The present invention relates to electrical wiring extensions and, more particularly, to electrical wiring extensions for use in exposed areas such as along floor surfaces or along work surfaces.
Extension cords are commonly used for temporarily routing electricity or electrical signals from a power or data source to a different area or location, such as in a home or office building. When extension cords are laid across flooring or walking areas, floor runners in the form of protective covers are sometimes used to temporarily house the extension cord in an effort to reduce tripping hazards.
A modular electrical system facilitates the convenient routing of electrical power and/or data from one area to another within a work area, such as along work surfaces and/or along floor surfaces. A user may select a desired number of outlet assemblies and select a desired number of jumpers and junctions in order to provide the desired number and location of outlet assemblies in a work area. Different connectors may be compatible with one another so that jumpers may be exchanged for outlet assemblies and vice versa, and junctions may be added as desired to extend along greater distances or to provide a greater number of outlet assemblies in a given area.
In one form, a modular electrical system includes an electrical power infeed, an electrical distribution assembly, a power or data unit, and a power jumper cable. The electrical power infeed includes an electrical input plug and a first electrical output connector. The electrical distribution assembly includes a first electrical input connector for receiving the first electrical output connector, an electrical output assembly, and a plurality of electrical conductors extending between the first electrical input connector and the electrical output assembly. The electrical output assembly includes at least one branch output connector and a first jumper output connector. The power or data unit includes a branch plug connector for engaging the branch output connector, an electrical power or data receptacle for supplying power or data to an electrical or electronic device, and a flexible branch extension wire that extends from the branch plug connector to the electrical power or data receptacle. The power jumper cable includes a jumper input connector for connection to the first jumper output connector, and a second jumper output connector.
In another form, the present invention provides a modular electrical floor runner that can be assembled from pieces to a desired length, which incorporates electrical wiring internally (such as for power and/or data) and power or data outlets at spaced intervals along the length of the runner. The floor runner may be assembled from modular runs and junction pieces to achieve a desired length, configuration (shape), and number of outlets for a desired application. The floor runner may include a customizable power/data outlet housing that facilitates use of a desired number or type (or combination) of power and/or data outlets. The floor runner typically includes a low-profile extrusion that is substantially rigid to resist damage or lifting from a floor surface, and can be used as a permanent or semi-permanent wiring extension device, such as for use in reconfigurable office spaces.
These and other objects, advantages, purposes and features of the present invention will become apparent upon review of the following specification in conjunction with the drawings.
Referring now to the drawings and the illustrated embodiments depicted therein, an electrical distribution system in the form of a modular electrical floor runner assembly 10 is provided for routing electrical wiring, such as power and/or data wiring, to a location where power and/or data outlets are desired (
The first or upstream floor runner module 12 includes a rigid elongate housing 24 having a power infeed coupler 26 at its upstream end 12a, for connection to the electrical power infeed 14, such as shown in
Referring to
To provide crush-resistance and added rigidity and strength, the elongate housing 24 includes downwardly-extending outboard ends 38 and downwardly-extending intermediate support walls 40 (
In the embodiment of
Optionally, the junction modules may be shaped to provide a bend or curve between adjacent floor runner modules. Junction modules can also be formed as blanks in which they act only as a connection interface between adjacent floor runner modules 12, 16, with no branch receptacle 44 provided. It is further envisioned that junction modules could be permanently attached to one floor runner module, so that the junction modules are readily attachable and detachable from only one other floor runner module.
Optionally, the upstream junction connector 42a is identical to downstream junction connector 42b so that the double-ended junction module 18′ may be installed in either of two orientations between adjacent floor runner modules, which in turn may also be installed in either of two orientations. That is, although each floor runner module 16 and each junction connector 42 can be said to have an “upstream end” and a “downstream end” when assembled together, the orientations of these components can be rotated 180 degrees without affecting their connectability or function.
As noted above, the electrical wiring and various connectors of the modular electrical floor runner assembly 10 may be designed with a high electrical power capacity so that many downstream floor runner modules 16 and junction modules 18 or 18′ can be assembled together in a work area without creating capacity problems for the wiring and connectors within the assembly 10. It will be appreciated that providing many branch receptacles 44 that provide access to electrical power along the assembly 10 will increase the likelihood that users will connect enough electrical power consumers to the assembly 10 so that the electrical power capacity of the circuit(s) supplying power to the assembly 10 will be exceeded. To prevent overloading the circuit(s) supplying power to the assembly 10, circuit breaker 20 is selected to have an equal power capacity or a lower power capacity than the rest of the assembly 10. The circuit breaker 20 is associated with at least one prong 48 of the plug 22 and has a capacity selected to disconnect electrical continuity between that prong 48 and a corresponding one of the electrical conductors 32a-c in the first floor runner module 12. Thus, to prevent overload conditions reaching a circuit supplying power to the assembly 10, the runner modules 12, 16 and the junction modules 18 or 18′ have a first (higher) rated electrical capacity when they are assembled together, while the circuit breaker 20 has a second rated electrical capacity that is less than or equal to the first rated electrical capacity.
The branch receptacles 44 are positioned in respective upper surfaces of the junction modules 18, 18′ and face upwardly, such as shown in
It will be appreciated that, aside from the plug 22 with conventional prongs 48 and the power and/or data units 54, 54′ with conventional power or data receptacles 56, 58, in the illustrated embodiment every electrical connector along the modular electrical floor runner assembly 10 is an unconventional or proprietary or custom connector that is incompatible with conventional connectors such as standard NEMA plugs and outlets. This selection of custom connectors prevents users in a work area from connecting a standard extension cord or electrical consumer directly to one of the branch receptacles 44. It may be desirable to prevent the use of conventional or standard extension cords because, as noted above, the assembly 10 is designed to have excess electrical capacity or rating between the power and/or data units 54, 54′ and the electrical power infeed 14, with the circuit breaker 20 in the plug 22 being the limiting factor for the capacity of the assembly 10. Conventional or standard extension cords may have lower electrical capacity than the wiring and connectors specifically designed for the assembly 10, which would potentially compromise the capacity of the assembly if permitted.
Optionally, and with reference to
A similar power in/out jumper cable 60′ can serve as an electrical distribution assembly, including a first connector 62′ and a second connector 64′ that are configured for engagement with electrical runner connectors (not shown) at either end 12a, 12b or 16a, 16b of the first floor runner module 12 or any of the downstream floor runner modules 16. The power in/out jumper cable 60′ includes an intermediate connector 66, between the first and second connectors 64′, that provides one or more branch receptacles or connectors 44 that are compatible with the branch plugs 50 of the flexible branch extensions 52. The power in/out jumper cables 60, 60′ can thus function as additional power output points for branch extensions, and may be used to add flexibility to the locations or placement of floor runner modules 12, 16 within the modular electrical floor runner assembly 10.
Additional combinations of wiring and connectors may be used to route electrical power along surfaces such as flooring, walls, or underneath tables, desks, countertops, or the like. Referring to
Referring now to
Additional combinations of power and/or data units 54, H-shaped electrical connectors 280, and power in/out jumper cables 60′ may be assembled together to achieve different numbers of power or data units 54 in different areas. For example,
As discussed above, it will be appreciated that different types of connectors may be used to ensure that only compatible electrical components are used in a given electrical distribution system. For example, and with reference to
The electrical distribution systems may utilize conventional multi-strand wiring or cabling for high voltage AC and/or low voltage DC electrical power transmission, or for electronic data transmission. It is further envisioned that the electrical distribution systems of the present invention may be implemented with flat wire electrical conductors, such as those disclosed in commonly-owned U.S. patent application Ser. No. 16/191,517, now U.S. Pat. No. 11,081,815, issued Aug. 3, 2021, entitled “ELECTRICAL POWER OR DATA DISTRIBUTION SYSTEM”, which is hereby incorporated herein by reference in its entirety.
Therefore, the present invention provides electrical distribution systems that may include modular electrical floor runner systems and/or work surface electrical systems incorporating wiring and electrical and/or electronic or data outlets, such as for use in office areas, industrial or work spaces, homes, or the like. The modular electrical floor runner is generally low-profile and unobtrusive, so that it may be unobtrusively placed along a floor or walking space, or along another support surface. The modular electrical floor runner can be configured to difference lengths and/or shape and/or routing, with limited regard for the order in which floor runner modules and junction modules are placed, or for the total number of floor runner modules and junction modules used. The work surface electrical distribution systems may provide similar functionality as the modular electrical floor runner systems, and may be compatible for use with the modular electrical floor runner systems so that power can be directed to desired areas and/or surfaces within a work area. The system may also be readily reconfigurable in order to accommodate changing needs or configurations within a work area.
The floor runner system allows users to provide power to the center of a room that doesn't already have power access, such as from a wall outlet to a group of tables or workstations. The system connects to power via a cord and either a conventional plug or a proprietary connector, the latter being appropriate especially for multi-circuit systems. The floor runner system can easily be relocated to other areas, and can easily be reconfigured to provide desired number of outlets in desired locations. The modular aspect facilitates the provision of a desired number of access points, substantially without concern for providing excess access points because the electrical capacity of the assembled system will typically be well in excess of the capacity of its circuit breaker. Thus, the system does not require counting, placing floor runner modules in a specific order (due to keying), or other methods of restricting the number of floor runner modules within the system. The modular electrical system can be mounted on top of floor surfaces, as opposed to under carpeting, and can optionally be secured to a floor surface with adhesives, threaded fasteners, or the like. The dimensions and shape configuration of the housings that form the outer portions of each rigid elongate housing allows the system to meet requirements of the Americans with Disabilities Act (ADA).
Changes and modifications in the specifically described embodiments can be carried out without departing from the principles of the present invention, which is intended to be limited only by the scope of the appended claims, as interpreted according to the principles of patent law including the doctrine of equivalents.
The present application in a continuation of U.S. patent application Ser. No. 16/884,690, filed May 27, 2020, now U.S. Pat. No. 11,303,079, issued Apr. 12, 2022, which claims the benefit of U.S. provisional application, Ser. No. 62/853,461, filed May 28, 2019, which is hereby incorporated herein by reference in its entirety.
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Number | Date | Country | |
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Parent | 16884690 | May 2020 | US |
Child | 17717781 | US |