TREAD FOR A TIRE
20190232722 ยท 2019-08-01
Inventors
Cpc classification
B60C11/042
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0309
PERFORMING OPERATIONS; TRANSPORTING
B60C2011/1361
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1369
PERFORMING OPERATIONS; TRANSPORTING
B60C11/125
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1281
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1353
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C11/12
PERFORMING OPERATIONS; TRANSPORTING
B60C11/13
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A first tire includes a tread having a circumferential center rib and a circumferential intermediate rib laterally adjacent the center rib, the intermediate rib being separated from the center rib by a first circumferential groove, a second circumferential rib bordering the intermediate rib opposite the first circumferential groove, the tread further including two other circumferential grooves; at least one stiffener element disposed within each of the four circumferential grooves, the stiffener elements having a reduced height relative to a height of the center and intermediate ribs; and the stiffener element having a circumferentially oriented cut extending into an upper surface of the stiffener element toward a bottom of the stiffener element, the cut extending circumferentially through the stiffener element with the cut bounded by opposite laterally inward facing cut sides.
Claims
1. A tire comprising: a tread having a circumferential center rib and a circumferential intermediate rib laterally adjacent the center rib, the intermediate rib being separated from the center rib by a first circumferential groove, a second circumferential groove bordering the intermediate rib opposite the first circumferential groove, the tread further including two other circumferential grooves; at least one stiffener element disposed within each of the four circumferential grooves, the stiffener elements having a reduced height relative to a height of the center and intermediate ribs; and the stiffener element having a circumferentially oriented cut extending into an upper surface of the stiffener element toward a bottom of the stiffener element, the cut extending circumferentially through the stiffener element with the cut bounded by opposite laterally inward facing cut sides.
2. The tire as set forth in claim 1 wherein a first circumferential array of discrete stiffener elements is disposed within the first circumferential groove, with adjacent stiffener elements within the first circumferential array separated by a first circumferential spacing.
3. The tire as set forth in claim 2 wherein a second circumferential array of discrete stiffener elements is disposed within the second circumferential groove adjacent the center rib, the stiffener elements within the first and the second circumferential arrays both being separated by a first circumferential spacing.
4. The tire as set forth in claim 3 wherein each cut extends radially inward from the upper surface of each discrete stiffener element, each cut extending circumferentially through a respective stiffener element and each cut having a radially outward cut segment bounded by opposite inward facing cut sides.
5. The tire as set forth in claim 4 wherein the cut within each of the discrete stiffener elements within the first array and the second array includes a radially inner cylindrical channel, the channel circumferentially extending through each respective stiffener element and having an axial width dimension greater than an axial width dimension of each cut.
6. The tire as set forth in claim 5 wherein each cut has an axial width dimension within a range of 0.0 mm to 2.5 mm
7. The tire as set forth in claim 6 wherein each lower channel has a nominal diametric width dimension within a range of 1.0 mm to 6.0 mm
8. The tire as set forth in claim 5 wherein the outer surface of each stiffener element is radially offset and recessed from a radially outer surface of the center rib and a radially outer surface of the intermediate rib.
9. The tire as set forth in claim 8 wherein the first circumferential groove has a radial depth dimension within a range of 8.0 mm to 22.0 mm and each stiffener element has a radial height within each of the first and second circumferential grooves within a range of 8.0 mm to 22.0 mm
10. The tire as set forth in claim 9 wherein each stiffener element within the first and second arrays is divided into axially opposed stiffener components by the cut, the cut extending from the upper surface of the stiffener element and having opposite axially extending sides.
11. The tire as set forth in claim 10 wherein the axially opposed stiffener element components operatively flex and converge axially from a nominal separation dimension into a deformed orientation when present within a rolling tire footprint to operatively close the cut and the axially opposed stiffener element components operatively flex and diverge axially into a non-deformed orientation when outside a rolling tire footprint and resume the nominal separation dimension.
12. The tire as set forth in claim 5 wherein the nominal separation width of each cut lies within a range of 0.5 mm to 1.5 mm
13. The tire as set forth in claim 12 wherein each stiffener element has a channel extending circumferentially through each stiffener element, each channel having a diametric width greater than the nominal separation width of each cut.
14. The tire as set forth in claim 13 wherein the diametric width of the channel lies within a range of 1.0 mm to 5.0 mm
15. The tire as set forth in claim 14 wherein the outer surface of each stiffener element is offset radially inward from a radially outward surface of the center rib and the intermediate rib.
16. A tire comprising: a tire tread having a circumferential center tread region comprising at least a circumferential tread center rib and a laterally adjacent intermediate rib adjacent the center rib, the intermediate rib being separated from the center rib by at least one circumferential groove, the tread further including two other circumferential grooves; and an array of a first plurality of discrete stiffener elements disposed within each circumferential tread groove, with adjacent stiffener element elements within the circumferential first array separated by a circumferential spacing; where each stiffener element having a circumferentially oriented bisecting cut extending radially inward from an upper surface of the stiffener element toward a bottom of the stiffener element, the bisecting cut extending in a circumferential direction through the stiffener element to form axially opposed stiffener element components.
17. The tire as set forth in claim 16 wherein each stiffener element is divided into axially opposed stiffener element components by the circumferentially oriented bisecting cut, the bisecting cut extending radially from an upper surface of the stiffener element bounded along a radially outward cut segment by axially opposite inward sides.
18. The tire as set forth in claim 17 wherein the opposed stiffener element components operatively flex and converge axially when present within a rolling tire footprint to operatively close the radially outward cut segment and the opposed stiffener element components operatively flex and diverge axially when outside a rolling tire footprint to resume a nominal separation dimension.
19. The tire as set forth in claim 18 wherein the bisecting cut within the stiffener element forms a radially inward channel extending circumferentially through the stiffener element, the channel having a nominal channel width dimension greater than the nominal width dimension of the radially outward bisecting cut.
20. The tire as set forth in claim 19 wherein the channel is substantially of circular cross-sectional configuration having a nominal diametric width dimension within a range of 2.0 mm to 4.0 mm
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0043] The present invention will be described by way of example of, and with reference to, the accompanying drawings, in which:
[0044]
[0045]
[0046]
[0047]
[0048]
DETAILED DESCRIPTION OF EXAMPLES OF THE PRESENT INVENTION
[0049] With initial reference to
[0050] The symmetrical pattern of the tread 12 may further include a circumferential array of discrete, spaced apart stiffener elements 32 situated within each of the circumferential grooves 24, 26, 28, 30. The radially outer surface 37 of each stiffener element 32 may be disposed between 1.0 mm and 15 0 mm from an overall radially outer unworn tread surface 11 (
[0051] Disposed within each stiffener element 32 may be an elongate circumferentially oriented blade cut 36. Cut may be used in a general sense as a dividing separation, and not as a reference to the manner of creating/forming the divide. Each cut 36 may divide a respective stiffener element 32 into a pair of opposed stiffener element components. Each cut 36 may have a lateral width between 0.0 mm and 4.0 mm This width may enable each cut 36 of each stiffener element 32 to close when the cut is disposed within a rolling tire footprint
[0052] Each cut 36 may extend radially inward to a radially inner circumferential channel 40 disposed at a radially inner end of the cut 36. The inner channel 40 may be generally circular in cross-section, with a diametric width within a range of 2.0 mm to 6.0 mm, and be disposed at an inner base of the stiffener element 32 (
[0053] As stated above, the outer end of each cut 36 may be recessed radially inward from the outer tread surface 11. The circumferential grooves 24, 26, 28, 30 may be recessed and taper inwardly from a first outer width dimension such that each stiffener element 32 may be recessed within a respective groove 24, 26, 28, 30 and have a second inner width less than the first width. The outer surface 37 of each stiffener element 32 may thus have a lateral width less than the first outer width of the circumferential grooves 24, 26, 28, 30.
[0054] Operation of the tread 12 in a rolling and loaded tire environment, and in particular the function of the stiffener elements 32, may be understood from a collective consideration of
[0055] The stiffener elements 32 of the tread 12 in accordance with the present invention may resist chip and chunk phenomena caused by severe road conditions encountered by the tire 10. The stiffener elements 32 of the tread 12 may reduce irregular wear. The stiffener elements 32 of the tread 12 may increase cornering stiffness and frictional energy may be reduced. As a result, mileage provided by the tread 12 may be increased.
[0056] The arrays of stiffener elements 32 further may increase rigidity of the tread 12 thereby increasing cornering stiffness and also enhancing snow and wet performance throughout the life of the tread 12 and tire 10. The stiffener elements 32, functioning as rigidifiers, may stiffen the tread 12 for better cornering and mileage performance The stiffener elements 32, recessed within respective grooves 24, 26, 28, 30 may not contact a road surface when the tire 10 is new, but may establish greater contact at the outer surface 17 between the tread and the road surface overall after the tread 12 wears. As the stiffener elements 32 come into contact with the road surface, the edges at the sides 34 may provide additional edges within the footprint area thereby enhancing snow and wet traction. The channel 40 of each stiffener element 32 may define an air and/or water and/or snow conduit for directing air and/or water and/or snow through the stiffener elements. Allowing air to pass through the stiffener elements 32 may eliminate trapped air and thereby reduce the noise level produced by the tread 12. Also, by allowing the passage of water through the channels 40, potential aquaplaning may be mitigated.
[0057] The addition of the stiffener elements 32 may increase lateral stiffness of the overall tread 12 without impacting the circumferential stiffness of the overall tread. The cuts 36 may extend through the stiffener elements 32 from the outer surface 37 to the channel 40 and bisect the stiffener elements into opposite block components in the circumferential direction (
[0058] As the tread 12 wears through use, the stiffener elements 32 may become road contacting elements with the edges of the stiffener elements defining additional contact edges for enhancing traction of the tread. From the foregoing, it will be appreciated that the tread 12 is durable and provides improved performance characteristics. The tread 12, configured with the circumferential spaced apart arrays of discrete stiffener elements 32 within at least one of the circumferential tread grooves 24 26, 28, 30, may alter the stiffness characteristics of the tread without compromising the wear and circumferential resistance characteristics of the tread.
[0059] Each stiffener element 32 may have a circumferentially oriented bisecting cut 36 which divides the stiffener element into opposed stiffener components. The opposed stiffener components accordingly may operatively flex and converge and/or close laterally or axially when present within a rolling tire footprint. The stiffener elements 32, when present within the rolling tire footprint, thus may stiffen the overall tread 12 and thereby enhance cornering, wear, and handling performance of the tread. The opposed stiffener components may resume a nominal separation dimension or width when outside a rolling tire footprint.
[0060] The bisecting cut 36 within each stiffener element 32 may further form, at a radially inward end, the large diameter fluid-conducting channel 40 which may extend circumferentially through the stiffener element to allow the passage of air/fluid/snow along the circumferential groove 24, 26, 28, 30 in which the stiffener element is situated. The array of stiffener elements 32 accordingly do not obstruct the functional performance of the circumferential grooves 24, 26, 28, 30 in which the stiffener elements are situated, and fluid, such as rain or snow melt, may traverse the circumferential grooves unobstructed by the array of stiffener elements 32. The tread 12 may thus provide high mileage and durability.
[0061] Variations in the present invention are possible in light of the description of examples of it provided herein. While certain representative embodiments and details have been shown for the purpose of illustrating the present invention, it will be apparent to those skilled in this art that various changes and modifications may be made therein without departing from the scope of the present invention. It is, therefore, to be understood that changes may be made in the particular examples described which will be within the full intended scope of the present invention as defined by the following appended claims.