The present disclosure is directed to couplers and, more specifically, to couplers that electrically couple pairs of connectors with each connector coupled to a singled twisted pair of conductors.
A single twisted pair of conductors can be used to transmit data and/or power over a communications network that includes, for example, computers, servers, cameras, televisions, and other electronic devices including those on the internet of things (IoT), etc. In the past, this has been performed through use of Ethernet cables and connectors that typically include four pairs of conductors that are used to transmit four differential signals. Differential signaling techniques, where each signal is transmitted over a balanced pair of conductors, are used because differential signals may be affected less by external noise sources and internal noises sources such as crosstalk as compared to signals that are transmitted over unbalanced conductors.
In Ethernet cables, the insulated conductors of each differential pair are tightly twisted about each other to form four twisted pairs of conductors, and these four twisted pairs may be further twisted about each other in a so-called “core twist.” A separator may be provided that is used to separate (and hence reduce coupling between) at least one of the twisted pairs from at least one other of the twisted pairs. The four twisted pairs and any separator may be enclosed in a protective jacket. Ethernet cables are connectorized with Ethernet connectors; a single Ethernet connector is configured to accommodate all four twisted pairs of conductors. However, it is possible that data and/or power transfer can be effectively supported through a singled twisted pair of conductors with its own more compact connector and cable. Couplers that can enable electrical coupling of connectors, with each connector coupled to a single pair of electrical conductors, are an important element in broadening the use of data and/or power transfer over a single pair of electrical conductors.
A coupler of the present disclosure couples a first free connector with a second free connector wherein each of the free connectors is coupled to exactly two electrical conductors. Each coupler can be utilized in a shielded (e.g., metal) or non- shielded (e.g. non-metal) form as appropriate to a specific application. Each coupler includes exactly one pair of pin contacts, preferably with a square or rectangular cross- section. Each end of the pin contacts includes four tapered faces that join at a flattened apex and are configured to be received by the tuning fork contact of the free connector. The pair of pin contacts are offset from one another and cross one another within the coupler to maintain electrical polarity as electricity travels from the tuning fork contacts of a first free connector to the pin contacts of the coupler and onward to the tuning fork contacts of a second free connector.
In certain aspects, the present disclosure is directed to a coupler that includes a metal housing and exactly one pair of coupling contacts. The metal housing includes a first end that receives a first free connector and a second end that receives a second free connector. The one pair of coupling contacts are contained within the metal housing and comprise a first coupling contact and a second coupling contact. The first and second coupling contacts couple the first free connector the second free connector while maintaining electrical polarity.
Another aspect of the present disclosure is directed to a method of coupling a first free connector having exactly two electrical tuning fork contacts to a second free connector having exactly two electrical tuning fork contacts. The method includes removably receiving the first free connector in a first end of a coupler and removably receiving the second free connector in a second end of the coupler. The coupler houses exactly one pair of coupling contacts comprising a first coupling contact having first and second pin ends and a second coupling contact having first and second pin ends. The method further comprises electrically coupling the first pin ends of the first and second coupling contacts to the exactly two tuning fork contacts, respectively, of the first free connector and electrically coupling the second pin ends of the first and second coupling contacts to the exactly two tuning fork contacts, respective, of the second free connector, while maintaining electrical polarity between the first and second free connectors.
Still another aspect of the present disclosure is directed to a method of manufacturing a shielded coupler. The method includes manufacturing a metal housing having a central channel, which extends an entire length of the housing, as well as first and second ends that open to the central channel; each of the first and second ends is configured to mechanically interface, respectively, with a first free connector and a second free connector. The method further includes inserting a contact support structure within the metal housing to centrally position a center portion of each of exactly one pair of coupling contacts within the central channel; the centrally positioned pair of coupling contacts present first end pin contacts proximate the first end opening of the metal housing and second end pin contacts proximate the second end opening of the metal housing.
In certain aspects, the present disclosure is directed to a coupler that includes a housing and a contact sub-assembly. The housing includes a channel having openings at a first and a second end of the housing. The first and second end receive first and second connectors, respectively, and the first and second connectors include a first pair of contacts and a second pair of contacts, respectively. The contact sub-assembly includes exactly one pair of coupler contacts and a body portion supporting the exactly one pair of contacts. The contact sub-assembly is positioned centrally within the housing and the exactly one pair of coupler contacts electrically couple the first pair of contacts to the second pair of contacts.
In certain aspects, the present disclosure is directed to a method of manufacturing a coupler includes progressively die stamping a pair of pin contacts from a conductive material supported by a carrier strip. While the pair of pin contacts remain supported by the carriers, the method further includes overmolding a center point of the pair of pin contact to produce a contact sub-assembly having a body portion and exactly one pair of pin contacts, which is subsequently removed from the carrier strip. The method further includes die casting a coupler housing a having a channel between first and second open ends. Each of the first and second open ends have a configuration suitable to receive respective first and second connectors with each of the first and second connectors having exactly one pair of receptacle contacts. The method further includes inserting the contact sub-assembly through one of the first and second ends to a central position within the channel until the contact sub-assembly retainingly interfaces with the housing and the pair of pin contacts are positioned to interface with the respective receptacle contacts of the first and second connectors.
This summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter.
A coupler of the present disclosure couples a first free connector with a second free connector wherein each of the free connectors is coupled to exactly two electrical conductors. Each coupler can be utilized in a shielded (e.g., metal) or non- shielded (e.g. non-metal) form as appropriate to a specific application. Each coupler includes exactly one pair of pin contacts, preferably with a square or rectangular cross- section. Each end of the pin contacts includes four tapered faces that join at a flattened apex and are configured to be received by the tuning fork contact of the free connector. The pair of pin contacts are offset from one another and cross one another within the coupler to maintain electrical polarity as electricity travels from the tuning fork contacts of a first free connector to the pin contacts of the coupler and onward to the tuning fork contacts of a second free connector.
In certain embodiments, the coupler includes a metal shield that houses a first housing and a second housing. The first and second housing are configured to centrally interface with one another within the coupler with the pair of pin contact spanning the first and second housings. In other embodiments, the coupler includes a singular metal housing incorporating four bonding contacts as well as a contact sub-assembly. The contact sub-assembly includes a block overmolding the pin contacts that is positioned centrally within the housing. Other embodiments and combinations of embodiments are also possible.
Referring to
The forward connector body 202 includes an elongate forward portion 210 and a rear receiving portion 212 that is separated by a shoulder 211.
The elongate forward portion 210 of the forward connector body 202 includes a forward face 223 having a pair of offset openings, 224b corresponding to contact receiving channels 226a, 226b; the openings 224a, 224b receive pin contacts that electrically interface with the tuning fork contacts 206a, 206b. In certain embodiments, a recess 228 is provided on each side face of the elongate forward portion 210 to interface with and retain the metal frame 204. Each recess 228 includes a recessed notch 229 to receive an interfacing tab 244 of the metal frame 204 to further ensure that the metal frame 204 remains secured to the forward connector body 202. The forward connector body 202 also includes a cantilevered latch 230.
The rear receiving portion 212 of the forward connector body 202 is unitary (e.g. molded as a single unit) with the elongate forward portion 210 of the forward connector body 202. The rear receiving portion 212 defines a central cavity 232 that provides rear access to the contact receiving channels 226a, 226b of the elongate forward portion 210. Each side face 231, 233 of the rear receiving portion 212 includes a slot 235 to interface with the rear connector body 208 and an outward extending tab 237 to interface with the metal frame 204.
The metal frame 204 of the free connector 200 comprises a metal shell body 240 having a central cavity 234 that is slidable over the rear receiving portion 212 of the forward connector body 202. The metal frame 204 is held in place about the rear receiving portion 212 through use of a pair of flex tabs 242 that interface with corresponding recesses 228 of the forward connector body 202. Each of the flex tabs 242 includes in inward facing tab 244 to interface with recessed notch 229 of the forward connector body 202. Each side face 246, 248 of the metal frame 204 includes an opening 250 to interface with outward extending tab 237 of the forward connector body 202. Each point of interface between the metal frame 204 and the forward connector body 202 assists in securing the metal frame 204 to the forward connector body 202. Each side face 246, 248 of the metal frame 204 is additionally equipped with an inward directed beam 252 (e.g. shield beam) to establish an electrical interface with a cable shield (foil or drain wire) of the cable carrying the single pair of conductors (e.g., see
Electrical contacts 206a, 206b each include a forward portion having a tuning fork receptacle contact 254a, 254b while a rear portion of each of the electrical contacts 206a, 206b includes an insulation displacement contact (IDC) 255a, 255b. Each tuning fork receptacle contact 254a, 254b includes a pair of opposing spring arms 60a, 60b presenting an angled opening to receive a pin contact. Each of the electrical contacts 206a, 206b includes a shoulder 256a, 256b that interfaces with a stop 258 (see
The rear connector body 208 of the free connector 200 includes a rear body portion 260 that defines a central cavity 272 into which is inserted a pair of conductors (e.g., conductors 12, 14). Each side face is provided with an elongate opening 274 into which the inward directed beams 252 of the metal frame 204 extend wherein an electrical interface with the foil (or drain wire) of a conductor within the cavity 272 is established. A latch (now shown) on a lower face of the rear body portion 260 interfaces with a cut- out (not shown) of the metal frame 204 to secure the rear connector body 208 to the metal frame 204. A lip edge 277 of the rear body portion 260 seats against a rear face 257 of the metal frame 204.
The rear connector body 208 of the free connector 200 includes a contact receiving portion 280 that extends forward from the rear body portion 260. The contact receiving portion 280 is essentially divided into a first half 282a to accommodate the upper positioned electrical contact 206a and a second half 282b to accommodate the lower positioned electrical contact 206b. The first half 282a of the contact receiving portion 280 includes an upward channel that is contoured to direct the end of a conductor upward (e.g., a 90 deg. bend) to extend through a contact receiving slot. The second half 282b of the contact receiving portion 280 includes a downward channel that is contoured to direct the end of a conductor downward (e.g., a 90 deg. bend) to extend through a contact receiving slot.
The IDC contacts 255a, 255a of the electrical contact 206a, 206b are inserted into their respective contact receiving slots to establish an electrical interface with the conductor extending there through. The IDC contacts 255a, 255b applies a normal force to the respective conductor and cuts through both the insulation of the conductor and a portion of the conductor itself to create the electrical interface. Note that the electrical interface is established without requiring crimping of the conductor to the electrical contact, i.e. the electrical interface is crimp-less. The upward channel is, in part, defined by an upper outward extending arm 294 while the downward channel is, in part, defined by a lower outward extending arm 296. Each of upper outward extending arm 294 and lower outward extending arm 296 interface with respective corresponding slots 235 of the forward connector body 202 when the free connector 200 is assembled to assist in aligning and stabilizing the rear connector body 208 relative to the forward connector body 202.
Further details regarding the free connector 200 and/or a fixed connector 300 (described herein for reference) can be found in PCT Publication WO 2019/165466, entitled “Connectors and Contacts for a Single Twisted Pair of Conductors,” and filed February 26, 2019. The noted PCT Publication is hereby incorporated by reference in its entirety.
An example of a fixed connector 300, suitable to mate with free connector 200 is illustrated in
The housing body 302 of the fixed connector 300 includes a forward central channel 310 that receives the free connector 200. A notch 323 is provided within the housing body 302 to interface with the cantilevered latch 230 of the free connector 200. Further, side recesses 325 in each side face serve as an interface element for the metal frame 304. A mounting pin 327 extends from the housing body 302 and through the metal frame 2602 for circuit board mounting of the connector 300. The housing body further includes openings 326a, 326b to channels (not shown) into which the pin contacts 306a, 306b are inserted; when fully inserted, the pin contacts 306a, 306b extend into the forward central channel 310.
The metal frame 304 of the fixed connector 300 is a metal shell defining a central cavity that is slidable over the housing body 302. The metal frame 304 is held in place about the housing body 302 through use of a pair of clips 336 that interface with the side recesses 325. In certain embodiments, a back face 338 of the metal frame is enclosed with a back panel 340 while in other embodiments t back face 338 is left open. Further, in certain embodiments, the metal frame 304 is provide with one or more shield pins 342 that are insertable into vias in an application where the fixed connector 300 is board mounted.
Each of the pin contacts 306a, 306b of the fixed connector 300 include a forward portion 350 and a rear portion 352 that can be electrically coupled to a conductor, e.g. conductor 10, in any suitable manner. The forward portion 350 includes tapered faces that form a four-sided pyramid shape with a flattened apex 357; the flattened apex 357 having a rectangular or square cross-section.
Referring to
The rearward face 422 of the first housing 402 defines a rearward cavity 430 that is separated from the forward cavity 422 by a wall 432. The wall 432 is provided with first and second channels 434, 436 that receive the forward contacts 408a of each of the pair of contacts 408 allowing them to pass through to the forward cavity 422. The wall 432 further acts as a stop for the central portion 408c of each of the contacts 408 to prevent over-insertion of the forward contacts 408a.
Each of the side faces 414, 416 includes a first elongate opening 440 that receives a flex tab 726 of the metal shield 406 that retains the first housing 402 within the metal shield 406; the flex tab 726 extends into the forward cavity 422 to make contact with the metal frame 204 of a connector 200 that is received therein. Each of the side faces 414, 416 includes a second elongate opening 442, which is generally oriented perpendicular to the first elongate opening 440, and includes a flanged edge 444 that extends into the rearward cavity 430. The flanged edge 444 of the first housing 402 interfaces with a hooked tab 636 of the second housing 404 to maintain a mechanically coupled position with the second housing 404.
The rearward face 622 of the second housing 404 frames a rear projection 630 that is sized to be received within the rear cavity 430 of the first housing 402. The rear projection 630 includes first and second channels 632, 634 that receives the rearward contacts 408b of the pair of contacts 408 to allowing them to pass through to the forward cavity 624. The channels 632, 634 on the rear projection 630 include openings that are sized to receive the central portion 408c of each of the pair of contacts 408. A stop 635 is formed within each of the channels 632, 634 to prevent over-insertion of the rearward contact 408b of the pair of contact 408.
Further, each of channels 632, 634 is formed to include a retention notch 637 that interfaces with a tang 408d on each of the pair of contacts 408. The interface of the retention notch 637 and tang 408d ensures a correctly-oriented and fixed position for each of the contacts 408. Each side of the rear projection 630 includes a hooked tab 636 that interfaces with the flanged edge 444 of the first housing to mechanically couple the first housing 402 to the second housing. A rear wall 638 separate the forward cavity 624 from the rear projection 630.
Each of the side walls 614, 616 of the second housing includes an elongate opening 640 that receives a flex tab 728 of the metal shield 406 that retains the second housing 404 within the metal shield 406; the flex tab 728 extends into the forward cavity 624 to make contact with the metal frame 204 of a connector 200 that is received therein.
The top face 712 of the metal shield 406 presents a pair of opposing bosses 730 that extend away from the top face 712. The pair of opposing bosses 730 define a central open channel 732. The bosses 730 and the open channel 732 present an interface that is used to secure the position of the coupler 400 in a high density panel. In certain embodiments, the metal shield 406 is manufactured through use of a sheet metal stamping process wherein the resulting stamped component is subsequently formed into the illustrated metal shield 406. It should be noted that in certain non-shielding applications that metal shield 406 can, alternatively, be fabricated from non-metal materials
Manufacturing the coupler 400 includes inserting the first housing 402 into the first end 722 of the metal shield 406. The rearward contacts 408b of the pair of contacts 408 are inserted into the first and second channels 632, 634 (see
The housing 1302, which is typically die cast, includes an upper face 1310 and a lower face 1312 connected by a first side face 1314 and a second side face 1316 that, together, define identical first and second end faces 1320, 1322. The first and second end faces 1320, 1322 surrounds a central cavity 1324 that extends the length of the coupler 1300. In certain embodiments, a projection 1326 projects from one, or more, of the faces 1314, 1316, 1320, 1322 into the central cavity 1324 to align a connector 200 for insertion and/or prevent a non-compatible connector from being inserted therein. Each of the first and second end faces 1320, 1322 further defines a recessed notch 1328 that is configured to interface with and retain the cantilevered latch 230 of the connector 200. The upper face 1310 of the housing includes first and second bosses 1327 that extend away from the upper face and oppose one another to define a channel 1329 there between.
The interior of each of the first and second side faces 1314, 1316 includes two recesses 1330, e.g. a total of four recesses 1330, each of which receives one of the four bonding shield contacts 1304, which are press fit therein. Proximate each of the recesses 1330 is an opening 1332 that extends through the respective side face 1314, 1316. Each of the openings 1332 interfaces with an outward extending prong 1418 (see
Further details of the metal bonding shield contacts 1304 can be appreciated with respect to
Further details of the contact sub-assembly 1306 can be appreciated with respect to
The block 1510 of the contact sub-assembly 1306 includes a side channel 1520 to accommodate the projection 1326 within the central cavity 1324 of the housing 1302. An upper face 1522 of the block 1510 includes recessed first and second corners 1524 that are positioned diagonal to one another. A lower face 1526 of the block 1510 includes first and second recessed corner 1528 that are positioned diagonal to one another and are opposite corners to first and second corners 1524. Edges 1530 surrounding each of the upper face 1522 and lower face 1526, as well as side walls 1532, 1534, of the block 1510 are beveled for easier insertion of the sub-assembly 1306 within the housing 1302 of the coupler 1300. The block 1510, when inserted within the housing 1302, is slid past the ramped projections 1334, 1338 of the housing 1302 into a central position whereby the ramped projections 1334, 338 interface with a wall 1536 that defines that defines each of the recessed corners 1524, 1528.
The housing 1802, which is die cast in a symmetrical configuration, includes an upper face 1810 and a lower face 1812 connected by a first side face 1814 and a second side face 1816 that, together, define identical first and second end faces 1820, 1822. The first and second faces 1820, 1822 surround a central cavity 1824 that extends the length of the coupler 1800 between first and second end face 1820, 1822. In certain embodiments, a projection 1826 projects from one, or more, of the faces 1814, 1816, 1820, 1822 into the central cavity 1824 to align a connector 200 for insertion and/or prevent a non-compatible connector from being inserted therein. Each of the first and second end faces 1820, 1822 further defines a recessed notch 1828 that is configured to interface with and retain the cantilevered latch 230 of the connector 200. The upper face 1810 of the housing includes first and second bosses 1827 that extend away from the upper face and oppose one another to define a channel 1829 there between.
The interior of each of the first and second side faces 1814, 1816 includes two recesses 1830, e.g. a total of four recesses 1830, each of which receives one of the four bonding shield contacts 1804, which are press fit therein. Proximate each of the recesses 1830 is an opening 1832 that extends through the respective side face 1814, 1816. Each of the openings 1832 interfaces with an outward extending prong 1418 (see
As previously noted, the contact sub-assembly 1806 includes pair of contacts 1808, which generally correspond to contacts 408 (see
Further details of the body 1807 of the contact sub-assembly 1806 can be appreciated with respect to
In order to ensure shielding properties of the coupler 1800, the housing 1802 of the coupler 1800 is preferably die cast metal (e.g., a zinc alloy) to provide shielding, grounding and bonding paths with bonding shield contacts 1804 and connectors 200 received via the first and second end faces 1820, 1822 of the housing 1802 of the coupler 1800. The single pair of contacts 1808 provide a signal and/or power path from a first connector 200 to a second connector 200 that are received within the coupler 1800. The single pair of contacts 1808 are held in position by the central block portion 2110 of the body 1807 of the contact sub-assembly 1806.
As with the other coupler embodiments disclosed herein, the shielded coupler 1800 can also be manufactured in an unshielded configuration by eliminating the bonding shield contacts 1804 and manufacturing the housing from a non-conductive material (e.g. a plastic).
It will be appreciated that aspects of the above embodiments may be combined in any way to provide numerous additional embodiments. These embodiments will not be described individually for the sake of brevity.
While the present invention has been described above primarily with reference to the accompanying drawings, it will be appreciated that the invention is not limited to the illustrated embodiments; rather, these embodiments are intended to disclose the invention to those skilled in this art. Note that features of one or more embodiments can be incorporated in other embodiments without departing from the spirit of the invention, for example, receptacle contacts can be replaced with pin contacts and, correspondingly, pin contacts can be replaced by receptacle contacts in the various connector and coupler configurations. In the drawings, like numbers refer to like elements throughout. Thicknesses and dimensions of some components may be exaggerated for clarity.
It will be understood that, although the terms first, second, etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another. For example, a first element could be termed a second element, and, similarly, a second element could be termed a first element, without departing from the scope of the present invention.
Spatially relative terms, such as “under”, “below”, “lower”, “over”, “upper”, “top”, “bottom” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. It will be understood that the spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is turned over, elements described as “under” or “beneath” other elements or features would then be oriented “over” the other elements or features. Thus, the exemplary term “under” can encompass both an orientation of over and under. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly.
Well-known functions or constructions may not be described in detail for brevity and/or clarity. As used herein the expression “and/or” includes any and all combinations of one or more of the associated listed items.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises”, “comprising”, “includes” and/or “including” when used in this specification, specify the presence of stated features, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, operations, elements, components, and/or groups thereof.
Herein, the terms “attached”, “connected”, “interconnected”, “contacting”, “mounted” and the like can mean either direct or indirect attachment or contact between elements, unless stated otherwise.
Although exemplary embodiments of this invention have been described, those skilled in the art will readily appreciate that many modifications are possible in the exemplary embodiments without materially departing from the novel teachings and advantages of this invention. Accordingly, all such modifications are intended to be included within the scope of this invention as defined in the claims. The invention is defined by the following claims, with equivalents of the claims to be included therein.
This application is being filed on Sep. 29, 2020 as a PCT International Patent Application and claims the benefit of U.S. Patent Application Ser. No. 62/908,330, filed on Sep. 30, 2019, the disclosure of which is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2020/053283 | 9/29/2020 | WO |
Number | Date | Country | |
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62908330 | Sep 2019 | US |