The present invention generally relates to positioning assembly and, more specifically, to an anchor positioning assembly for partially embedment in a concrete member, such as a precast or tilt-up wall.
The present invention is directed towards a positioning assembly to be partially embedded in a concrete form. The positioning assembly can assist with the positioning of an anchor within a casting frame which is subsequently filled with concrete.
In one embodiment, the invention provides an anchor positioning member having a first end configured to couple to a first reinforcing member, a second end configured to couple to a second reinforcing member, and an intermediate section which can be coupled to an anchor.
In another embodiment, the invention provides an anchor positioning system comprising at least two anchor positioning members. Each anchor positioning member has a first end configured to couple to a first reinforcing member, a second end configured to couple to a second reinforcing member, and an intermediate section which can be coupled to an anchor.
In still another embodiment, the invention provides an anchor positioning assembly to position an anchor in a casting frame having a first reinforcing member and a second reinforcing member. The anchor positioning assembly includes an anchor and a positioning member. The anchor includes an first portion and a second portion, and the positioning member includes a first end configured to couple to the first reinforcing member, a second end configured to couple to the second reinforcing member, and an intermediate section which can be coupled to the second portion of the anchor.
In yet another embodiment, the invention provides a method of positioning an anchor positioning assembly within a casting frame to produce a concrete form. The method includes arranging first and second reinforcing members in the casting frame, engaging a first positioning member of the anchor positioning assembly to the first and second reinforcing members, engaging a second positioning member of the anchor positioning assembly to the first and second reinforcing members, substantially immersing a first portion of the anchor positioning assembly in concrete, and creating a void within the concrete form such that a portion of the anchor positioning assembly is exposed.
Before the embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and/or the arrangements of the components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments and of being practiced or being carried out in various ways. Also, it is understood that the phraseology and terminology used herein are for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having,” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof, as well as additional items and equivalents thereof. The terms “connected,” “coupled,” and “mounted” are used broadly and encompass both direct and indirect connections, couplings, and mountings. Furthermore, terms such as “front,” “rear,” “top,” “bottom,” “side,” “inner,” “outer,” and the like are only used to describe elements as they relate to one another, but are in no way meant to recite specific orientations of the apparatus, to indicate or imply necessary or required orientations of the apparatus, or to specify how the invention described herein will be used, mounted, displayed, or positioned in use.
An anchor positioning assembly 10 embodying the present invention is illustrated in
As illustrated in
In other embodiments, the anchor 20 can varying in shape, size and form. For example, the positioning system 10 can use a W-foot anchor, such as the anchor shown and described in U.S. patent application Ser. No. 10/648,935, the entire content of which is hereby incorporated by reference.
The positioning assembly 10 further includes one or more positioning members 45 to couple to one or more reinforcing members 30, such as the reinforcing bars 30 shown in the illustrated embodiments. In other embodiments, the reinforcing members 30 can vary in width, length, shape, size and material. The reinforcing members 30 can include a beam, for example.
As shown in
In the illustrated embodiments, the first end portion 210 and the second end portion 215 are configured to engage with the first reinforcing bar 240 and the second reinforcing bar 245, respectively, such that each positioning member 200 and 205 can be subjected to tension when coupled to the reinforcing bars 240 and 245. The positioning member 200 and 205 may also be either substantially or at least partially supported by reinforcing bars 240 and 245. Furthermore, the positioning member can be subjected to compression when couples to the reinforcing bars 240 and 245, or can be at least partially supported by the reinforcing bars 240 and 245 and also be subjected to compression when coupled to the bars 240 and 245.
In some embodiments, the first end portion 210 of each positioning member 200 and 205 can further be configured to partially surround a portion of the first reinforcing bar 240. For example, in the illustrated embodiments, the first end portion 210 can further include a curved section 250 having an inner surface 252 and an outer surface 255 (with respect to the reinforcing bar 240). The curved section 250 can at least partially surround (e.g., partially hook around) a portion of the first reinforcing bar 210. The inner surface 252 can couple, indirectly or directly, to the reinforcing bar 240.
In some embodiments, the second end portion 215 of each positioning member 200 and 205 can further be configured to create a snap fit between the second send portion 215 and the second reinforcing bar 245. For example, in the illustrated embodiments, the second end portion 215 of each positioning member 200 and 205 can further include a first curved section 260 and a second curved section 265. As shown in
In the illustrated embodiments, the second end portion 215 also includes an inflection section 280 (shown in
In some embodiments, the inner concave surface 272, the inner inflection surface 280 and the inner convex surface 278 can all, in part, couple to the second reinforcing bar 245. In other embodiments, the second reinforcing bar 245 can couple to one of the inner surfaces 272, 278 or 280 or a combination of the inner surfaces 272, 278 and 280. In some embodiments this coupling can be accomplished by welding.
As shown in the illustrated embodiments, both the first reinforcing bar 240 and the second reinforcing bar 245 are included in the grid pattern 35, and each are positioned substantially parallel to the other. In other embodiments (not shown), the first end portion 210 of the first positioning member 200 can couple to one reinforcing member 30 while the first end portion 210 of the second positioning member 205 can couple to another reinforcing member 30. Similarly, in other embodiments (not shown), the second end portion 215 of the first positioning member 200 can couple to one reinforcing member 30 while the second end portion 215 of the second positioning member 205 can couple to another reinforcing member 30. In further embodiments, the reinforcing members 30 can be arranged in a different pattern, such as, for example, a pattern with two or more non-parallel, non-perpendicular reinforcing members 30.
In some embodiments, the intermediate section 220 of each positioning member 200 and 205 can be coupled to the anchor 20, when the positioning assembly 10 is assembled. As shown in the illustrated embodiments, the intermediate section 220 of the first positioning member 200 can be secured to the first leg 80 of the anchor 20, and the intermediate section 220 of the second positioning member 205 can be secured to the second leg 85 of the anchor 20. In some embodiments, such as the illustrated embodiments, the positioning members 45 (e.g., positioning members 200 and 205) are secured to the lower portion 65 of the anchor 20 and is embedded in the concrete form 40. The positioning members 200 and 205 can be secured to the respective legs 80 and 85 of the anchor 20 by welding, a securing device (e.g., bolt, sleeve, joint and the like), or the like. In the illustrated embodiments, each positioning member 200 and 205 is secured to the respective leg 80 and 85 of the anchor by a welded joint 290.
The exemplary positioning assembly 10 further includes at least one void former 50. The void former 50 can be formed of a variety of materials such as, for example, rubber, plastic, wood, a combination of two or more listed materials or any other material that is easily removable from the concrete (e.g., after hardening). The void former 50 can include a first portion 305 and a second portion 310. The first portion 305 and the second portion 310 of the void former 50 can be held together to create a sufficiently tight seal between the void former 50 and, at least in part, the upper portion 60 of the anchor 20. The first portion 305 and the second portion 310 can be distinct parts (not shown), can be an integral part (as shown in
In the illustrated embodiment, the first portion 305 and the second portion 310 is a single part having an upper surface 315, and the first portion 305 connects to the second portion 310 by a live hinge 320 included in the upper surface. The void former 50 further includes a recess 325 defined by the upper surface 315. In the illustrated embodiment, a second hinge 330 is positioned within the recess 325. The second hinge 330 includes one or more apertures 340 to receive one or more fasteners (not shown), such as a nail, bolt, screw or the like, to fasten the second hinge 330 to the void former 50.
The one or more fasteners (not shown) can also aid in the removal of the void former 50 from the positioning assembly 20 and the concrete form 40 (e.g., when the concrete is hardened). For example, a first bolt (not shown) can be received by a first aperture 350 positioned at least partially on the first portion 305 of the void former 50, and a second bolt (not shown) can be received by a second aperture 355 positioned at least partially on the second portion 310 of the void former 50. To remove the void former 50 from the positioning assembly 20, a device or user can force the bolts (not shown) together via the live hinge 320 and the second hinge 330 such that the first portion 305 and the second portion 310 are forced apart. When the void former 50 is removed from the positioning assembly 20 and the concrete form 40, the concrete form defines a void 400 as shown in
The one or more fasteners (not shown) can also be used to fasten the void former 50 to a cover 402 substantially covering the concrete casting frame 25, such as a piece of plywood 402 (shown in
In some embodiments the positioning assembly 10 allows for the void former 50, and consequently the anchor 20, to be held in place by the positioning members 200 and 205 coupled to the reinforcing members 30. The positioning members 200 and 205 can hold in place the void former 50 which surrounds the anchor 20.
In an exemplary implementation, the anchor positioning system 10 (shown in
When the concrete hardens (forming a concrete form 40), the void former 50 is removed from the concrete form 40 exposing a portion of the anchor 20. As shown in
The embodiments described above and illustrated in the figures are presented by way of example only and are not intended as a limitation upon the concepts and principles of the present invention. As such, it will be appreciated by one having ordinary skill in the art that various changes in the elements and their configuration and arrangement are possible without departing from the spirit and scope of the present invention as set forth in the appended claims.