Flexible Wheel Rim With Floating Hooks
20170001470 · 2017-01-05
Inventors
Cpc classification
B60B25/02
PERFORMING OPERATIONS; TRANSPORTING
B60B21/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Vehicle rim for the mounting of a tire, comprising: an axially central part (20) comprising a disc; two lateral parts (31, 32), at least one of the lateral parts being separate from the axially central part, each of the lateral parts having a rim seat receiving a bead of a tire, the axially central part and the two lateral parts being made from a rigid matrix reinforced by a plurality of reinforcement elements; an intermediate part (41, 42) linking the axially central part and each lateral part separate therefrom, this intermediate part being made of a flexible matrix reinforced by a reinforcement, wherein 1 MPa the Young's modulus of uniaxial extension of the flexible matrix 100 MPa, the Young's modulus of uniaxial extension of the reinforcement elements is 5 GPa; wherein the Young's modulus of uniaxial extension of the rigid matrix is 5 GPa.
Claims
1. A vehicle rim, with symmetry of revolution, adapted for the mounting of a tire, comprising: an axially central part comprising a disc; two lateral parts, at least one of the lateral parts being separate from the axially central part, each of the lateral parts being provided with a rim seat adapted to receive a bead of a tire, the axially central part and the two lateral parts being made from a rigid matrix that can be reinforced by a reinforcement; an intermediate part that forms the only mechanical link between the axially central part and each lateral part that is separate from the axially central part, this intermediate part being made of a flexible matrix reinforced by a reinforcement comprising a plurality of reinforcement elements, the Young's modulus of uniaxial extension of the flexible matrix being greater than and equal to 1 MPa and less than or equal to 100 MPa, the Young's modulus of uniaxial extension of the reinforcement elements being greater than or equal to 5 GPa; wherein the Young's modulus of uniaxial extension of the rigid matrix is greater than or equal to 5 GPa.
2. The vehicle rim according to claim 1, wherein the contact between the axially central part and each intermediate part is made by one end of the axially central part which passes into the intermediate part.
3. The vehicle rim according to claim 2, wherein said end of the axially central part comprises an overthickness that makes it possible to anchor the end in the intermediate part.
4. The vehicle rim according to claim 1, wherein the contact between each lateral part that is separate from the axially central part and the intermediate part in contact therewith is made by one end of the lateral part which passes into the intermediate part.
5. The vehicle rim according to claim 4, wherein said end of the lateral part comprises an overthickness that makes it possible to anchor the end in the intermediate part.
6. The vehicle rim according to claim 1, wherein each lateral part that is separate from the axially central part is entirely covered with the material of which the flexible matrix of the intermediate part in contact therewith is made.
7. The vehicle rim according to claim 1, wherein the reinforcement is a textile or metal reinforcement.
8. The vehicle rim according to claim 1, wherein the reinforcement of each intermediate part comprises radially disposed filamentary reinforcement elements.
9. The vehicle rim according to claim 1, wherein the reinforcement of each intermediate part comprises two layers that comprise filamentary reinforcement elements, the reinforcement elements of each layer being mutually parallel and crossed from one layer to the next.
10. The vehicle rim according to claim 1, wherein the reinforcement of each intermediate part comprises cords that each have two ends, one end being secured to the axially central part and the other end being secured to a lateral part.
11. The vehicle rim according to claim 10, wherein the cords are welded to the axially central part and to a lateral part.
12. The vehicle rim according to claim 11, comprising two intermediate parts, wherein the two intermediate parts are symmetrical to one another.
13. The vehicle rim according to claim 1, wherein the material of which the flexible matrix of each intermediate part is comprised of polyurethane, a rubber composition or a thermoplastic elastomer.
14. The vehicle rim according to claim 1, wherein the material of which the rigid matrix of the axially central part and the two lateral parts is comprised of a metal or a metal alloy.
15. The vehicle rim according to claim 1, wherein the Young's modulus of uniaxial extension of the rigid matrix is greater than the Young's modulus of uniaxial extension of the flexible matrix by a factor of greater than or equal to 100.
16. The vehicle rim according to claim 1, wherein both of said two lateral parts are separate from said axially central part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024] All of the figures are schematic.
DETAILED DESCRIPTION OF THE INVENTION
[0025] Where the term radial is used, a distinction should be made between several different uses of the word by a person skilled in the art. Firstly, the expression refers to a radius of the rim (and of the tire with which the latter is equipped). It is within this meaning that a point P1 is said to be radially inside a point P2 (or radially on the inside of the point P2) if it is closer to the rotation axis than the point P2. Conversely, a point P3 is said to be radially outside a point P4 (or radially on the outside of the point P4) if it is further away from the rotation axis of the tire than the point P4. Progress will be said to be radially inwards (or outwards) when it is in the direction of smaller (or larger) radii. It is this sense of the term that applies also when radial distances are being discussed.
[0026] On the other hand, a thread or a reinforcement is said to be radial when the thread or the reinforcement elements of the reinforcement make an angle greater than or equal to 80 and less than or equal to 90 with the circumferential direction. Let us specify that, in this document, the term thread should be understood in a very general sense and comprises threads in the form of monofilaments, multifilaments, a cord, a folded yarn or an equivalent assembly, irrespective of the material of which the thread is made or of the surface treatment it has received in order to encourage it to bond with the rubber.
[0027] Finally, a radial cross section or radial section means here a cross section or a section in a plane which contains the rotation axis of the rim (and of the tire with which the latter is equipped).
[0028] An axial direction is a direction parallel to the rotation axis of the rim (and of the tire with which the latter is equipped). A point P5 is said to be axially inside a point P6 (or axially on the inside of the point P6) if it is closer to the median plane of the rim than the point P6. Conversely, a point P7 is said to be axially outside a point P8 (or axially on the outside of the point P8) if it is further away from the median plane of the rim than the point P8. The median plane of the rim is the plane which is perpendicular to the rotation axis of the rim and which is situated equidistantly from the rim seats intended to receive a bead of a tire.
[0029] A circumferential direction is a direction which is perpendicular both to a radius of the rim and to the axial direction.
[0030] In the scope of this document, the expression rubber composition denotes a composition of rubber comprising at least one elastomer and a filler.
[0031] The Young's modulus of uniaxial extension of a material is understood here as meaning the modulus of extension measured using a tensile test. For the flexible matrices and the textile reinforcement elements, the process according to the standard DIN EN ISO 527-2 was carried out on a test specimen of type A according to the standard DIN EN ISO 3167 at a pull rate of 1 mm/min. For the rigid matrices and the metal reinforcement elements, by contrast, the process according to the standard ASTM E111-04(2010) was carried out.
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038] Tests were carried out with a rim comprising two flexible intermediate parts corresponding to