NON-PNEUMATIC TIRE AND WHEEL ASSEMBLY WITH INTEGRATED SPOKE STRUCTURE
20210188003 · 2021-06-24
Inventors
- Kurtis Dale Kandel (Louisville, OH, US)
- Robert Allen LOSEY (Kent, OH, US)
- Steven Allan Kontney (Indianapolis, IN, US)
- Andrew Brent MENDENHALL (Mooresville, IN, US)
Cpc classification
B60C7/146
PERFORMING OPERATIONS; TRANSPORTING
B60C7/18
PERFORMING OPERATIONS; TRANSPORTING
B60B25/06
PERFORMING OPERATIONS; TRANSPORTING
B60C7/24
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60B3/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A non-pneumatic tire and wheel assembly is described herein having an outer annular ring which includes a ground contacting tread portion and a shear band. One or more spoke disks are integrally mounted on a wheel wherein a plurality of anchors on the spoke disks are received in mating aligned slots of the wheel.
Claims
1. A non-pneumatic tire and wheel assembly comprising: an outer annular ring having a ground contacting tread portion and a shear band, one or more spoke disks, wherein each spoke disk has an outer ring mounted to the shear band, and an inner ring mounted to the wheel, wherein each spoke disk has at least two spokes, wherein each of said spoke disks has one or more anchors for mounting in aligned mating slots of the wheel.
2. The non-pneumatic tire and wheel assembly of claim 1 wherein each spoke extends between the outer ring and the inner ring.
3. The non-pneumatic tire and wheel assembly of claim 1 wherein said one or more anchors extend radially inward of the inner ring.
4. The non-pneumatic tire and wheel assembly of claim 1 wherein said one or more anchors further include a recess.
5. The non-pneumatic tire and wheel assembly of claim 1 wherein said one or more anchors further include a pin received in a recess.
6. The non-pneumatic tire and wheel assembly of claim 5 wherein the pin extends in the axial direction.
7. The non-pneumatic tire and wheel assembly of claim 5 wherein the pin extends the axial width of the spoke disk.
8. The non-pneumatic tire and wheel assembly of claim 1 wherein the anchor has a round shaped inner portion.
9. The non-pneumatic tire and wheel assembly of claim 1 wherein the anchor has an inner neck.
10. The non-pneumatic tire and wheel assembly of claim 1 wherein the spoke disk has an axial thickness less than the axial thickness of the tire.
11. The non-pneumatic tire and wheel assembly of claim 1 wherein the first spoke and the second spoke are joined together at a junction.
12. The non-pneumatic tire and wheel assembly of claim 1 wherein the first and second spoke members are joined together to form a first triangle and a second triangle.
13. The non-pneumatic tire and wheel assembly of claim 1 wherein the inner ring of the spoke disk has one or more gaps.
14. The non-pneumatic tire and wheel assembly of claim 1 wherein the wheel is formed of a first half and a second half.
15. The non-pneumatic tire and wheel assembly of claim 1 wherein the mating slots of the wheel extend in the axial direction.
16. The non-pneumatic tire and wheel assembly of claim 1 wherein said one or more anchors extend radially outward of the outer ring.
17. The nonpneumatic tire and wheel assembly of claim 1 wherein said one or more anchors have a round shape.
18. The nonpneumatic tire and wheel assembly of claim 1 wherein said one or more anchors have an obround shape.
19. The nonpneumatic tire and wheel assembly of claim 1 wherein said one or more anchors have an elliptical shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] The present invention will be better understood through reference to the following description and the appended drawings, in which:
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DEFINITIONS
[0021] The following terms are defined as follows for this description.
[0022] “Equatorial Plane” means a plane perpendicular to the axis of rotation of the tire passing through the centerline of the tire.
[0023] “Meridian Plane” means a plane parallel to the axis of rotation of the tire and extending radially outward from said axis.
[0024] “Hysteresis” means the dynamic loss tangent measured at 10 percent dynamic shear strain and at 25° C.
DETAILED DESCRIPTION OF THE INVENTION
[0025] The non-pneumatic tire and wheel assembly 100 of the present invention is shown in
[0026] The shear band 300 is preferably annular, and is shown in cross-section in
[0027] The shear matrix 330 has a thickness in the range of about 0.10 inches to about 0.2 inches, more preferably about 0.15 inches. The shear matrix is preferably formed of an elastomer material having a shear modulus G in the range of 2.5 to 40 MPa, and more preferably in the range of 20 to 40 MPA. The shear band has a shear stiffness GA and a bending stiffness EI. It is desirable to maximize the bending stiffness of the shearband EI and minimize the shear band stiffness GA. The acceptable ratio of GA/EI would be between 0.01 and 20, with an ideal range between 0.01 and 5. EA is the extensible stiffness of the shear band, and it is determined experimentally by applying a tensile force and measuring the change in length. The ratio of the EA to EI of the shear band is acceptable in the range of 0.02 to 100 with an ideal range of 1 to 50.
[0028] In an alternative embodiment, the shear band may comprise any structure which has the above described ratios of GA/EI and EA/EI. The tire tread is preferably wrapped about the shear band and is preferably integrally molded to the shear band.
Spoke Disk & Wheel
[0029] The non-pneumatic tire of the present invention further includes at least one spoke disk 400, and preferably at least two disks which may be spaced apart at opposed ends of the non-pneumatic tire. In the tire and wheel assembly shown in
[0030] As shown in
[0031] One or more of the anchors 600 may further include an interior recess 610 that extends across the anchor in the tire's axial direction. The interior recess 605 preferably includes a pin 610 that is secured within the interior recess 605 after the anchors are received in the complementary shaped slot 700. The pins 610 prevent pullout of the anchors from the complementary shaped mating slots. The pins 610 may be annular.
[0032] The wheel 500 is shown in
[0033] Each spoke disk 400 as described herein has an axial thickness A that is substantially less than the axial thickness AW of the non-pneumatic tire. The axial thickness A is in the range of 5-40% of AW, more preferably 15-30% AW. If more than one disk is utilized, than the axial thickness of each disk may vary or be the same.
[0034] Each spoke disk has a spring rate SR which may be determined experimentally by measuring the deflection under a known load. One method for determining the spoke disk spring rate k is to mount the spoke disk to a hub, and attaching the outer ring of the spoke disk to a rigid test fixture. A downward force is applied to the hub, and the displacement of the hub is recorded. The spring rate k is determined from the slope of the force deflection curve. It is preferred that the spoke disk spring rate be greater than the spring rate of the shear band. It is preferred that the spoke disk spring rate be in the range of 4 to 12 times greater than the spring rate of the shear band, and more preferably in the range of 6 to 10 times greater than the spring rate of the shear band.
[0035] Preferably, if more than one spoke disk is used, all of the spoke disks have the same spring rate. The spring rate of the non-pneumatic tire may be adjusted by increasing the number of spoke disks. Alternatively, the spring rate of each spoke disk may be different by varying the geometry of the spoke disk or changing the material. It is additionally preferred that if more than one spoke disk is used, that all of the spoke disks have the same outer diameter.
[0036] The spoke disks are preferably formed of an elastic material, more preferably, a thermoplastic elastomer. The material of the spoke disks is selected based upon one or more of the following material properties. The tensile (Young's) modulus of the disk material is preferably in the range of 45 MPa to 650 MPa, and more preferably in the range of 85 MPa to 300 MPa, using the ISO 527-1/-2 standard test method. The glass transition temperature is less than −25 degree Celsius, and more preferably less than −35 degree Celsius. The yield strain at break is more than 30%, and more preferably more than 40%. The elongation at break is more than or equal to the yield strain, and more preferably, more than 200%. The heat deflection temperature is more than 40 degree C. under 0.45 MPa, and more preferably more than 50 degree C. under 0.45 MPa. No break result for the Izod and Charpy notched test at 23 degree C. using the ISO 179/ISO180 test method. Two suitable materials for the disk are commercially available by DSM Products and sold under the trade name ARNITEL PM581 and ARNITEL PL461.
[0037] Variations in the present invention are possible in light of the description of it provided herein. While certain representative embodiments and details have been shown for the purpose of illustrating the subject invention, it will be apparent to those skilled in this art that various changes and modifications can be made therein without departing from the scope of the subject invention. It is, therefore, to be understood that changes can be made in the particular embodiments described which will be within the full intended scope of the invention as defined by the following appended claims.