NON-PNEUMATIC TIRE
20170297372 · 2017-10-19
Inventors
- William Alain TALBOT (Bastogne, BE)
- Nicolas Charles Louis BILGER (Messancy, BE)
- Francesco Sportelli (Bettembourg, LU)
- Samy Laroussi MZABI (Ettelbruck, LU)
- Clemens Manuel SILL (Trier, DE)
- Joseph John Kulig (Tallmadge, OH)
- Gilles BONNET (Niederfenlen, LU)
- Stefan Wilms (Helmdange, LU)
Cpc classification
B60C7/146
PERFORMING OPERATIONS; TRANSPORTING
B60C7/22
PERFORMING OPERATIONS; TRANSPORTING
B60C7/102
PERFORMING OPERATIONS; TRANSPORTING
B60C7/18
PERFORMING OPERATIONS; TRANSPORTING
B60C7/143
PERFORMING OPERATIONS; TRANSPORTING
B60C9/1807
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A non-pneumatic tire is described that includes a ground contacting annular tread portion, a shear band, wherein the shear band is formed of a first and second inextensible layer, and a low modulus material positioned between the first and second inextensible layer. The non-pneumatic tire further includes a connecting web positioned between a hub and the shear band, wherein the connecting web is formed of one or more spokes extending from an inner ring to an outer ring, wherein the one or more spokes are formed from a material reinforced with a three dimensional spacer structure.
Claims
1. A non-pneumatic tire comprising a ground contacting annular tread portion; a shear band, wherein the shear band is formed of a first and second inextensible layer, and a low modulus material positioned between the first and second inextensible layer, and a connecting web positioned between a hub and the shear band, wherein the connecting web is formed of one or more spokes extending from an inner ring to an outer ring, wherein the one or more spokes are formed from a material reinforced with a three dimensional spacer structure.
2. The non-pneumatic tire of claim 1 wherein the three dimensional spacer structure is formed from a first and second layer of material interconnected by a plurality of connecting members.
3. The non-pneumatic tire of claim 1 wherein the spokes are aligned circumferentially in rows.
4. The non-pneumatic tire of claim 1 further including a circumferentially continuous connecting web.
5. The non-pneumatic tire of claim 4 wherein the circumferentially continuous connecting web has a higher stiffness in the radial direction than the stiffness in the axial direction.
6. The non-pneumatic tire of claim 1 wherein the radial spokes have a higher stiffness in the axial direction that the stiffness in the radial direction. The non-pneumatic tire of claim 1 wherein the connecting members are aligned with the circumferential direction of the non-pneumatic tire.
7. The non-pneumatic tire of claim 1 wherein the connecting members are aligned with the radial direction of the non-pneumatic tire.
8. The non-pneumatic tire of claim 1 wherein the connecting members are aligned with the axial direction of the non-pneumatic tire.
9. The non-pneumatic tire of claim 1 wherein the connecting members have a defined radial height in the range of 3 to 25 millimeters.
10. The non-pneumatic tire of claim 1 wherein the first and second layer of material is knitted.
11. The non-pneumatic tire of claim 1 wherein the first and second layer of material is woven.
12. The non-pneumatic tire of claim 1 wherein the first and second layer of material is nonwoven.
13. The non-pneumatic tire of claim 1 wherein the first and second layer of material has a free area in the range of 5% to 75%.
14. The non-pneumatic tire of claim 1 wherein the connecting members are curved.
15. The non-pneumatic tire of claim 1 wherein the three dimensional spacer structure is formed of an auxetic material.
16. The non-pneumatic tire of claim 1 wherein the connecting members are further divided into a first and second set, wherein the first set is crossed with respect to the second set.
17. The non-pneumatic tire of claim 1 wherein the connecting members are perpendicular to the first and second layer of material.
18. The non-pneumatic tire of claim 1 wherein the connecting members are angled with respect to the first and second layer of material.
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:
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DEFINITIONS
[0017] The following terms are defined as follows for this description.
[0018] “Auxetic” means a material having a negative Poisson's ratio.
[0019] “Equatorial Plane” means a plane perpendicular to the axis of rotation of the tire passing through the centerline of the tire.
[0020] “Free area” is a measure of the openness of the fabric per DIN EN 14971, and is the amount of area in the fabric plane that is not covered by yarn. It is a visual measurement of the tightness of the fabric and is determined by taking an electronic image of the light from a light table passing through a six inch by six inch square sample of the fabric and comparing the intensity of the measured light to the intensity of the white pixels.
[0021] “Inextensible” means that a given layer or reinforcement has an extensional stiffness greater than about 25 Ksi.
[0022] “Knitted” is meant to include a structure producible by interlocking a series of loops of one or more yarns by means of needles or wires, such as warp knits and weft knits.
[0023] “Sandwich fabric” means a three dimensional fabric structure composed from two outer layers knitted together independent, connected by yarns or other knitted layers. “Three dimensional spacer structure” means a three dimensional structure composed from two outer layers of fabric, each outer layer of fabric having reinforcement members (such as yarns, filaments or fibers) which extend in a first and second direction, wherein the two outer layers are connected together by reinforcement members (yarns, filaments or fibers) or other knitted layers that extend in a defined third direction. An “open” three dimensional spacer structure is comprised of individual pile fibers or reinforcements that connect the first and second layer of fabric. A “closed” three dimensional structure utilizes fabric piles that connect the first and second layers.
[0024] “Woven” is meant to include a structure produced by multiple yarns crossing each other at right angles to form the grain, like a basket.
DETAILED DESCRIPTION OF THE INVENTION
[0025] Examples of a non-pneumatic tire 100 of the present invention is shown in
[0026] The tread portion 200 may have no grooves or may have a plurality of longitudinally oriented tread grooves forming essentially longitudinal tread ribs there between. Ribs may be further divided transversely or longitudinally to form a tread pattern adapted to the usage requirements of the particular vehicle application. Tread grooves may have any depth consistent with the intended use of the tire. The tire tread 200 may include elements such as ribs, blocks, lugs, grooves, and sipes as desired to improve the performance of the tire in various conditions.
Shear Band
[0027] The shear band 300 is preferably an annular structure that is located radially inward of the tire tread 200. A layer of tread rubber 210 is adhered to the radially outer surface of the shear band. As shown in
[0028] In the first reinforced elastomer layer 310, the reinforcement cords are preferably oriented at an angle Φ in the range of 0 to about +/−10 degrees relative to the tire equatorial plane. In the second reinforced elastomer layer 320, the reinforcement cords are preferably oriented at an angle φ in the range of 0 to about +/−10 degrees relative to the tire equatorial plane. Preferably, the angle Φ of the first layer is in the opposite direction of the angle φ of the reinforcement cords in the second layer. That is, an angle +Φ in the first reinforced elastomeric layer and an angle −φ in the second reinforced elastomeric layer.
[0029] The shear band has a shear stiffness GA. The shear stiffness GA may be determined by measuring the deflection on a representative test specimen taken from the shear band. The upper surface of the test specimen is subjected to a lateral force F as shown below. The test specimen is a representative sample taken from the shear band and having the same radial thickness as the shearband. The shear stiffness GA is then calculated from the following equation:
[0030] GA=F*L/ΔX, wherein F is the shear load, L is the shear layer thickness, and delta X is the shear deflection.
[0031] The shear band has a bending stiffness EI. The bending stiffness EI may be determined from beam mechanics using the three point bending test. It represents the case of a beam resting on two roller supports and subjected to a concentrated load applied in the middle of the beam. The bending stiffness EI is determined from the following equation: EI=PL.sup.3/48*ΔX, where P is the load, L is the beam length, and ΔX is the deflection.
[0032] 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 shearband is acceptable in the range of 0.02 to 100 with an ideal range of 1 to 50.
[0033] The shear band 300 preferably can withstand a maximum shear strain in the range of 15-30%. The invention is not limited to the shear band structure disclosed herein, and may comprise any structure which has a GA/EI in the range of 0.01 to 20, or a EA/EI ratio in the range of 0.02 to 100, or a spring rate in the range of 20 to 2000, as well as any combinations thereof. More preferably, the shear band has a GA/EI ratio of 0.01 to 5, or an EA/EI ratio of 1 to 50, or a spring rate of 170 lb./in, and any subcombinations thereof. The tire tread is preferably wrapped about the shear band and is preferably integrally molded to the shear band.
Connecting Web
[0034] The non-pneumatic tire of the present invention further includes a radial connecting web 500 as shown in
[0035] The spokes may be curved or straight. Preferably, the non-pneumatic tire comprises two sets of circumferentially aligned spokes 510. The spokes may have different cross-sectional designs. The spokes functions to carry the load transmitted from the shear layer. The spokes are primarily loaded in tension and shear, and carry no load in compression. Each spoke 510 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 5-20% of AW, more preferably 5-10% AW.
[0036] The spokes 510 preferably extend in the radial direction. The spokes 510 are designed to bulge or deform in the radial direction. When the non-pneumatic tire is loaded, the spokes will deform as shown in
[0037] The spokes have a rectangular cross section as shown in
[0038] The spokes are preferably formed of an elastic material such as rubber or a thermoplastic elastomer. The spokes are preferably reinforced with a three dimensional spacer structure, as shown for example, in
[0039] The three dimensional spacer structure 400 may have different arrangement of the reinforcement connecting members as shown in
[0040] The three dimensional fabric structure 400 may have a density in the range of 700-1000 gram/meter2. The compression stiffness of the three dimensional fabric structure 400 may range from 150 to 300 kPa, and more preferably range from 150 to 200 kPa.
[0041] The axial spacing S of the reinforcement connecting members 480 as shown in
[0042] The radial spokes are designed such that the spokes have a low resistance to radial deformation and a higher resistance to the lateral deformation of the tire. Thus, if the radial spokes are reinforced with a three dimensional spacer structure shown in
[0043]
[0044] An alternate embodiment 500 of the three dimensional structure is shown in FIG. 8, and comprises a first woven layer 560 of fabric, and a second woven layer 570 of fabric. The first and second layers are joined together by a plurality of cross members 580 formed in the shape of an “8”.
[0045] An alternate embodiment 700 of the three dimensional structure is shown in
[0046] An alternate embodiment 800 of the three dimensional structure is shown in
[0047] The radial spokes may each be formed of two layers of three dimensional spacer structures, wherein the structures have different configurations and have cross members aligned in the same or different directions.
[0048] Any of the above embodiments may be combined. For example, the cross-members may be curved, angled, orthogonal, or shaped in an “8” in various combinations. The three dimensional structure may comprise any combinations of the various cross members as described above in different orientations. Any of the above described embodiments may be filled with a soft material.
Circumferential Connecting Web
[0049] The non-pneumatic tire may additionally include one or more circumferential rings forming a circumferential connecting web 600. The circumferential connecting web may be in the form of one or more circumferential rings. In opposite to the radial connecting webs, the circumferential rings should have a big resistance to the vertical or radial deformation and a lower resistance to the lateral deformation. Their stiffness will depend on their shape.
[0050] The circumferential connecting web 600 is designed to be stiff in the radial direction. The circumferential connecting web is preferably reinforced with a three dimensional spacer structure. Thus, if the circumferential connecting web 600 is reinforced with a three dimensional spacer structure as shown in
[0051] If the material selected is a thermoplastic elastomer, then it is preferred to have the following 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 is commercially available by DSM Products and sold under the trade name ARNITEL PL 420H and ARNITEL PL461.
[0052] 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.