CONNECTOR FOR SOIL REINFORCING AND METHOD OF MANUFACTURING
20210340718 · 2021-11-04
Inventors
Cpc classification
International classification
Abstract
An apparatus, system and method of connecting an earthen formation to a facing of a mechanically stabilized earth (MSE) structure in which a connector includes a single piece of wire that defines an opening for coupling the connector to an anchor and a pair parallel legs for mechanically connecting the to a soil reinforcing element.
Claims
1. A connection element for a mechanically stabilized earth structure including a first longitudinal wire having a first proximal end and a second longitudinal wire having a second proximal end, the connection element comprising: a pair of legs that are biased apart from one another, each of the pair of legs configured to be coupled to respective ones of the first proximal end of the first longitudinal wire and the second proximal end of the second longitudinal wire, the pair of legs being biased apart from one another; and a fastener receptacle from which each of the pair of legs extends.
2. The connection element of claim 1, wherein: the connection element has a unitary construction.
3. The connection element of claim 2, wherein: the connection element is formed from a single length of wire.
4. The connection element of claim 3, wherein the single length of wire defines a cross-section that is round, square, rectangular, hexagonal, octagonal, or a combination thereof.
5. The connection element of claim 1, wherein: the pair of legs includes a first leg and a second leg, the first leg including a first elongated longitudinally extending section, the second leg including a second elongated longitudinally extending section, the first elongated longitudinally extending section being substantially parallel to the second elongated longitudinally extending section.
6. The connection element of claim 1, wherein the pair of legs include: a first leg includes a second section that orthogonally extends from a distal end of the first section; and a second leg includes a second section that orthogonally extends from a distal end of the second section.
7. The connection element of claim 3, wherein: the single length of wire is bent a number of degrees about an axis extending orthogonally relative to a lengthwise axis of the single piece of wire to form a coiled section that defines the fastener receptacle.
8. The connection element of claim 7, wherein: the number of degrees equals 180 degrees.
9. The connection element of claim 7, wherein: the number of degrees equals 270 degrees.
10. The connection element of claim 7, wherein: the number of degrees equals 540 degrees.
11. A system for securing a facing of an earthen formation, comprising: a mechanically stabilized earth structure including a first longitudinal wire having a first proximal end and a second longitudinal wire having a second proximal end; a connection element for the mechanically stabilized earth structure, the connection element comprising: a pair of legs that are biased apart from one another, each of the pair of legs configured to be coupled to respective ones of the first proximal end of the first longitudinal wire and the second proximal end of the second longitudinal wire, the pair of legs being biased apart from one another; and a fastener receptacle from which each of the pair of legs extends.
12. The system of claim 11, wherein: the connection element has a unitary construction.
13. The system of claim 12, wherein: the connection element is formed from a single length of wire.
14. The system of claim 13, wherein the single length of wire defines a cross-section that is round, square, rectangular, hexagonal, octagonal, or a combination thereof.
15. The system of claim 11, wherein: the pair of legs include a first leg and a second leg, the first leg including a first elongated longitudinally extending section, the second leg including a second elongated longitudinally extending section, the first elongated longitudinally extending section being parallel to the second elongated longitudinally extending section.
16. The system of claim 11, wherein: the first leg includes a second section that orthogonally extends from a distal end of the first section; and the second leg includes a second section that orthogonally extends from a distal end of the second section.
17. The system of claim 13, wherein: the single length of wire is bent a number of degrees about an axis extending orthogonally relative to a lengthwise axis of the single piece of wire to form a coiled section that defines the fastener receptacle.
18. A method of manufacturing a soil reinforcing connection element assembly, comprising: bending a connection element consisting of a single wire into a configuration with a central opening and two legs at the distal ends that are substantially parallel.
19. The method of claim 17, further comprising: providing a soil reinforcing element with a including at least two longitudinal members and cross members; and mechanically joining the connection element distal ends to proximal ends of the two longitudinal members of the soil reinforcing element.
20. The method of claim 19, wherein: the mechanical joining including securing the connection element to the soil reinforcing element via a nut and bolt connection.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0040] Various embodiments and aspects of the present disclosure will be described with reference to the accompanying drawings in which like or similar features are labeled with the same reference number. The following description and drawings are illustrative of the present disclosure and are not to be construed as limiting the disclosure. Numerous specific details are described to provide a thorough understanding of various embodiments of the present disclosure. However, well-known or conventional details are not described in order to provide a concise discussion of embodiments of the present disclosure.
[0041] The present disclosure presents a connector that is advantageous over such prior art connectors as are described above for a variety of reasons including more efficient use of material and time as a unitary length of wire may be configured in a greater variety of sizes and can be coupled to the MSE faster and more cheaply. For example, in
[0042] The present disclosure provides a connector that is advantageous over the connectors 5, 10 in that it uses material efficiently and can be configured in a variety of sizes such that there is a greater number of options for spacing between the longitudinal wires 112. For example, it may be preferable to have a relatively narrow spacing between the wires such that the MSE structure is relatively rigid. The present disclosure provides for a greater variety of configurations of the connector while using materials efficiently and not necessitating any change in the manufacturing process. Conventionally, the connectors 5, 10, in contrast may only be readily available in certain sizes as it would be inefficient for a factory to make a great variety of connectors having different sizes.
[0043] The present disclosure provides various embodiments of a one-piece MSE connector that facilitate soil reinforcing with a variety of longitudinal wire spacings to be connected to a variant of the connector without an increase in the component cost. Another advantage of the connector is that it is a single point connector that allows soil reinforcing to swivel in order to avoid vertically-disposed obstructions, such as drainage pipes, catch basins, bridge piles, or bridge piers, which may be encountered in the adjacent compacted backfill. Still another advantage of the connector is it can be attached to varying width soil reinforcing elements providing a distinct advantage that allows the system to be attached to welded wire fabricated on almost any automated mesh welder by most welded wire suppliers.
[0044] In accordance with an embodiment of the present disclosure, a connector 200A that may be used instead of the connectors 5, 10 (
[0045] The connector 200A may have a unitary construction and may be formed from a single length of wire. As used herein, the term “unitary” means formed of a single piece, e.g., a single length of wire. The wire may be formed of a material including a metal material, such as, stainless steel or other metals or metal alloys. The cross section of the wire for the connector can be round, square, rectangular, hexagonal, octagonal, or a combination thereof. The modification of the terminal end profile allows for an increase in area to apply different types of mechanical attachment processes such as metal added welding, or resistance welding.
[0046] The connector 200A may include a first leg 202 and a second leg 204. Distal sections 202x, 204x of respective ones of the first and second legs 202, 204 may be substantially parallel to one another and may be spaced apart by a distance X1 at the distal end D of the connector 200A, which may be greater than the width of the connector 200A at the proximal end P. The connector 200A may include a receptacle 201, at a proximal section of the connector 200A. The receptacle 201 may define an opening 201a through which a fastener, e.g., a bolt, may be received to secure the connector 200A to an anchor (e.g., anchor 108). The first and second legs 202, 204 may be secured to respective longitudinal wires 112, e.g., via resistive welding, which is advantageous such that there is no added metal in forming the weld.
[0047] As shown in
[0048] Another embodiment of a connector 200C will now be described with reference to
[0049] As shown in
[0050] The connectors 200A-200D may be configured and/or adjusted to have varying dimensions by bending the wire forming the connector in different ways. As shown in
[0051] As shown in
[0052] As shown in
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[0054] A method of manufacturing the connectors 200A, 200B may include: providing a length of wire, which may be a metal (e.g., stainless steel); and bending the wire into a shape defining a central opening 201a at a proximal end and including two substantially parallel longitudinally extending distal sections 202x, 204x at a distal end thereof. Preferably, the distal sections 202x, 204x defines a suitable length for welding (e.g., via resistive welding) the distal sections 202x, 204x to longitudinal wires 112 of the MSE. For example, the tensile strength of the assembly of the connector 200A and the longitudinal wires 112 should be roughly the same as that of the longitudinal wires 112 such that the weld is not a weakened section. Although preferably the coupling of the connector 200A to the longitudinal wires 112 at the distal end of the connector 200A is achieved via welding, e.g., resistive welding in which metal is not added, other techniques including metal added welding techniques may alternatively or additionally be utilized. Preferably, distal sections 202x, 204x which are to be welded to the longitudinal wires 112 have a suitable length for welding them to the longitudinal wires 112 such that the strength of the weld is sufficient to resist tensile and/or shear forces that might be applied.
[0055] The wire which forms the connector 200A may be bent using a mandrel (not shown) and the receptacle 201, defining the opening 201a, at the proximal end may be formed by turning the wire a number a desired number of turns or degrees (e.g., 180 degrees or 540 degrees) such that the proximal end of the connector is coiled and defines a shape having an opening extending lengthwise through the coil. The opening 201a may be configured to accept a fastener, e.g., a bolt, when placed in an anchoring system at the wall face. Immediately after the bend the two wires continue and extend substantially horizontal to one another for a slight distance. The bottom horizontal wire is then deflected up while the top horizontal wire is deflected down so they deflect and continue in the same plane. The two wires are then deflected at an angle then are deflected back so they are parallel to the longitudinal wires of the soil reinforcing. The first deflected angel is a function of the distance the longitudinal wires are spaced from one another. The second deflection angle is a function of the angle required to bring them parallel with the longitudinal wires. By allowing the first deflection angle to vary the length of the connection wire can be limited keeping the cost of the connection uniform.
[0056] While the present disclosure may have been shown and described with reference to various embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope and spirit of the present disclosure as defined by the appended claims and their equivalents. In other words, the various exemplary embodiments disclosed in the present specification and drawings are merely specific embodiments to facilitate an understanding of the various aspects of the present disclosure and are not intended to limit the scope of the present disclosure. For example, the particular ordering of the steps may be modified or changed without departing from the scope and spirit of the present disclosure. Therefore, the scope of the present disclosure is defined not by the detailed description of the disclosure but by the appended claimed, and all differences in the scope should be construed as being included in the present disclosure.