Annular Structure Having Multiple Reinforcement Bands
20170036413 ยท 2017-02-09
Assignee
Inventors
- Michael Edward DOTSON (Greenville, SC, US)
- James Milo Endicott (Greenville, SC, US)
- Patrick A. Petri (Greer, SC, US)
- Kirkland W. Vogt (Simpsonville, SC)
Cpc classification
B29C70/86
PERFORMING OPERATIONS; TRANSPORTING
B29C70/36
PERFORMING OPERATIONS; TRANSPORTING
B29K2021/00
PERFORMING OPERATIONS; TRANSPORTING
B32B5/12
PERFORMING OPERATIONS; TRANSPORTING
B29C70/086
PERFORMING OPERATIONS; TRANSPORTING
B29C39/126
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/13
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B29C70/36
PERFORMING OPERATIONS; TRANSPORTING
B32B5/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An annular reinforcement structure is provided having a first reinforcement band and a second reinforcement band in a spaced-apart, concentric relationship, and a cast-in-place core material positioned between the first and second reinforcement bands and bonded thereto.
Claims
1. An annular reinforced structure, comprising: (a) an inner reinforcement band; (b) an outer reinforcement band positioned around the inner reinforcement band, whereby the inner and outer reinforcement bands are spaced apart and concentric, and the outer reinforcement band having an exterior side, opposite the inner reinforcement band; and (c) a cast-in-place, core material having a density of 0.75 g/cm.sup.3 or greater, positioned between and bonded to the inner and outer reinforcement bands, whereby at least a portion of the exterior side of the outer reinforcement band is not coated by the core material.
2. The annular reinforced structure of claim 1, wherein the outer reinforcement band is impermeable to the core material, when the core material is cast-in-place.
3. The annular reinforced structure of claim 1, wherein the inner reinforcement band has an exterior side opposite the outer reinforcement band and at least a portion of the exterior side of the inner reinforcement band is not coated by the core material.
4. The annular reinforced structure of claim 3, wherein the inner reinforcement band is impermeable to the core material, when the core material is cast-in-place.
5. The annular reinforced structure of claim 1, wherein the structure is a modular unit.
6. The annular reinforced structure of claim 1, where the structure is the product of the process of supporting the inner and outer reinforcement bands in mold, when the core material is cast-in-place, and wherein the mold comprises an outer ring having a resilient surface, wherein the outer ring of the mold surrounds the outer reinforcement band and the exterior side of the outer reinforcement band is pressed into the resilient surface of the outer ring to create a seal, thereby preventing the core material from coating at least a portion the exterior side of the outer reinforcement band when the core material is cast.
7. The annular reinforced structure of claim 6, wherein the outer reinforcement band is comprised of a cord selected from the group consisting of monofilament or multi-filament yarns, and the cord is wound into a helix making at least three revolutions.
8. An annular reinforced structure, comprising: (a) an outer reinforcement band; (b) an inner reinforcement band, positioned inside the outer reinforcement band, whereby the inner and outer reinforcement bands are spaced apart and concentric, and the inner reinforcement band having an exterior side, opposite the outer reinforcement band; and (c) a cast-in-place, core material having a density of 0.75 g/cm.sup.3 or greater, positioned between and bonded to the inner and outer reinforcement bands, whereby at least a portion of the exterior side of the inner reinforcement band is not coated by the core material.
9. The annular reinforced structure of claim 8, wherein the inner reinforcement band is impermeable to the core material, when the core material is cast-in-place.
10. The annular reinforced structure of claim 8, wherein the structure is a modular unit.
11. The annular reinforced structure of claim 8, where the structure is the product of the process of supporting the inner and outer reinforcement bands in mold, when the core material is cast-in-place, and the mold comprises an inner ring having a resilient surface, and the inner reinforcement band surrounds the inner ring and the exterior side of the inner reinforcement band is pressed into the resilient surface of the inner ring to create a seal thereby preventing the core material from coating the exterior side of the inner reinforcement band when the core material is cast.
12. The annular reinforced structure of claim 11, wherein the outer reinforcement band is comprised of a cord selected from the group consisting of monofilament or multi-filament yarns, and the cord is wound into a helix making at least three revolutions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027] Without limiting the scope of the invention, the preferred embodiments and features are hereinafter set forth. All of the United States patents, published applications and unpublished pending applications, which are cited in the specification, are hereby incorporated by reference. Unless otherwise indicated, conditions are 25 C., 1 atmosphere of pressure and 50% relative humidity, concentrations are by weight, and molecular weight is based on weight average molecular weight. The terms polymer or polymeric as used in the present application denotes a material having a weight average molecular weight (Mw) of at least 5,000. Such polymeric materials can be amorphous, crystalline, semi-crystalline or elastomeric polymeric materials.
Inner and Outer Reinforcement Bands
[0028] Referring to
[0029] In various embodiments of the invention it is desirable to allow for relative movement of the inner and outer reinforcement bands within annular reinforced structure 1, such as may be created by flexing or shear force. In such circumstances, core material 4 may be provided with a minimum thickness 7 of 5 mm. Applications for the annular reinforced structure of the present invention, including suitable structures, alignment and spacing of the reinforcement bands, may be found in U.S. Pat. No. 6,769,465 B2 and U.S. Pat. No. 7,650,919 B2.
[0030] Each of the reinforcement bands is a circular strip, characterized as being flexible in the radial direction and relatively inextensible in circumference. In one embodiment of the invention, the reinforcement bands are sufficiently flexible to be subjected to a bend radius that is one-tenth or less of the radius of the band when the band is oriented in the shape of a circle, without experiencing a permanent set in the band. The inner and outer reinforcement bands may be the same or different, both in terms of materials of construction and design.
[0031] By way of example, the reinforcement band may be a woven or non-woven textile structure, arrangement of monofilament and/or multifilament cords, bi-component yarns, spun yarns, braided cords, single or multilayer sheets of polymers or metals, or a combination of the foregoing materials. By way of example, the reinforcement bands may be constructed of fiberglass, rayon, nylon, aramid, polyester, carbon or metal, such as steel. The materials may be treated to improve performance, allow for easier manufacturing and/or improve bond strength between materials. Examples include brass-plated steel, elastomer coated cords and the use of adhesion promoters, such as resorcinol-formaldehyde latex. Further examples of suitable reinforcement bands may be found in belts for power transmission, hoses, tires, rollers, strapping and gaskets.
[0032] By way of further example, materials having a Young's modulus (GPa), of 35 or greater, or even 70 or greater, are useful herein. Alternatively, the stiffness of the reinforcement band and the core material may be characterized by a relative Young's modulus of 1,000:1 or even 10,000:1, respectively.
[0033] In one example, the reinforcement band may be a monofilament or multi-filament cord wound into a helix and making at least three revolutions. The multiple windings of the cord may be held together by a yarn intertwined between adjacent cords, for example by weaving or knitting, with the yarn arranged perpendicular to the cords. The intertwined yarn may include fibers that can be melted to fuse the structure together, thereby providing stability to the band, especially in the axial direction. Examples of useful reinforcement band structures may be found in pending U.S. patent application Ser. No. 12/661,196, filed Mar. 12, 2010, which is hereby incorporated by reference.
[0034] Also within the scope of the invention is the use of multi-ply reinforcement bands. For example, layers of reinforcement material may overlay one another, perhaps joined by a suitable binder, adhesive or stitch bond. The plies may be oriented parallel to each other or at an angle, for example, by winding one ply around the other in a spiral. The multi-ply structures are considered as a single reinforcement band herein.
[0035] The reinforcement bands may be impermeable to the core material, when the core material is cast. The core material may be cast as a liquid reaction mixture, such as a reactive mixture of a polyol and a polyisocyante capable of forming a polyurethane. By way of further example, the core material may be in a melted state, such as a thermoplastic resin, or in a plastic state, such as unset concrete. Thus, the structure of the reinforcement band can be selected based on factors such as the viscosity of the core material being cast and the surface interaction of the reinforcement band material and core material being cast, to render the reinforcement band impermeable. Accordingly, the exterior side of one or both of the reinforcement bands is uncoated by the core material.
Molds
[0036] The core material is cast-in-place, that is, the inner and outer reinforcement bands are maintained in a spaced-apart, concentric orientation, and the core material is formed in situ. Referring to
[0037] Any of a variety of techniques may be employed to maintain the alignment of the reinforcement bands in the mold. For example, the reinforcement bands may be held in place by friction, vertical ribs, steps, jigs, locating pins and combinations thereof. In one embodiment, the reinforcement bands are ferrous or contain ferrous components, and the reinforcements are held in place by magnets or electromagnets.
[0038] In one embodiment of the invention, the surfaces of side wall 10 of outer mold 9 and side wall 12 of inner mold 11 are coated with a resilient material. The coating may be a thermoplastic or thermoset material. By way of example, the coating may be an elastomer, in particular, silicone rubber. The advantage of a mold having resilient surfaces is that the outer reinforcement band, the inner reinforcement band, or both may be pressed into the surface to create a seal. Accordingly, even if a reinforcement band is permeable to the core material while it is being cast, at least a portion of the surface of the reinforcement band in contact with the side of the mold is prevented from being coated with core material, due to the seal created. The uncoated portion of the annular reinforced structure may then be bonded to another composition, such as a matrix material, which is being reinforced.
[0039] Referring to
[0040] It can be understood that in many applications, it is desirable that the core material be bonded to one side of a reinforcement band and a second material, such as a matrix material, be bonded to the opposite side of a reinforcement band. By way of example, the reinforcement band may be formed of a cord would in a helix, and the relative surface area of the portion of the cord coated by the core material and the portion of the cord coated by the matrix material may vary from 70:30 to 30:70, or even from 10:90 to 90:10, respectively.
Core Material
[0041] The inner and outer reinforcement bands are separated by a cast-in-place core material. The core material is a solid having a density of 0.75 g/cm.sup.3 or greater, a solid having a density of 0.90 g/cm.sup.3 or greater, or even a solid having a density of 1.1 g/cm.sup.3 or greater. The core material may be selected from a wide range of organic and inorganic materials that may be cast in place. By way of example, the core material may be a natural or synthetic polymer, including thermoplastic and thermosetting materials. In particular, the core material may be an elastomeric material, such as natural or synthetic rubber, which may be cured in situ, polyurethane, segmented copolyester, polyamide co-polymer and thermoplastic elastomers. In one embodiment of the invention, the core material is a polyurethane polymer formed without a blowing agent, that is, substantially without voids, which fills the space between the inner and outer reinforcement bands and is bonded thereto. In another example, the core material is a ceramic, concrete or organometalic compound.
[0042] The nature of the core material will dictate the method of casting the material in place. Accordingly, the core material may be cast as a reaction mixture capable of polymerizing, an uncured polymer capable of being cross-linked, or an inorganic plastic capable of being cured, for example a concrete which is hydrated and cured. Alternatively, the core material may be a polymer that has been melted and is allowed to cool, such as a thermoplastic resin. Various other additives may also be present in the core material, such as catalysts to promote polymerization or cross-linking, and compositions to modify the properties of the core material, such as plasticizers, as are known to those skilled in the art.
[0043] The method of making the annular reinforcement structure disclosed herein for two reinforcement bands and a core material could be repeated with a third reinforcement band and second core material, to produce an annular reinforced structure having three reinforcement bands, with each band separated by a the same or different core materials. For example, employing the methods and apparatus disclosed herein, it is possible to first assemble an outer reinforcement band and an intermediate reinforcement band with a core material interposed between, followed by assembly of the inner reinforcement band with a second core material between the inner reinforcement band and the intermediate reinforcement band.
Reinforced Matrix Material
[0044] The annular reinforced structure of the present invention may be used to reinforce a matrix material. The annular reinforced structure may be covered with the matrix material, that is, the matrix material covers at least one surface of the structure, for example, the outside face of the outer reinforcement band. Alternatively, the annular reinforced structure may be embedded in the matrix material. In still another embodiment of the invention, a first matrix material may be bonded to the outer surface of the outer reinforcement band and a second material may be bonded to the inner surface of the inside reinforcement band.
[0045] Referring to
[0046] The matrix material may be selected from a wide range of organic and inorganic materials, especially those that may be cast with the annular reinforcement structure embedded therein. By way of example, the matrix material may be a natural or synthetic polymer, including thermoplastic and thermosetting materials. Of particular interest are elastomeric matrix materials, such as natural or synthetic rubber, polyurethane, segmented copolyester, polyamide co-polymer and thermoplastic elastomers. In one embodiment of the invention, core material 4 is a polyurethane polymer and the matrix material 26 is a polyurethane polymer, both formed without a blowing agent, that is, substantially without voids. In another example, the matrix material is a ceramic, concrete or organometalic compound.
[0047] The invention may be further understood by reference to the following claims.