Not Applicable
1. Field of the Invention
The present invention relates to electrical connectors for terminating electrical wires and cords, and more particularly to a strain-relief device used with electrical connectors to prevent forces applied to the electrical wires and cords affecting the connector or the connections made therein.
2. Description of the Related Art
In the manufacture of plugs, sockets, and other components in electrical wiring, for example, disposed at the ends of electrical cords such as extension cords, such plugs and sockets are typically fabricated as foldable assemblies between which the wires of the electrical cords are securely held and attached to electrical connector devices mounted in the folded and assembled electrical connector assembly. Example implementations of such foldable electrical connector assemblies are described in U.S. Pat. Nos. 5,934,931; 5,975,941; and 6,056,588, each of which is incorporated herein by reference, which provide components to securely mount the cords and wires into the assemblies and which provide strain relief on the assemblies and the wires when the cores and/or wires are moved or pulled.
Heretofore, such folded and assembled electrical connector assemblies experienced weakening of their structural integrity in response to various pressures or stresses applied from different sources and directions. For example, prior art electrical connector assemblies have used fastening screws to hold the folded assembly in the folded configuration. However, such fastening screws have typically been incapable of securely holding the entire folded and assembled electrical connector assembly together in response to diverse sources of pressure or stress, such as pulling the mounted wires outward from the folded assembly.
A need exists for mechanisms which supplement the retaining capabilities of fastening screws or other fastening devices to securely hold the entire folded and assembled electrical connector assembly together, and so to relieve the strain experienced by the fastening screws/devices.
In the prior art, a foldable electrical connector assembly typically utilizes multiple fastening screws to maintain the structural integrity of the folded and assembled electrical connector assembly. Such use of multiple fastening screws complicate fabrication of the foldable electrical connector assembly and also increase the time and effort of a user to completely fold and secure an electrical connector assembly onto or about inserted wires.
A need exists for a foldable electrical connector assembly requiring a single fastening screw to reduce fabrication complexity and to improve the ability of a user to completely and securely assembly the electrical connector assembly with inserted wires.
In addition, in the prior art, such foldable assemblies typically utilize flexible/living hinges between portions of the unfolded electrical connector assembly, such that the portions are rotated around the living hinges to engage complementary portions to mount the wires and other components between the complementary portions. The hinges also function to keep the folded assembly together. However, due to external factors such as age and the application of external sources of pressure, such hinges may wear out or otherwise break, which may result in the dissolution of the folded and assembled electrical connector assembly.
A need exists for additional safeguards and mechanisms of foldable electrical connector assemblies to maintain the structural integrity of the folded assemblies even though any of the hinges between portions of the assemblies may break.
Furthermore, although strain relief mechanisms are known in the prior art, such strain relief mechanisms may limit the path of the wires mounted in the foldable electrical connector assemblies. For example, prior art strain relief mechanisms may cause exposed ends of the wire having different electrical characteristics, such as polarity, to engage each other.
A need exists for providing an improved path for the wires in the interior of the foldable electrical connector assembly to be disposed near an internally-positioned electrical connector device, and for providing such strain relief of wires running along the improved path.
An electrical connector assembly receives exposed ends of an electrical wire, and includes a foldable body with complementary first and second body portions and components for securely mounting a third body portion in the assembly using a single fastening screw, and for mounting the exposed ends to electrical contacts of an electrical connector device attached to the third body portion and securely mounted in the folded and assembled body portions. The components on the body portions include posts, ribs, and bridges for relieving strain on the electrical wire in the assembly, and other ribs and interlocking components prevent the electrical connector assembly from allowing the wires, the electrical connector device, and/or the third body portion from being removed from the folded and assembled electrical connector assembly.
As shown in
Referring to
In one embodiment, the body portions 12-16 and the hinges 18, 20 may be formed as an integral piece from known fabrication techniques, for example, dye-cast molding of plastic materials or other electrically insulating materials known in the art, such as rubber, glass, and/or composite materials. In alternative embodiments, the body portions 12-16 may be independently fabricated and attached to each other by heat-sealing contacting edges of the first body portion 12 to the third body portion 16 and of the second body portion 14 to the third body portion 16 to form the resilient and/or bendable hinges 18, 20 from the heat sealing process. In other alternative embodiments, independently fabricated body portions 12-16 may be attached to each other as shown in
As shown in
Such electrical connector assemblies 10 and electrical connector devices 24 shown in
The body portions 12-14 are fabricated to be complementary, with opposing surfaces which are brought into engagement with each other when the first body portion 12 is folded about the living hinge 18, and when the second body portion 14 is folded about living hinge 20. In a preferred embodiment, the body portions 12-14 are held together in the completed assembly configuration, shown for example in
In the preferred embodiment, a single screw 46 is used to hold the body portions 12-14 together and, in conjunction with the various ribs of the body portions 12-14, described herein, the body portions 12-14 are securely assembled with the third body portion 16 positioned in the assembled body portions 12-14.
In alternative embodiments, multiple screws, apertures, and fastener receiving sockets similar to the screw 46, aperture 48, and socket 50 may be used in the electrical connector assembly 10; for example, as shown in U.S. Pat. Nos. 5,934,931; 5,975,941; and 6,056,588, incorporated herein by reference. In further alternative embodiments, the body portions 12-14 and optionally the third body portion 16 may be heat sealed together, or otherwise a known adhesive may be selectively applied to secure the body portions 12-14 or the body portions 12-16 together to form the assembled electrical connector assembly 10, as shown in
The aperture 48 and/or the screw and/or fastener receiving socket 50 may be formed as extensions of the respective body portions 12-14, with the extensions being oriented to be disposed in the interior of the folded and assembled electrical connector assembly 10. In alternative embodiments, the aperture 48 may be in the first body portion 12 and the fastener receiving socket 50 may be in the second body portion 14, and each body portion 12-14 may include corresponding extensions formed from the respective body portion 12-14. In further embodiments, the aperture 48 may be formed in a raised portion 52, which may correspond to a recess 54 in the exterior surface of the second body portion 14, shown in
The raised portion 52 may complement shelf-like walls 56 in the recess 50, such that the raised portion 52 fits in and engages the walls 56 when the body portions 12-14 are folded to engage each other, as shown in
The body portions 12-14 have end walls 58, 60, respectively, in which respective wire apertures 62, 64 are disposed, optionally on wire holding extension structures 66, 68, respectively, extending from the end walls 58, 60, respectively. The apertures 62-64 may be rectangular slots, shown in
The electrical connector assembly 10 also includes a plurality of extensions from the body portions 12-14, including posts, ribs, bridges, and other structures and components, for providing a path for the wires 38, 82 to run from the exterior to the interior of the electrical connector assembly 10, and a plurality of ribs are included for providing strain relief for the wires 38, 82 from the effects of bending or other manipulation or movement of the wires 38, 82 after installation into the folded electrical connector assembly 10. In a preferred embodiment, some of the posts may also function as strain-relief ribs and vice versa.
In the example shown in
As shown in
Thus, the guiding posts 70, 72, extending in a longitudinal direction, operate in conjunction with the fastener-receiving socket 50 and the side walls 76 of the extension 74 to form a snug path for the wires 38, 82 to pass through.
The first plurality of guiding posts 70 and/or the second plurality of guiding posts 72 may include ribs and/or bridges 84 extending from the first body portion 12 which engage complementary ribs 86, 88, 90 of the second body portion 14. The plurality of ribs 86, 88, 90 are spaced apart from each other in a longitudinal direction, and provide strain-relief when the second body portion 14 is folded over, as shown in
In a preferred embodiment, when the body portions 12, 14 are folded together to be assembled, a first rib 86 is positioned in the longitudinal direction between the first guiding posts 70 and the second guiding posts 72; a pair of second ribs 88 is positioned in the longitudinal direction between the pair of second guiding posts 72; and a third pair of ribs 90 is positioned in the longitudinal direction after the last pair of second guiding posts 70 in the longitudinal direction and the screws 30, 32, as shown in FIG. 2.
Referring to
However, as shown in
Thus, excellent strain relief is provided for a wide range of wire cord sizes without the need for additional parts, while also preventing overstressing the assembly screw 46 which, heretofore in the prior art, received the burden of compensating for strain on the wires 38, 82.
In alternative embodiments, the side walls 76 of the extension 74 may be tapered in the longitudinal direction toward the third body portion 16, to provide a lead-in for the wires 82, which may also be used in conjunction with the posts 70, 72 to assist in aligning the wires 82 to pass through the proper channel towards the screws 30, 32 in the assembled configuration of the electrical connector assembly 10.
In addition, the various posts, ribs, bridges, and other components, such as the extension 74 and the ribs 90, prevent the electrical connector device 24 and/or the contacts 26, 28 from being pushed out when the electrical connector assembly 10 is folded and closed, as shown in
Other advantages are provided by the use of the various posts, ribs, bridges, etc. For example, the bridge 84 and/or the rib 86 prevent objects as well as dust or other particulate matter from entering the interior of the electrical connector assembly 10 in the folded and closed configuration shown in FIG. 4.
In the preferred embodiments, the electrical connector assembly 10 also includes additional ribs and slots for providing advantages in addition to preventing intrusion by objects as well as dust or other particulate matter from entering the interior of the electrical connector assembly 10. For example, as shown in
Thus, the elongated ribs 100 provide excellent protection to the components such as the wires 82, their exposed ends 34, 36, and the electrical contacts 26, 28 in the interior of the assembled folded-and-closed electrical connector assembly 10, even if the electrical connector assembly 10 is not completely closed. In addition, the combination of elongated ribs 100 and slots 98 provide greater structural integrity to prevent bending or warping of the body portion 12, 14, for example, during any pulling of the wires 38, 82 in any direction, and so the electrical connector assembly 10 remains in the assembled configuration as shown, for example, in FIG. 4.
Furthermore, the combination of elongated ribs 100 and slots 98 aligns the body portions 12, 14 as the body portions 12, 14 are folded and assembled, as shown in
In the preferred embodiment, additional ribs and components provide additional alignment mechanisms between the body portions 12, 14 as well as additional structural integrity of the folded and assembled electrical connector assembly 10. For example, the body 22 of the third body portion 16 includes a rib 80 which, during and/or after the folding of the second body portion 14 adjacent the first body portion 12, is disposed in the slot 78 of the extensions 74 as shown in FIG. 2. The rib 80 engaging the slot 78 prevents the body portions 12, 14 from misaligning during assembly and during use, such as when manipulation or movement of the wires 38, 82 apply sidewise or vertical pressure to the body portions 12, 14.
The rib 80 is preferably positioned between the contacts 26, 28 of the electrical connector device 24, and the rib 80 is preferably composed of insulating and/or non-conducting material. Accordingly, the rib 80 provides an additional function of maintaining electrical isolation between the contacts 26, 28 as well as the exposed ends 34, 36 of the wires 38, 82, so that shorts between the contacts 26, 28 are prevented. Thus, the rib 80 simultaneously aligns the body portions 12, 14 and electrically isolates the contacts 26, 28 during and after assembly of the electrical connector assembly 10.
In addition, referring to
Referring to
For example, in the embodiments shown in
In use, the interlocking tabs 112 prevent the third body portion 16 from being pulled out from the folded electrical connector assembly 10 forming the plug 42, even if either or both of the hinges 18, 20, respectively connecting the body portions 12, 14 of the plug 42 to the third body portion 16, are broken or worn out.
The various features and advantages of the electrical connector assembly 10 are not dependent on the type of plug or socket to be connected to the wires 38, for example, since various features and advantages described herein are disposed in the regions of the body portions 12-16 which are internally located when the electrical connector assembly 10 is folded, as in
In one configuration 114 shown in the top view in
In an alternative configuration 118 shown in a top view in
In another alternative embodiment, the configuration 44 shown in
In another alternative configuration 132 shown in a top view in
In another embodiment of the present invention, the body portions 12-14 are held together using a snap fastening arrangement as shown in FIG. 11. In
Referring now to
Another version of the snap-clip implementation is shown in
While there has been shown, described, and pointed out the fundamental novel features of the invention as applied to the preferred embodiment, as is presently contemplated for carrying it out, it is to be understood that various omissions, substitutions, and changes of the form and details of the invention illustrated and described herein and in its use and operation may be made by those skilled in the art, without departing from the spirit of the invention.
This application is a continuation-in-part of application Ser. No. 09/911,923 filed Jul. 24,2001, now U.S. Pat. No. 6,695,639.
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Number | Date | Country | |
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20040110426 A1 | Jun 2004 | US |
Number | Date | Country | |
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Parent | 09911923 | Jul 2001 | US |
Child | 10647001 | US |