Abstract:
One embodiment is directed to a wall plate device including one or more jacks. Each jack includes a rear attachment point configured to couple to one or more communication paths in a semi-permanent manner. Each jack also includes a front attachment point configured to mate with a connector of a corresponding physical communication media, and to couple such physical communication media to the rear attachment point. Each jack also includes a media reading interface configured to interface with a PLM interface of a connector connected to the front attachment point. The wall plate device also includes a programmable processor coupled to each of the media reading interfaces and configured to access a storage device of a connector connected to the front attachment point through the media reading interface to obtain PLM information. The programmable processor is configured to communicate the PLM information to another device.
Abstract:
A passive optical fiber switch includes: a housing defining a plurality of ports configured to receive fiber optic connectors; a substrate positioned within the housing, the substrate defining a plurality of waveguide paths; and an arm positioned relative to one of the plurality of ports such that the arm moves as a fiber optic connector is positioned in the one port, movement of the arm causing the waveguide paths to shift to break a normal through configuration.
Abstract:
A passive optical fiber switch includes: a housing defining a plurality of ports configured to receive fiber optic connectors; a substrate positioned within the housing, the substrate defining a plurality of waveguide paths; and an arm positioned relative to one of the plurality of ports such that the arm moves as a fiber optic connector is positioned in the one port, movement of the arm causing the waveguide paths to shift to break a normal through configuration.
Abstract:
A connector arrangement includes a plug nose body; a printed circuit board positioned within a cavity of the plug nose body; and a plug cover that mounts to the plug nose body to enclose the printed circuit board within the cavity. The printed circuit board includes a storage device configured to store information pertaining to the electrical segment of communications media. The plug cover defines a plurality of slotted openings through which the second contacts are exposed. A connector assembly includes a jack module and a media reading interface configured to receive the plug. A patch panel includes multiple jack modules and multiple media reading interfaces.
Abstract:
Fiber optic connectors and adapters may be automatically secured and released via a management system. Such automation may inhibit accidental and/or unauthorized insertion of fiber optic connectors into adapter ports. The automation also may inhibit accidental and/or unauthorized removal of the fiber optic connectors from the adapter ports.
Abstract:
An exemplary optical distribution frame includes a frame structure defining multiple positions into which multiple chassis can be inserted and a frame controller unit attached to the frame structure. The frame structure includes a frame controller and a switch communicatively coupled to the frame controller, wherein the switch includes a multiple ports. The frame structure including multiple cables, each cable being attached to a respective one of the ports of the switch and routed and attached to the optical distribution frame so that each cable can be attached to a chassis inserted into a predetermined one of the positions in the optical distribution frame, wherein the frame controller is configured to communicate port mapping information to a management entity that is communicatively coupled to the frame controller for use by the management entity in associating location information with a chassis inserted into the optical distribution frame.
Abstract:
One embodiment is directed to a communication media including one or more communication paths extending from a first end to a second end and a first connector assembly terminating the first end of the one or more communication paths. The first connector assembly includes a physical layer management (PLM) interface that is isolated from signals on the one or more communication paths. The first connector assembly also includes a programmable processor coupled to a storage device and coupled to the PLM interface. The programmable processor is configured to perform secure communications with another device coupled to the PLM interface to communicate physical layer information regarding the communication media to the other device. An aggregation point can associate a first port on the other device to which the first connector assembly is inserted with the first connector assembly or the communication media using the physical layer information.
Abstract:
One embodiment is directed to a wall plate device including one or more jacks. Each jack includes a rear attachment point configured to couple to one or more communication paths in a semi-permanent manner. Each jack also includes a front attachment point configured to mate with a connector of a corresponding physical communication media, and to couple such physical communication media to the rear attachment point. Each jack also includes a media reading interface configured to interface with a PLM interface of a connector connected to the front attachment point. The wall plate device also includes a programmable processor coupled to each of the media reading interfaces and configured to access a storage device of a connector connected to the front attachment point through the media reading interface to obtain PLM information. The programmable processor is configured to communicate the PLM information to another device.
Abstract:
One exemplary embodiment is directed to an inter-networking device that performs at least one inter-networking function using physical layer information about the network of which the device is a part. Another exemplary embodiment is directed to capturing physical layer information about physical communication media that is attached to an inter-networking device. Another exemplary embodiment is directed to a technique for generating a spanning tree and/or forwarding database information for a plurality of switches in a network at a central location. The spanning tree and/or forwarding database information is generated at the central location using information including physical layer information about devices and physical communication media in the network. Another exemplary embodiment is directed to an ETHERNET physical layer device having integrated support for capturing physical layer information about the physical communication media connected to the ETHERNET physical layer device.
Abstract:
Systems and methods for connectors with insertion counters are provided. In one embodiment, a connector comprises: an interface configured to interface with a corresponding interface of a port to communicate signals between the port and a cable attached to the connector; at least one switch configured to change from a first state to a second state when the connector is inserted into the port; and a microcontroller configured to record insertion events, wherein the microcontroller increments an insertion count stored within the microcontroller when the at least one switch transitions from the first state to the second state.