Abstract:
Patch cords are provided that include a communications cable that has at least first through fourth conductors and a plug that is attached to the cable. The plug includes a housing that receives the cable, a printed circuit board, first through fourth plug contacts, and first through fourth conductive paths that connect the first through fourth conductors to the respective first through fourth plug contacts. The first and second conductors, conductive paths, and plug contacts form a first differential transmission line, and the third and fourth conductors, conductive paths, and plug contacts form a second differential transmission line. Each of the first through fourth plug contacts has a first segment that extends longitudinally along a first surface of the printed circuit board, and the signal current injection point into the first segment of at least some of the first through fourth plug contacts is into middle portions of their respective first segments.
Abstract:
A receptacle block defines one or more sockets at which plugs may be received. Each socket contains a first set of contacts and a second set of contacts. Each socket also includes a sensing contact that interacts with the second set of contacts to close an electrical switch. For example, the sensing contact can interact with an arm extending from one of the contacts of the second set. Closure of the switch can be detected and interpreted to indicate that a plug has been received at the respective socket.
Abstract:
Various exemplary embodiments relate to a compact small form-factor pluggable (CSFP) module including: a CSFP connector; a dual Ethernet receptacle; a first Ethernet transceiver connected between the CSFP connector and the dual Ethernet connector; a second Ethernet transceiver connected between the CSFP connector and the dual Ethernet connector; a processor connected to the CSFP connector, the first Ethernet transceiver, and the second Ethernet transceiver, wherein the processor receives control messages from the CSFP connector and wherein the processor transmits control messages to the first and second Ethernet transceivers.
Abstract:
Cable assembly including a cable harness having insulated wires, a shielding layer that surrounds the insulated wires, and a protective jacket that surrounds the shielding layer. The shielding layer includes an exposed portion that clears an end of the protective jacket. The cable assembly also includes an assembly housing having an internal cavity and a loading passage that provides access to the internal cavity. The exposed portion of the shielding layer is positioned within the loading passage. The insulated wires extend through the internal cavity and are terminated to corresponding electrical contacts of a contact assembly. The cable harness includes an adhesive layer that is coupled to the exposed portion. The adhesive layer is engaged with an interior surface of the assembly housing along the loading passage. The adhesive layer includes a conductive thermoplastic material that electrically couples the shielding layer to the assembly housing.
Abstract:
A network connector structure includes a connector body and a locking structure. The connector body encloses a conduction wire. The locking structure is attachable to the connector body and includes a withdrawal prevention section and a coupling section. When the network connector structure is inserted into a socket, the withdrawal prevention section of the locking structure is received in the socket in such a way that an engagement face of the engagement section engages and abuts a projection block of the socket to prevent the network connector structure from being withdrawn from the socket. The coupling section detachably mounts the locking structure to the connector body so as to allow for easy replacement.
Abstract:
A connector assembly includes a housing, a plurality of circuit board cable assemblies, and an overmold. Each of the circuit board cable assemblies may include a printed circuit board and a pair of shielded cables. The overmold may extend and insulate a portion of the shielded cables and a portion of the printed circuit board that includes a plurality of conductive contact pads for electrical connection to the shielded cables.
Abstract:
A telecommunications patch panel is provided having a plurality of connector modules rotatably mounted to a frame member. Each connector module has a front face and an opposite facing rear face, and each front face includes a plurality of connector jacks. Each rear face includes a plurality of wire termination blocks. The wire termination blocks are electrically connected to the connector jacks. Each connector module is rotatable about a rotation axis relative to the frame member. A lock selectively locks each connector module to the frame member as desired. The connector jacks and the connector modules are arranged in linear arrays perpendicular to the axis of rotation.
Abstract:
Patch cords include a communications cable that has a first conductor and a second conductor that form a first differential pair, and a third conductor and a fourth conductor that form a second differential pair and a plug that is attached to the communications cable. The plug includes a housing that receives the communications cable, first through fourth plug contacts that are within the housing, and a printed circuit board. The printed circuit board includes first through fourth conductive paths that connect the respective first through fourth conductors to respective ones of the first through fourth plug contacts. The plug further includes a first conductive shield that extends above a top surface of the printed circuit board that is disposed between the first differential pair and the second differential pair.
Abstract:
Patch cords are provided that include a communications cable that has at least first through fourth conductors and a plug that is attached to the cable. The plug includes a housing that receives the cable, a printed circuit board, first through fourth plug contacts, and first through fourth conductive paths that connect the first through fourth conductors to the respective first through fourth plug contacts. The first and second conductors, conductive paths, and plug contacts form a first differential transmission line, and the third and fourth conductors, conductive paths, and plug contacts form a second differential transmission line. Each of the first through fourth plug contacts has a first segment that extends longitudinally along a first surface of the printed circuit board, and the signal current injection point into the first segment of at least some of the first through fourth plug contacts is into middle portions of their respective first segments.
Abstract:
Patch cords include a communications cable that has a first conductor and a second conductor that form a first differential pair, and a third conductor and a fourth conductor that form a second differential pair and a plug that is attached to the communications cable. The plug includes a housing that receives the communications cable, first through fourth plug contacts that are within the housing, and a printed circuit board. The printed circuit board includes first through fourth conductive paths that connect the respective first through fourth conductors to respective ones of the first through fourth plug contacts. The plug further includes a first conductive shield that extends above a top surface of the printed circuit board that is disposed between the first differential pair and the second differential pair.