Abstract:
Fiber optic assemblies and related fabrication methods include a retaining member having at least one pin section that is configured to extend through an opening defined in at least one side wall of a body structure, to permit the at least one pin section to cooperate with at least one feature of a fiber optic connector received in a cavity of the body structure to thereby retain the fiber optic connector in the cavity. Exemplary body structures include dust caps, adapters, patch panels, fiber optic modules, and the like.
Abstract:
A traceable fiber optic cable assembly with an illumination structure and tracing optical fibers for carrying light received from a light launch device is disclosed herein. The traceable fiber optic cable assembly and light launch device provide easy tracing of the traceable fiber optic cable assembly using fiber optic tracing signals. Further, the launch connector is easily attached to and removed from the fiber optic connector with repeatable and reliable alignment of optic fibers, even when the fiber optic connector is mechanically and/or optically engaged with a network component. The fiber optic connectors are configured to efficiently illuminate an exterior of the connector for effective visibility for a user to quickly locate the fiber optic connector.
Abstract:
A traceable fiber optic cable assembly with an illumination structure and tracing optical fibers for carrying light received from a light launch device is disclosed herein. The traceable fiber optic cable assembly and light launch device provide easy tracing of the traceable fiber optic cable assembly using fiber optic tracing signals. Further, the launch connector is easily attached to and removed from the fiber optic connector with repeatable and reliable alignment of optic fibers, even when the fiber optic connector is mechanically and/or optically engaged with a network component. The fiber optic connectors are configured to efficiently illuminate an exterior of the connector for effective visibility for a user to quickly locate the fiber optic connector.
Abstract:
An exemplary embodiment of a device, configurable with various indicia of connectivity, and to be received by a data communication station is disclosed. The data communication station may include a frame having an aperture formed therein and a blank insert configured to be in registered alignment with the aperture. The blank insert may include a front facing surface configured to receive indicia thereon. The blank insert may include a retention feature configured to engage with an identification icon. In another embodiment, the data communication station may include a frame, a connector housing insert, and an identification icon configured to receive connectivity indicia thereon, wherein the connector housing insert may include a retention feature to engage with a corresponding retention feature on the identification icon. In another embodiment, a data communication station is configured to directly receive and retain an identification icon configured to receive connectivity indicia thereon.
Abstract:
A wedge device for use with a fiber optic connector comprises an insert body comprising a light transmissive material. The insert body defines a wedge portion integrally extending into a light pass structure, the light pass structure terminating in a single upper face distal from the wedge portion. For example, wedge device may be a unitary member formed entirely of the light transmissive material.
Abstract:
A fiber optic connector having a radio frequency identification tag and an optical fiber connection device are disclosed in the embodiments of the present invention. The fiber optic connector comprises: a housing (1); a tail sleeve (4) partly inserted in the housing from a first end of the housing and configured to fix an end of an optical fiber cable (20); a tag receiving portion (5) which is formed in a sidewall of the housing, on a radial outside of the tail sleeve and in which the radio frequency identification tag (10) is disposed; and an electromagnetism restriction part (15) disposed between the tag receiving portion and the tail sleeve to restrict an electromagnetic influence of the tail sleeve made of a metal material on the radio frequency identification tag. The adverse influence of metal material in the fiber optic connector on the read performance of the radio frequency identification tag may be eliminated by disposing the electromagnetism restriction part between the metal holding tube and the radio frequency identification tag.
Abstract:
An adapter block assembly includes an adapter block, a circuit board arrangement, and a cover attached to the adapter block so that the circuit board arrangement is held to the adapter block by the cover. Contact assemblies can be disposed between the adapter block and the circuit board arrangement. The cover can be latched, heat staked, or otherwise secured to the adapter block. Each component of the adapter block assembly can include one or more parts (e.g., multiple adapter blocks, multiple circuit boards, and/or multiple cover pieces).
Abstract:
One embodiment is directed to an adapter (110) comprising a coupling circuit (140) configured so that a portable RFID reader (126) can be positioned near a first part of the coupling circuit (140) associated with a first side of the adapter (110) in order to perform a localized read of both an RFID tag (124) attached to a first connector (129) inserted into a first jack (116) of the adapter (110) and an RFID tag (124) attached to a second connector (122) inserted into a second jack (118) of the adapter (110), wherein the coupling circuit (140) is used to enhance a read range of the portable RFID reader (126) when performing the localized read. These embodiments can be used in the outside plant of a telecommunications network. Other embodiments are disclosed.