UNIFIED COPPER AND FIBER CONNECTOR FOR HYBRID ELECTRIC/OPTICAL CABLE
20220045443 ยท 2022-02-10
Inventors
Cpc classification
G02B6/3825
PHYSICS
H01R4/183
ELECTRICITY
H01B11/22
ELECTRICITY
G02B6/3887
PHYSICS
International classification
Abstract
A composite cable connector for terminating a cable segment is provided having at least one fiber optic element and at least one conductor element is provided. The composite cable connector has a connector housing, receiving at a first end, the at least one fiber optic element and at least one conductor element. A ferrule at a second end of the connector housing presents the at least one fiber optic element. At least one crimp on element is positioned at a back end of the connector housing for crimping onto the connector housing and couples with the at least one conductor element. At least one conductive pathway, from the crimp on element to a front end of the connector housing, proximate the ferrule, presenting at least one conductive pathway at a front face of the connector housing.
Claims
1. A composite cable connector for terminating a cable segment having at least one fiber optic element and at least one conductor element, said composite cable connector comprising: a connector housing receiving at a first end, said at least one fiber optic element and at least one conductor element, a ferrule at a second end of said connector housing for presenting said at least one fiber optic element; at least one crimp on element, positioned at a back end of said connector housing for crimping onto said connector housing and coupling with said at least one conductor element; and at least one conductive pathway within said composite cable connector, from said crimp on element to a front end of said connector housing, proximate said ferrule, presenting at least one conductive pathway at a front face of said connector housing of said composite cable connector.
2. The composite cable connector as claimed in claim 1, wherein said connector housing is any one of an LC connector, an SC connector, and a FC connector.
3. The composite cable connector as claimed in claim 1, wherein said crimp on element is electrically/conductively connected to a conductive pathway in said connector housing.
4. The composite cable connector as claimed in claim 3, wherein said crimp on element is electrically/conductively connected to a copper sleeve over said ferrule, via said conductive pathway in said connector housing.
5. The composite cable connector as claimed in claim 1, wherein said crimp on element is electrically/conductively connected to said front face of said connector housing via a conductive front element, surrounding said ferrule and passing over said connector housing to said crimp on element.
6. The composite cable connector as claimed in claim 1, wherein said connector is configured to be inserted into an adapter for electrical connection to an adjoining segment of a conductive pathway.
7. The composite cable connector as claimed in claim 1, wherein said adapter includes a conductive sleeve providing an electrical conductive pathway between said connector and an adjacent conductor in said adapter.
8. The composite cable connector as claimed in claim 7, wherein said adapter includes a metal conductor for connection between an external power source and said conductive sleeve, so as to introduce or extract an electrical current to a conductive pathway where said connector is connected to said adapter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The present invention can be best understood through the following description and accompanying drawing, wherein:
[0012]
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DETAILED DESCRIPTION
[0018] In one embodiment as shown in
[0019] As shown in
[0020] Fiber 12 enters a connector housing 20 and passes through to the front of ferrule 30. However, unlike typical connector housings, connector housing 20 includes a crimp on element 22 made of metal for supporting connection with conductor wire 14.
[0021] From there, conductive crimp on element 22 is electrically/conductively connected to conductive pathway that will terminate at the front of either connector housing 20 and/or ferrule 30. In one embodiment, the crimp and crimp on element 22 is a mechanical splice point to the copper conductor, and can be made from metal, such as copper. In one example, crimp on element 22 may be constructed large enough to contain a 12 to 18 AWG conductor. Using mechanical leverage, connector 22 is deformed around conductor 14, mechanically bonding itself to copper conductor 14.
[0022] For example, as shown in
[0023] In another embodiment, crimp on element 22 may be in contact with a copper front element 28 (surrounding sleeve 24 and ferrule 30) that passes over connector body 20 from the rear to the front face of connector 10. This embodiment would include an additional copper filled cavity 29 between the ferrule sleeve and full front element 28 of connector 10 to ensure full conductivity and connection for conductor wire 14.
[0024] When placing two connectors 10 together, a standard connector block (e.g. LC connector block) may be used. This will rely on ferrules 30 to provide the electrical connection. As shown in
[0025] It is understood that either one of or both copper front element 28 and or metal sleeve 24/ferrule 30, can be used as the electrical pathway from conductor 14 to the front of connector 10.