Concrete expansion joint insert including a sealant on one edge
10815658 ยท 2020-10-27
Assignee
Inventors
Cpc classification
E01C11/106
FIXED CONSTRUCTIONS
International classification
Abstract
An illustrative example embodiment of a concrete joint insert includes a body having two ends, two longitudinal edges between the ends and two side surfaces between the longitudinal edges. A sealant is secured to one of the longitudinal edges so that the insert and the sealant can be simultaneously installed at the location of a concrete joint.
Claims
1. A concrete joint insert, comprising a body having two ends, two longitudinal edges between the ends, and two side surfaces between the longitudinal edges, the longitudinal edges respectively having dimensions defined by a body length and a body thickness, the side surfaces being perpendicular to the longitudinal edges, the side surfaces defining a width of the body between the longitudinal edges; and a sealant adhesively secured to one of the longitudinal edges so that the body and the sealant can be simultaneously installed in a concrete joint, wherein the one of the longitudinal edges is configured to establish an upwardly facing horizontal surface beneath the sealant when the sealant and body are installed in a concrete joint, the sealant has an adhesive exterior including an upwardly facing sealant surface that is exposed along the concrete joint, the upwardly facing sealant surface has an adhesive tackiness, the sealant has a height parallel with the width of the body, and the height is less than one-half of the width.
2. The concrete joint insert of claim 1, wherein the sealant has a hardness sufficient to maintain a selected shape in ambient conditions prior to being installed in a concrete joint.
3. The concrete joint insert of claim 2, wherein the sealant has a melting temperature at which the sealant will at least partially melt and change from the selected shape to another configuration.
4. The concrete joint insert of claim 3, wherein the melting temperature is above 160 F.
5. The concrete joint insert of claim 1, comprising a cover over at least a portion of the exterior of the sealant, the cover protecting at least the portion of the exterior of the sealant from direct contact with another object.
6. The concrete joint insert of claim 5, wherein the cover comprises a film.
7. The concrete joint insert of claim 5, wherein the cover comprises a material that melts at a temperature below a melting temperature of the sealant.
8. The concrete joint insert of claim 5, wherein the cover is configured to be reduced or removed in response to exposure to an outdoor environment.
9. The concrete joint insert of claim 1, wherein the body is made of rubber.
10. The concrete joint insert of claim 1, wherein the body is made of vinyl.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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(11) The insert 20 of
(12) In some examples, the width W varies between two inches and twelve inches. Many concrete installations include slabs that have a thickness on the order of 3.5 inches, 4 inches or 6 inches. The width W is selected to correspond to the thickness of the concrete in such examples.
(13) The thickness T may vary between 0.25 inches and 1 inch. Many expansion joints have a gap size of approximately one-half inch and the insert 20 will have a thickness T of one-half inch for such installations.
(14) The insert 20 may comprise various materials. In some examples, the insert comprises recycled rubber while in other embodiments the insert comprises one of: wood fibers impregnated with asphalt, asphalt with minerals such as sand added between two layers of tar paper, recycled newspaper bonded under pressure and containing wax, recycled vinyl, cork, rebounded rubber, or neoprene and wood strips.
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(16) One example sealant 28 has a material composition like that of a commercially available concrete joint and crack filler material sold by Dalton Industries under the tradename CRACKSTIX.
(17) In some examples, the adhesive material will have an exterior tackiness. The embodiment of
(18) In some example embodiments as shown in
(19) In some embodiments, the sealant 28 comprises a material that has a hardness sufficient for retaining an established shape in ambient temperature conditions. In some embodiments, the sealant material is capable of retaining a desired shape in temperatures up to approximately 160 F. With these characteristics, the sealant 28 holds its established shape throughout shipping, handling and installation. Even though such materials may be melted by applying heat, in some embodiments, after being melted, the material cures and has a hardness that is at least the same as used for maintaining the shape prior to installation. In some embodiments, curing the sealant 28 by applying heat when the sealant has been installed results in a greater hardness at the installation site compared to the hardness of the sealant 28 during shipping and handling, for example.
(20) One example use is schematically represented in
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(22) In some embodiments of this invention, the insert 20 is cut from a larger sheet to achieve the desired width W while in others, the width W and thickness T are established during a molding process, depending on the material chosen from those mentioned above.
(23) The device 60 includes an extruder 62 for extruding material, such as recycled rubber into a manifold 64 that distributes the extruded material into individual channels 66. The material flows through the channels 66 in the direction shown by the arrow 68. The channels in this example have an adjustable dimension to achieve different width W dimensions of the inserts.
(24) One side 70 of each channel 66 is adjustable relative to an opposite side of the channel as schematically shown by the arrow 72. The side 70 of each channel 66 may be adjusted from a smaller width W dimension to a larger width W dimension as schematically shown in phantom at 74. The adjustable feature of the channels 66 allows for making different sized inserts without requiring a completely separate die channel and without requiring complex changes to the device 60.
(25) The device 60 includes the ability to provide the sealant 28 along at least one of the longitudinal edges of an insert produced by the device 60. In the illustrated example, another extruder 76 extrudes sealant material into a manifold 78 that distributes the sealant material along secondary channels 80 that are situated along one of the longitudinal edges of the channels 66. Such an arrangement allows for coextruding two materials so that at least one longitudinal edge of the molded insert has the sealant 28 in place on the longitudinal edge.
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(27) In some examples, the adhesive 28 is applied by attaching a rope or bead of adhesive material to the longitudinal edge 30. In other examples, the adhesive material 28 is applied using a fluid form of the adhesive and an applicator. In such examples, while the adhesive is fluid, there is enough solidity to it once the material leaves the applicator that the material remains in a desired position relative to the rest of the insert body until the adhesive material cures. Some examples include placing the insert body within a molding station and then molding the adhesive material onto the longitudinal edge 30.
(28) In some embodiments, once the sealant 28 material is applied to the selected edge of the insert, the sealant 28 is cooled and shaped to a desired configuration. Some examples include using rollers that establish the desired profile or shape of the sealant 28. Once shaped, the sealant 28 is cooled and is ready for the cap or cover 40 to be applied. In one example, a film is draped over the top edge of the sealant 28 and extends down the sides toward the insert body a sufficient length to cover all exposed surfaces of the sealant 28.
(29) Including an adhesive 28 on a longitudinal edge 30 of an expansion joint insert 20 facilitates faster installation and more consistent finished results. The amount of adhesive within each joint is controlled because the adhesive material is already present on the insert before it is installed in an expansion joint between sections of concrete. This avoids misapplication or under-application where insufficient amounts of adhesive are otherwise present in an expansion joint, which may lead to future deterioration of the concrete along that joint. Additionally, having a controlled amount of adhesive within the expansion joint facilitates achieving a more consistent and aesthetically pleasing appearance to the finished concrete installation.
(30) The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this invention. The scope of legal protection given to this invention can only be determined by studying the following claims.