H04B10/25891

Optical switch, optical switch apparatus and node, and communication network

An optical switch has four optical ports; a first optical waveguide coupled between a first of said ports and a second of the ports; a first switch element provided between the first waveguide and a second optical waveguide that is coupled to a third of the ports; a second switch element provided between the first waveguide and a third optical waveguide that is coupled to a fourth of the ports. Each switch element has a micro-ring resonator having an active state in which it is coupled to the first waveguide and to a respective one of the second and third waveguides for optical signals at a preselected wavelength, and an inactive state in which no coupling occurs. Each switch element has a control element arranged to receive a respective control signal configured to cause it to switch the micro-ring resonator between said states.

Techniques to support multiple interconnect protocols for a common set of interconnect connectors

Embodiments may be generally direct to apparatuses, systems, method, and techniques to determine a configuration for a plurality of connectors, the configuration to associate a first interconnect protocol with a first subset of the plurality of connectors and a second interconnect protocol with a second subset of the plurality of connectors, the first interconnect protocol and the second interconnect protocol are different interconnect protocols and each comprising one of a serial link protocol, a coherent link protocol, and an accelerator link protocol, cause processing of data for communication via the first subset of the plurality of connectors in accordance with the first interconnect protocol, and cause processing of data for communication via the second subset of the plurality of connector in accordance with the second interconnect protocol.

Photonic integrated circuit with active alignment

An example photonic integrated circuit includes a transmitter circuit with a optical communication path to an optical coupler configured to couple with an optical fiber. The optical communication path has a propagation direction away from the transmitter circuit and towards the optical coupler. A counter-propagating tap diverts light sent by a light source backward against the propagation direction of the optical communication path. A photodiode receives the diverted light and measures its power level. The photodiode generates a feedback signal for the optical coupler and provides the feedback signal to the optical coupler. The optical coupler receives the feedback signal and adjusts a coupling alignment of the optical communication path to the optical fiber based on the feedback signal, which indicates the measured power level of the diverted counter-propagating light.

OPTICAL FIBERS DEPLOYMENT IN THE LAST MILE
20170235083 · 2017-08-17 · ·

A method for connecting a number of users with at least one signal bearing optical fiber contained in an optical cable. The method includes: a) interrupting the signal bearing optical fiber at a first branch point, obtaining a first optical fiber segment upstream of the branch point and a second optical fiber segment downstream of the branch point; b) providing an optical splitter at the branch point, the optical splitter including an input and two outputs; c) coupling the first optical fiber segment with the input of the optical splitter; d) coupling a first output of the optical splitter with a first user; e) coupling a second output of the optical splitter with a downstream optical fiber segment of an interrupted optical fiber contained in the optical cable; and f) coupling the downstream optical fiber segment with at least one further user at a further branch point downstream the first branch point.

A HIGH-SPEED OPTICAL MODULE FOR FIBRE CHANNEL
20170237490 · 2017-08-17 ·

The present invention relates to the field of optical module, and provides a high-speed optical module for an optical fiber channel. The optical module can be used for 16G optical fiber channel, and comprises parts for emitting, receiving, clock data recovery and controlling. The optical module can be downward compatible with the application of 8G optical fiber channel and 4G optical fiber channel, support the diagnostic tests on optical circuit loopback and electrical circuit loopback, and provide stable receiving alarming. The optical module of the present invention, when serving as the interface between optical fiber channel systems and the interface between optical storage network storage devices, has the characteristics of miniaturization and low power consumption, and can improve port application density; the module supports hot swapping, which facilities the field debugging of the system, and can realize the replacing of the optical module without power down; and the module supports a digital diagnostic interface, and the network administrator can monitor the working state of the optical module by using the communication interface.

OPTICAL FIBER DETECTION METHOD, DETECTION DEVICE, DETECTION PLATFORM AND ELEMENT MANAGEMENT SYSTEM
20170230108 · 2017-08-10 · ·

An optical fiber detection method includes: selecting an optical fiber path required to be detected and setting relevant parameters of an optical fiber detection device related to the optical fiber path (S10); sending a detection starting instruction to the optical fiber detection device for the optical fiber detection device to detect the optical fiber path according to the detection starting instruction (S20); receiving a result of the detection performed by the optical fiber detection device on the optical fiber path, and analyzing the result of the detection to acquire the working status of the optical fiber path (S30). A network element management system and an optical fiber detection device and platform are also described.

COHERENT OPTICAL SPECTRUM ANALYSER FOR MONITORING A SPECTRUM OF A FIBRE LINK
20170230111 · 2017-08-10 ·

A coherent optical spectrum analyser for monitoring a spectrum of a fibre link is provided. The coherent optical spectrum analyser comprises an input connectable to the fibre link, the input being connected to a first input of a coherent detector having at least two input, the first and a second input, and an output. The coherent optical spectrum analyser further comprises a local oscillator having an output connected to the second input of the coherent detector, wherein the output of the coherent detector is connected to a first input of a processing unit, the processing unit also being connected to an input of the local oscillator, the processing unit being configured for analysing information from the coherent detector. The local oscillator comprises a semiconductor laser tuned by temperature to a specific wavelength and swept by changing a bias current, the local oscillator being controlled by the processing unit.

OPTICAL MODULE

An optical module includes: a stem; a temperature control module; a carrier; a light emitting element fixed on a light emitting element fixing surface of the carrier, having a front surface and a rear surface opposite to each other, emitting signal light from a first emission point in the front surface, and emitting back light from a second emission point in the rear surface; a light receiving element fixed on the carrier by a light receiving element fixing surface; a lens cap; and a lens, wherein a reflecting surface is provided on the carrier, the light receiving element receives the back light reflected by the reflecting surface, and a center of a light receiving surface of the light receiving element is positioned between the front surface and the rear surface in an optical axis direction of the signal light.

INTEGRATED PASSIVE OPTICAL TAP AND OPTICAL SIGNAL TERMINATION
20170227725 · 2017-08-10 ·

An integrated pluggable optical tap module configured to be coupled to a host interface of a network equipment for tapping a signal of an optical transport link comprises a first, a second optical interface, and an active optical receiver. The optical pluggable module also includes a passive optical tap for splitting a signal received from the first optical interface and transmitting the signal on the second optical interface and a copy of the signal to the active optical receiver. The active optical receiver converts said signal to an electrical signal for transmission to the host interface.

OPTICAL ASSEMBLY AND OPTICAL MODULE

An optical assembly is provided. The optical assembly includes a light transmitting terminal, a light receiving terminal, an optical component located between the light transmitting terminal and the light receiving terminal, a collimating unit located between the optical component and the light transmitting terminal, and a focusing unit located between the optical component and the light receiving terminal. The collimating unit includes a first lens located between the optical component and the light transmitting terminal, and a field lens located between the first lens and the optical component and configured to absorb an alignment error between the light transmitting terminal and the first lens. The focusing unit includes a second lens located between the optical component and the light receiving terminal.