NON-PNEUMATIC LOOPER TIRE
20210061012 ยท 2021-03-04
Inventors
- Michael Joseph Durr (Stow, OH, US)
- Arun Kumar Byatarayanapura Gopala (Copley, OH, US)
- Wesley Glenn Sigler (Barberton, OH, US)
- Andrew James Miller (Berlin Center, OH, US)
Cpc classification
B60B21/04
PERFORMING OPERATIONS; TRANSPORTING
B60C7/146
PERFORMING OPERATIONS; TRANSPORTING
B60C7/28
PERFORMING OPERATIONS; TRANSPORTING
B60C7/22
PERFORMING OPERATIONS; TRANSPORTING
B60C7/102
PERFORMING OPERATIONS; TRANSPORTING
B60C7/18
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C7/28
PERFORMING OPERATIONS; TRANSPORTING
B60C7/08
PERFORMING OPERATIONS; TRANSPORTING
B60C7/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A non-pneumatic tire is described herein having a spoke loop structure forming an annular ring, and further including a ground contacting tread portion and a shear band. The spoke loop structure has a plurality of flexible loops extending inward from the shear band, wherein each loop is formed from a strip of elastomeric material, and wherein each loop is connected to a wheel. The wheel has at least two circumferential partition, wherein each spoke loop is received in a compartment formed between two adjacent partition, wherein the compartment prevents axial movement of the spoke loop.
Claims
1. A non-pneumatic tire comprising: a spoke loop structure forming an annular ring, and further including a ground contacting tread portion and a shear band, wherein the spoke loop structure has a plurality of flexible loops extending inward from the shear band, wherein each loop is formed from a strip of elastomeric material, and wherein each loop is connected to a wheel.
2. The non-pneumatic tire of claim 1 wherein the wheel has at least two circumferential partitions.
3. The non-pneumatic tire of claim 2 wherein each spoke loop is received in a compartment formed between two adjacent partitions.
4. The non-pneumatic tire of claim 3 wherein the compartment prevents axial movement of the spoke loop.
5. The non-pneumatic tire of claim 1 wherein a pin is received in each flexible loop, and wherein the pin has a first end and a second end, wherein the first and second ends are mounted to the wheel.
6. The non-pneumatic tire of claim 1 wherein each spoke loop has an axial thickness less than the axial thickness of the nonpneumatic tire.
7. The non-pneumatic tire of claim 1 wherein the thickness of the spoke loop is less than the axial width of the loop.
8. The non-pneumatic tire of claim 1 wherein the plurality of spoke loops are aligned circumferentially.
9. The non-pneumatic tire of claim 1 wherein each spoke loop is formed of a strip of elastomer reinforced with a plurality of parallel reinforcement cords.
10. The non-pneumatic tire of claim 9 wherein the reinforcement cords are aligned with a longitudinal axis of the strip of elastomer.
11. The non-pneumatic tire of claim 9 wherein the reinforcement cords are angled with respect to a longitudinal axis of the strip of elastomer in the range of 0 to 45 degrees.
12. The non-pneumatic tire of claim 1 wherein each spoke loop is formed of a strip of elastomer reinforced with a plurality of parallel reinforcement cords aligned in both a first and second direction opposite the first direction.
13. The non-pneumatic tire of claim 1 wherein there is a second row of spoke loops aligned in the circumferential direction, and wherein the second row of spoke loops are reinforced with different reinforcement cords than the first row.
14. The nonpneumatic tire of claim 1 wherein the first row of spoke loops are pretensioned.
15. The nonpneumatic tire of claim 13 wherein the second row of spoke loops have a longer strip length than the first row of spoke loops.
16. The nonpneumatic tire of claim 1 wherein each spoke loop has a side, and the angle of the side with respect to the radial direction ranges from 2 to 15 degrees.
17. The nonpneumatic tire of claim 1 wherein each spoke loop has a side that is oriented in the radial direction.
18. The nonpneumatic tire of claim 1 wherein each spoke loop has a side that is not oriented in the radial direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006] The present invention will be better understood through reference to the following description and the appended drawings, in which:
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DEFINITIONS
[0018] The following terms are defined as follows for this description.
[0019] Equatorial Plane means a plane perpendicular to the axis of rotation of the tire passing through the centerline of the tire.
[0020] Meridian Plane means a plane parallel to the axis of rotation of the tire and extending radially outward from said axis.
[0021] Hysteresis means the dynamic loss tangent measured at 10 percent dynamic shear strain and at 25 C.
DETAILED DESCRIPTION OF THE INVENTION
[0022] The non-pneumatic tire 100 of the present invention is shown in
Shear Band
[0023] The shear band 300 is preferably annular, and is shown in cross-section in
[0024] 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.
[0025] 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 Loop Structure
[0026] The spoke loop structure 400 functions to carry the load transmitted from the shear layer. The spoke loops 420 are primarily loaded in tension and shear and cannot carry any compression load.
[0027] The radial height of each loop 420 is in the range of 75% to 100% of the nominal radial distance between the inner surface of the shear band and the inner radius R of the pins plus the thickness of the flexible loop shown in
[0028] The spoke loop structure may comprise a single row of spoke loops (not shown), wherein the axial width of each spoke loop may be equal to or less than the axial width of the tire. As shown in
[0029] As shown in
[0030] As shown in
[0031] The locking members also function to pretension the spoke loops. The length of strip used to form each loop may also be varied in order to achieve the desired loop pretension. In order to tune the nonpneumatic tire for desired performance characteristics, the spring rate may be varied across the axial width of the tire by varying the stiffness of the cords selected for a set of loops, or by the cord angle orientation. Each loop set may use a different type of cord or different angle of cords in order to have the desired spring rate of the loops in a given set.
[0032] Each loop preferably has an axial width A that is substantially less than the axial width AW of the non-pneumatic tire. The axial width A of each loop is preferably in the range of 5-20% of the tire's axial width AW, and more preferably 5-10% AW. If more than one set of loops are utilized, than the axial thickness of each loop may vary or be the same.
[0033] Each spoke loop structure 400 has a spring rate SR which may be determined experimentally by measuring the deflection under a known load, as shown in
[0034] If more than one row of spoke loops is used, each row may have the same spring rate or a different spring rate. The spring rate of the non-pneumatic tire may be adjusted by increasing the number of spoke loop structures as shown in
[0035] Applicants understand that many other variations are apparent to one of ordinary skill in the art from a reading of the above specification. These variations and other variations are within the spirit and scope of the present invention as defined by the following appended claims.