009 A-371-Of-International US20150336429A1 (en) 2012-12-19 2013-12-10 Tire with bi-directional performance
US16/448,134 Division US12115818B2 (en) 2012-12-19 2019-06-21 Tire with bi-directional performance

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EP (3) EP3851296B1 (en)
JP (2) JP6141448B2 (en)
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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9885706B2 (en) 2012-12-17 2018-02-06 Abbott Point Of Care Inc. Portable clinical analysis system for immunometric measurement
WO2018062230A1 (en) 2016-09-27 2018-04-05 コンパニー ゼネラール デ エタブリッスマン ミシュラン Tire tread and tire having this tread
US9952194B2 (en) 2012-12-17 2018-04-24 Abbott Point Of Care Inc. Operation and verification of a portable clinical analysis system
US9949674B2 (en) 2012-12-17 2018-04-24 Abbott Point Of Care Inc. Portable clinical analysis system for hematocrit measurement

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP6693146B2 (en) * 2016-01-26 2020-05-13 住友ゴム工業株式会社 tire
FR3049900A1 (en) * 2016-04-08 2017-10-13 Michelin & Cie DIFFERENTIATED DIRECTIONAL BEARING TAPE FOR A TIRE FOR A HEAVY VEHICLE
FR3049901A1 (en) * 2016-04-08 2017-10-13 Michelin & Cie DIFFERENTIATED DIRECTIONAL BEARING TAPE FOR A TIRE FOR A HEAVY VEHICLE
WO2018062229A1 (en) * 2016-09-27 2018-04-05 コンパニー ゼネラール デ エタブリッスマン ミシュラン Tire tread and tire having this tread
JP7372550B2 (en) * 2020-04-14 2023-11-01 横浜ゴム株式会社 tire
EP4015249B1 (en) * 2020-12-16 2023-11-15 The Goodyear Tire & Rubber Company Winter tire with studs

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH02283505A (en) 1989-04-26 1990-11-21 Yokohama Rubber Co Ltd:The Setting of tire for icy or snowy road
US20030047262A1 (en) * 2000-05-11 2003-03-13 Michelin Recherche Et Technique S.A. Asymmetrical vehicle tire with balanced wet and dry performance
US20080230161A1 (en) * 2005-10-03 2008-09-25 Brigestone Corporation Pneumatic Tire for Motorcycle
JP4428914B2 (en) * 2002-08-30 2010-03-10 株式会社ブリヂストン Tire having asymmetric tread pattern and method for mounting the same
KR20100051078A (en) * 2007-08-07 2010-05-14 스미토모 고무 고교 가부시키가이샤 Pneumatic tire
US20100139826A1 (en) * 2008-12-08 2010-06-10 Tadao Matsumoto Pneumatic tire with asymmetric tread pattern

Family Cites Families (82)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3630077A (en) 1967-02-06 1971-12-28 Campagnie Generale Des Etablis Tire covers
DE2355387A1 (en) 1973-11-06 1975-05-15 Uniroyal Ag VEHICLE AIR TIRES AND PROCEDURE FOR DETERMINING ITS BEST INSTALLATION
US3909906A (en) 1974-03-08 1975-10-07 Kenneth T Macmillan Method of maintaining proper rotational characteristics of a radial tire
US4134362A (en) 1977-01-16 1979-01-16 Kustom Fit Manufacturing Co. Apparatus for marking tire sidewalls
JPS5462283A (en) 1977-10-28 1979-05-19 Bridgestone Tire Co Ltd Forming of mark indicator of tire and side wall
FR2461602A1 (en) * 1979-07-24 1981-02-06 Michelin & Cie PNEUMATIC FOR ROLLING ON SNOW
US4319713A (en) * 1981-01-05 1982-03-16 Eagle-Picher Industries, Inc. Stove blower control accessory
US4343342A (en) 1981-03-25 1982-08-10 The Firestone Tire & Rubber Company Unified modular indicia marking for rubber articles
IT1175345B (en) 1984-02-10 1987-07-01 Pirelli DIRECTIONAL TIRE FOR MOTOR VEHICLES
US4547139A (en) 1984-12-17 1985-10-15 The Goodyear Tire & Rubber Company Tire mold
GB8505414D0 (en) * 1985-03-02 1985-04-03 Sp Tyres Uk Ltd Wheel driven vehicles
GB8505415D0 (en) 1985-03-02 1985-04-03 Sp Tyres Uk Ltd Radial ply tyres
GB8509003D0 (en) 1985-04-09 1985-05-15 Apsley Metals Ltd Vehicle axle unit
GB2192842B (en) 1986-06-13 1991-01-30 Bridgestone Corp Pneumatic tire
DE8707957U1 (en) * 1987-06-04 1987-09-24 Frisch, Anton, 6520 Worms Motor vehicle tires
JPH062864Y2 (en) 1988-04-16 1994-01-26 関東自動車工業株式会社 Car side mudguard
DE3815542A1 (en) 1988-05-06 1989-11-16 Stahlgruber Gruber & Co Otto DEVICE FOR APPLYING ORNAMENTAL RINGS TO ROTATIONALLY SYMMETRIC RUBBER ITEMS, IN PARTICULAR THE VISIBLE SURFACE OF VEHICLE TIRES
FR2643312B1 (en) * 1989-02-22 1991-07-26 Michelin & Cie "HEAVYWEIGHT" TIRE TREAD, WITH CENTRAL RIBS WITH INCLINED INCISIONS
US4984616A (en) 1989-05-25 1991-01-15 The Goodyear Tire & Rubber Company Front and rear tire tread patterns in a four-wheeled tire/vehicle system
JPH03139404A (en) * 1989-10-25 1991-06-13 Bridgestone Corp Pneumatic tire
JPH03143706A (en) * 1989-10-30 1991-06-19 Yokohama Rubber Co Ltd:The Mounting method for pneumatic tire
JPH03186405A (en) * 1989-12-14 1991-08-14 Yokohama Rubber Co Ltd:The Pneumatic radial tire
US5160383A (en) 1990-09-17 1992-11-03 The Goodyear Tire & Rubber Company Tire having identification label affixed thereto
US5200008A (en) 1991-02-07 1993-04-06 Michelin Recherche Et Technique Radial tire tread and method of mounting a tire with said tread
US5353854A (en) * 1991-03-08 1994-10-11 The Goodyear Tire & Rubber Company Pneumatic tire having laterally connected lugs
US5264066A (en) 1991-06-04 1993-11-23 The Goodyear Tire & Rubber Company Tire labeling apparatus
JP3072921B2 (en) 1991-07-04 2000-08-07 住友ゴム工業株式会社 Pneumatic tire
US5230598A (en) * 1992-01-28 1993-07-27 Steves Jr Frank Tire and wheel handling device
JP3172249B2 (en) * 1992-05-07 2001-06-04 株式会社ブリヂストン Pneumatic radial tire
JP2519491Y2 (en) 1992-05-25 1996-12-04 住友ゴム工業株式会社 Label label for rubber tires and label material
JPH06286410A (en) * 1993-03-30 1994-10-11 Bridgestone Corp Pneumatic tire and tire pair for two wheeler
DE4319713A1 (en) * 1993-06-15 1994-12-22 David Brannan Tyre for a vehicle
JP3532995B2 (en) * 1995-03-10 2004-05-31 株式会社ブリヂストン Studless pneumatic tires
JP2989767B2 (en) * 1995-12-28 1999-12-13 住友ゴム工業株式会社 Pneumatic tire
US5826319A (en) 1996-05-29 1998-10-27 Fori Automation, Inc. Method for matchmounting an uniflated automobile tire on a wheel
IT1289701B1 (en) 1996-11-29 1998-10-16 Bridgestone Firestone Tech METHOD FOR MARKING A TIRE
EP1019258A1 (en) * 1997-10-04 2000-07-19 Philip Blood Tyre
AU6772698A (en) 1998-03-25 1999-10-18 Goodyear Tire And Rubber Company, The Tire tread and mold for making treads
JP3064271B2 (en) 1998-11-20 2000-07-12 住友ゴム工業株式会社 Combination of pneumatic tires for automobiles and front and rear wheels used therefor
US7267148B2 (en) 1999-08-10 2007-09-11 Michelin Recherche Et Technique S.A. Measurement of adherence between a vehicle wheel and the roadway
JP3363416B2 (en) 1999-12-21 2003-01-08 住友ゴム工業株式会社 Pneumatic tire
JP2002002233A (en) * 2000-06-22 2002-01-08 Bridgestone Corp Pneumatic tire
DE60117070T2 (en) 2000-08-10 2006-09-14 Société de Technologie Michelin A tire having an asymmetric belt structure and method for mounting a tire on a vehicle
JP4598263B2 (en) 2000-12-08 2010-12-15 株式会社ブリヂストン Pneumatic tire mounting method and pneumatic tire for front wheels
WO2002055324A1 (en) 2001-01-10 2002-07-18 Societe De Technologie Michelin Directional running tread comprising sipes with variable inclination
JP2002274120A (en) 2001-03-15 2002-09-25 Bridgestone Corp Installation method of pneumatic tire and pneumatic tire for front wheel
US6619563B2 (en) 2001-05-14 2003-09-16 Efc Systems, Inc. Manifold block for flow control in coating applications
FR2828134A1 (en) * 2001-08-06 2003-02-07 Michelin Soc Tech Pneumatic tire tread has blocks formed by lengthwise and transverse grooves and having surfaces of predetermined shape
JP3542983B2 (en) 2001-08-21 2004-07-14 住友ゴム工業株式会社 Tire and mounting method
US6783188B2 (en) 2001-10-09 2004-08-31 The Yokohama Rubber Co., Ltd. Method of fitting tire-and-wheel assembled body to axle
JP3723764B2 (en) 2001-11-27 2005-12-07 住友ゴム工業株式会社 Pneumatic tire
US20030211273A1 (en) 2002-05-10 2003-11-13 Karen Perry Tire identification label
JP4308762B2 (en) 2002-08-02 2009-08-05 コンティネンタル・テーベス・アクチエンゲゼルシヤフト・ウント・コンパニー・オッフェネ・ハンデルスゲゼルシヤフト How to assign a car wheel to each axle
JP4266600B2 (en) * 2002-08-30 2009-05-20 株式会社ブリヂストン Tire with asymmetric tread pattern
DE60335740D1 (en) 2002-12-02 2011-02-24 Sumitomo Rubber Ind TIRES WITH DISPLAY MARKING FOR THE ROTATION TIME
JP4107385B2 (en) * 2002-12-03 2008-06-25 横浜ゴム株式会社 Pneumatic tire
JP4309139B2 (en) 2003-01-10 2009-08-05 横浜ゴム株式会社 Tire marking system
JP4597960B2 (en) 2003-03-25 2010-12-15 ソシエテ ド テクノロジー ミシュラン Method of attaching tire to construction machine and tire
US20050224153A1 (en) 2004-04-12 2005-10-13 Al Speyer Use of colored indicia on tires as a designator
DE602005020773D1 (en) 2004-05-27 2010-06-02 Bridgestone Corp TIRE
US7387144B2 (en) 2005-02-25 2008-06-17 Bridgestone Firestone North American Tire, Llc Tire having a textured marking and method of making same
DE602006013802D1 (en) 2005-03-16 2010-06-02 Bridgestone Corp TIRES
WO2007023759A1 (en) * 2005-08-23 2007-03-01 Kabushiki Kaisha Bridgestone Pneumatic tire
JP4800709B2 (en) * 2005-08-25 2011-10-26 株式会社ブリヂストン Pneumatic tires for motorcycles
USD556127S1 (en) * 2005-08-31 2007-11-27 Bridgestone Corporation Pair of decorative surfaces for a tire sidewall
US20070256771A1 (en) 2006-05-08 2007-11-08 Balogh George F Tire having sidewall with integral colored marking composite
JP4862684B2 (en) 2006-05-30 2012-01-25 横浜ゴム株式会社 Molding mold for tire vulcanization
EP2039533B1 (en) * 2006-07-06 2012-01-25 Bridgestone Corporation Pneumatic tire
JP4925803B2 (en) 2006-12-04 2012-05-09 株式会社ブリヂストン tire
JP4874082B2 (en) 2006-12-20 2012-02-08 株式会社ブリヂストン tire
CN101600587B (en) 2007-01-04 2015-09-16 罗伯特博施有限公司 For assembling and dismantle rigging equipment and the method for the motor tire on wheel rim
US7950426B2 (en) * 2007-06-08 2011-05-31 Bridgestone Americas Tire Operations, Llc Tread blocks having reduced edge stiffness
JP4223064B2 (en) * 2007-06-12 2009-02-12 横浜ゴム株式会社 Pneumatic tire
US20090000713A1 (en) * 2007-06-27 2009-01-01 Bridgestone Firestone North American Tire, Llc Tire including segmented sipes
JP5160345B2 (en) 2008-08-26 2013-03-13 東洋ゴム工業株式会社 Pneumatic tire
FR2939360B1 (en) * 2008-12-05 2011-03-04 Michelin Soc Tech BEARING BAND WITH INCISIONS
JP5356285B2 (en) * 2010-03-09 2013-12-04 東洋ゴム工業株式会社 Pneumatic tire
US9174495B2 (en) * 2010-12-22 2015-11-03 The Goodyear Tire & Rubber Company Pneumatic tire with tread having sipes
JP5823153B2 (en) * 2011-04-08 2015-11-25 東洋ゴム工業株式会社 Pneumatic tire
JP5973142B2 (en) * 2011-08-09 2016-08-23 東洋ゴム工業株式会社 Vehicle tire mounting structure
CN202319755U (en) * 2011-12-06 2012-07-11 肇庆骏鸿实业有限公司 Tire
DE102011056762A1 (en) * 2011-12-21 2013-06-27 Continental Reifen Deutschland Gmbh Arrangement of pneumatic vehicle tires on a vehicle

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH02283505A (en) 1989-04-26 1990-11-21 Yokohama Rubber Co Ltd:The Setting of tire for icy or snowy road
US20030047262A1 (en) * 2000-05-11 2003-03-13 Michelin Recherche Et Technique S.A. Asymmetrical vehicle tire with balanced wet and dry performance
JP4428914B2 (en) * 2002-08-30 2010-03-10 株式会社ブリヂストン Tire having asymmetric tread pattern and method for mounting the same
US20080230161A1 (en) * 2005-10-03 2008-09-25 Brigestone Corporation Pneumatic Tire for Motorcycle
KR20100051078A (en) * 2007-08-07 2010-05-14 스미토모 고무 고교 가부시키가이샤 Pneumatic tire
US20100139826A1 (en) * 2008-12-08 2010-06-10 Tadao Matsumoto Pneumatic tire with asymmetric tread pattern

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
BRYAN A. GARNER: "A Dictionary of Modern Legal Usage 624", 1995
See also references of EP2934918A1

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9885706B2 (en) 2012-12-17 2018-02-06 Abbott Point Of Care Inc. Portable clinical analysis system for immunometric measurement
US9952194B2 (en) 2012-12-17 2018-04-24 Abbott Point Of Care Inc. Operation and verification of a portable clinical analysis system
US9949674B2 (en) 2012-12-17 2018-04-24 Abbott Point Of Care Inc. Portable clinical analysis system for hematocrit measurement
WO2018062230A1 (en) 2016-09-27 2018-04-05 コンパニー ゼネラール デ エタブリッスマン ミシュラン Tire tread and tire having this tread

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CN104918794B (en) 2017-06-13
EP3590731A1 (en) 2020-01-08
EP2934918A1 (en) 2015-10-28
EP3851296B1 (en) 2024-10-16
CN104918794A (en) 2015-09-16
RU2583014C1 (en) 2016-04-27
BR112015014264A2 (en) 2017-07-11
JP2016505443A (en) 2016-02-25
US12115818B2 (en) 2024-10-15
EP2934918B1 (en) 2019-09-25
JP6141448B2 (en) 2017-06-07
EP3590731B1 (en) 2021-04-14
US20190299720A1 (en) 2019-10-03
EP3851296A1 (en) 2021-07-21
US20150336429A1 (en) 2015-11-26
EP2934918A4 (en) 2017-01-18
JP2017124829A (en) 2017-07-20

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