Including Pumping Patents (Class 398/92)
  • Patent number: 9020348
    Abstract: A light source package is disclosed for a Raman amplifier node having a primary optical fiber for carrying an optical signal and a secondary optical fiber for carrying the optical signal when the signal is rerouted from the primary optical fiber. The light source package includes a primary light source for emitting light into the primary optical fiber when the optical signal is carried by the primary optical fiber to induce Raman gain of the optical signal, and a secondary light source for emitting light into the secondary optical fiber when the optical signal is carried by the secondary optical fiber to induce Raman gain of the optical signal.
    Type: Grant
    Filed: February 21, 2012
    Date of Patent: April 28, 2015
    Assignee: II-VI Incorporated
    Inventors: Peter Wigley, Ian Peter McClean
  • Patent number: 8965201
    Abstract: An optical transmission device includes a first power monitor to monitor a first signal into which second signals with respectively different wavelengths are multiplexed so as to measure received power of the first signal; an amplifier to amplify the first signal, to generate a third signal; a driver to drive the amplifier; a demultiplexer to separate the third signal into fourth signals with the different respectively wavelengths; second power monitors each to monitor each of the fourth signals so as to measure received power of each of the fourth signals; a memory to store therein data related to gain in the amplifier, the data corresponding to each of wavelengths of the second signals, with respect to parameters which are the received power measured by the first power monitor and driving condition; and a processor to calculate power of each of the second signals.
    Type: Grant
    Filed: September 19, 2011
    Date of Patent: February 24, 2015
    Assignee: Fujitsu Optical Components Limited
    Inventors: Naoki Kuwata, Koji Otsubo
  • Patent number: 8903249
    Abstract: A method and apparatus for suppressing pump-mode optical beat interference noise in a Raman amplified fiber link of an optical network, wherein a wavelength of a laser beam generated by a first pump laser and a wavelength of a laser beam generated by a second pump laser of a pair of polarization multiplexed pump lasers are detuned with respect to each other to suppress the optical beat interference, OBI, noise in the Raman amplified fiber link of said optical network.
    Type: Grant
    Filed: August 31, 2012
    Date of Patent: December 2, 2014
    Assignee: ADVA Optical Networking SE
    Inventor: Dogan Atlas
  • Publication number: 20140308041
    Abstract: The invention relates to an optical network element, particularly an optical line terminal, OLT, for transmitting and receiving signals wire an optical network that comprises at least one optical fiber link and at least one further optical network element. The optical network element provides a primary optical pumping mean for emitting optical pump power to set at least one optical fiber link. The emitted optical pump power forms at least one gain medium outside the optical network element to provide optical pump power to the network for amplifying the singles to receive so that outside of the domain of the optical network element no electrical energy supply is needed.
    Type: Application
    Filed: June 25, 2014
    Publication date: October 16, 2014
    Applicant: ADVA OPTICAL NETWORKING SE
    Inventors: Klaus Grobe, Andreas Faerbert
  • Patent number: 8855494
    Abstract: A device includes a first band coupler, a first reconfigurable optical add-drop multiplexer (ROADM), a second ROADM, and a second band coupler. The first band coupler is configured to decouple a regular band and an extended band. The first ROADM is configured to add or drop one or more frequencies in the decoupled regular band to produce a first output in the regular band. The second ROADM is configured to add or drop one or more frequencies in the decoupled extended band to produce a second output in the extended band. The second band coupler is configured to couple the first output and the second output to produce a third output occupying the regular band and the extended band.
    Type: Grant
    Filed: July 24, 2012
    Date of Patent: October 7, 2014
    Assignee: Verizon Patent and Licensing Inc.
    Inventors: Glenn A. Wellbrock, Tiejun J. Xia
  • Patent number: 8571058
    Abstract: There is provided a terminal apparatus including a message monitor to gather transmission request information from each of first and second terminating apparatus, a dynamic bandwidth allocation unit to allocate each transmission band in accordance with the gathered transmission request information, determine a size and an alignment position of a time slot in accordance with the allocated transmission band, determine a transmission start time of the time slot, and allocate an extinction period so as to stop a transmission of an optical signal between a time slot of the optical signal with the second transmission rate and a time slot following the time slot of the optical signal with the second transmission rate, and a MAC controller to generate a control frame for notifying each of the first and second terminating apparatus of the transmission start time and the size of the time slot.
    Type: Grant
    Filed: November 18, 2010
    Date of Patent: October 29, 2013
    Assignee: Fujitsu Limited
    Inventors: Kyosuke Sone, George Ishikawa, Susumu Kinoshita
  • Patent number: 8447184
    Abstract: A system and method for Raman amplification of optical signals in a wavelength division multiplexing (WDM) optical transmission system includes transmitting optical signals within a transmission band via an optical waveguide between a transmitter and a receiver, Raman-amplifying the optical signals with at least one pump so as to distort an amplification profile of the Raman amplification within the transmission band, and rectifying the distorted amplification profile so as to compensate for the distortion.
    Type: Grant
    Filed: June 3, 2006
    Date of Patent: May 21, 2013
    Assignee: Deutsche Telekom AG
    Inventors: Matthias Gunkel, Ralph Leppla, Malte Schneiders, Sascha Vorbeck, Werner Weiershausen, Michael Bousonville
  • Patent number: 8428462
    Abstract: A device may include a component, a first switch, a repeater, and a second switch. The component may configure optical paths between ports. The component may comprise a first pair of optical ports connected to a first pair of optical fibers, and a second pair of optical ports connected to a second pair of optical fibers. The first switch may be configured to output one of two optical signals received by the first pair of optical ports from the first pair of optical fibers. The repeater may reshape or amplify the outputted optical signal. The second switch may be configured to direct the reshaped or amplified signal to one of the second pair of optical ports.
    Type: Grant
    Filed: June 18, 2009
    Date of Patent: April 23, 2013
    Assignee: Verizon Patent and Licensing Inc.
    Inventors: Glenn A. Wellbrock, Tiejun J. Xia
  • Patent number: 8406630
    Abstract: An optical transceiver unit for an optical WDM transmitting and receiving device is taught, with a transmitting unit to which a data signal can be fed to a specified channel input port of a multiplexer unit, wherein a separate channel wavelength is allocated to each channel input port, and the transmitting unit can be tuned with respect to optical carrier wavelength across a specified range of wavelengths. The transmitting unit is constructed so that, within the specified range of wavelengths, discrete wavelengths can be set that correspond to the channel wavelengths. In tuning mode, the controller unit can drive the transmitting unit so that the possible channel wavelengths are scanned through. The controller unit evaluates the reception signal fed to it from the receiving unit for whether abort criteria for tuning mode have been fulfilled or not, wherein the scanning process is continued until the abort criteria are fulfilled.
    Type: Grant
    Filed: April 28, 2010
    Date of Patent: March 26, 2013
    Assignee: ADVA Optical Networking SE
    Inventors: Henning Hinderthür, Oliver Bleck
  • Patent number: 8326154
    Abstract: A multiwavelength transmitter comprises several laser sources (1) each configured to generate light of a different wavelength and a first array waveguide grating (2) arranged to direct light from each of the laser sources (1) into a first waveguide. The transmitter further comprises several electroabsorption modulators (7) each arranged to modulate light at one of the wavelengths with a respective data signal and a second array waveguide grating (6) arranged to direct each of said different wavelengths of light from the first waveguide to a respective one of the modulators (7). The optical modulators (7) are reflective optical modulators and the second array waveguide grating (6) is arranged to direct the modulated light reflected from each of the optical modulators (7) back into the first waveguide. An optical circulator (5) is provided in the first waveguide to couple modulated light from the second array waveguide grating (6) into an output waveguide.
    Type: Grant
    Filed: November 16, 2007
    Date of Patent: December 4, 2012
    Assignee: Huawei Technologies Co., Ltd.
    Inventors: Alistair J. Poustie, Graeme D. Maxwell, Richard Wyatt, David W. Smith, David G. Moodie, Ian F. Lealman
  • Patent number: 8300905
    Abstract: The presently described technology provides a method for adaptive image processing. The image processing method includes determining an entrance exposure of an object, determining an exit exposure of the object, and determining one or more image processing parameters based at least in part on the entrance and exit exposures. The presently described technology also provides a method for adaptive image display. The image display method includes determining an entrance exposure of an object, determining an exit exposure of the object, and displaying an attenuation map based at least in part on the entrance and exit exposures.
    Type: Grant
    Filed: November 18, 2005
    Date of Patent: October 30, 2012
    Assignee: General Electric Company
    Inventor: Kadri N. Jabri
  • Patent number: 8275263
    Abstract: Technologies are described herein for a phase deviation multiplication apparatus that implements an in-place multiplication approach for multiplying the phase deviation of an input signal while maintaining the frequency of the carrier signal within a frequency band of operation. According to an embodiment, a multi-stage phase deviation multiplication apparatus includes a plurality of sequentially arranged phase deviation multipliers, including at least a first phase deviation multiplier and a last phase deviation multiplier. The phase deviation multipliers have respective predetermined phase deviation multiplication factors. The first phase deviation multiplier receives an input signal and the last phase deviation multiplier generates a last phase deviated signal. The last phase deviated signal has a phase deviation multiplication factor that is the product of the respective predetermined phase deviation multiplication factors of the plurality of phase deviation multipliers.
    Type: Grant
    Filed: June 26, 2009
    Date of Patent: September 25, 2012
    Assignee: The Boeing Company
    Inventor: James D. Franklin
  • Patent number: 8275264
    Abstract: According to an aspect of an embodiment, an apparatus for controlling optical waveform, comprises: an input port for inputting a signal light having a modulating frequency and a signal light power; a pump light generator generating pulsed pump light having a frequency higher than the modulating frequency of the signal light and a pulsed pump light power; a nonlinear optical medium for transmitting the signal light from the input port and the pulsed pump light, the nonlinear optical medium having a gain of the signal light based on a nonlinear optical effect; and a power adjustor for adjusting a gain of the signal light saturates in the nonlinear optical medium by a nonlinear optical effect by adjusting at least one of the signal light power or the pulsed pump light power.
    Type: Grant
    Filed: March 17, 2008
    Date of Patent: September 25, 2012
    Assignee: Fujitsu Limited
    Inventor: Shigeki Watanabe
  • Patent number: 8275269
    Abstract: The distributed Raman amplifier monitors an OSNR of each channel in a WDM light which has been propagated through a transmission path to be Raman amplified, and thereafter, is amplified by an optical amplifier in an optical repeating node; judges whether a monitor value of the OSNR is larger or smaller than a previously set target value thereof; and feedback controls a driving state of a pumping light source which supplies a Raman pumping light to the transmission path, based on the judgment result. The optical communication system comprises the above distributed Raman amplifier in each repeating span thereof, and performs a pumping light control of the distributed Raman amplifier corresponding to the repeating span selected based on the OSNR in each distributed Raman amplifier and the monitor result of span loss. As a result, it becomes possible to effectively improve the OSNR of each channel in the WDM light, and also, to reduce the power consumption.
    Type: Grant
    Filed: November 12, 2009
    Date of Patent: September 25, 2012
    Assignee: Fujitsu Limited
    Inventor: Miki Onaka
  • Publication number: 20120063771
    Abstract: A WDM optical transmission system includes a plurality of optical nodes optically coupled by a transmission line, a processor that is operative to calculate an amount of adjustment of a reception level capable of increasing an optical signal-to-noise ratio for each channel of the WDM light reaching the optical node positioned at a receiving end of the unit section based on information on amplification operation of the WDM light in at least one optical-amplification repeating node disposed on the optical transmission line in the unit section, and to adjust a power level corresponding to each channel of the WDM light transmitted on the transmission line from the optical node positioned at a transmission end of the unit section in accordance with a calculation result of the calculation.
    Type: Application
    Filed: September 12, 2011
    Publication date: March 15, 2012
    Applicant: FUJITSU LIMITED
    Inventors: Yasushi SUGAYA, Takehiro FUJITA, Satoru OKANO
  • Patent number: 8116628
    Abstract: The present invention relates to a wavelength-division multiplexed passive optical network (WDM-PON) which embodies wavelength-independence of wavelength-locked Fabry Perot-Laser Diode (F-P LD).
    Type: Grant
    Filed: July 11, 2006
    Date of Patent: February 14, 2012
    Assignee: Korea Advanced Institute of Science and Technology
    Inventors: Chang-Hee Lee, Ki-Man Choi
  • Patent number: 8073334
    Abstract: The present invention relates to an optical modulation method and optical modulation system of a wavelength locked Fabry Perot-Laser Diode (FP-LD) by injecting a broadband light source (BLS) using mutual injection of FP-LDs. More specifically, the present invention relates to a novel modulation technology which embodies a wavelength locked FP-LD capable of being used as an economic light source in an optical network based on a wavelength-division multiplexing passive optical network (WDM-PON).
    Type: Grant
    Filed: November 8, 2005
    Date of Patent: December 6, 2011
    Assignee: Korea Advanced Institute of Science and Technology
    Inventors: Chang-Hee Lee, Ki-Man Choi
  • Patent number: 8068735
    Abstract: An optically amplified wavelength division multiplexing network has the functionality to add/drop channels at the optical add/drop multiplexing (OADM) nodes. The OADM node includes a receiver amplifier, an OADM module, and a transmitter amplifier. Once the OADM node detects a loss of signal (LOS) due to a fiber cut or network element failure upstream, the receiver amplifier is kept in operation as a noise source. The output of the receiver amplifier is immediately raised by increasing pump power to compensate for the LOS. The noise power received at the transmitter amplifier from the receiver amplifier is substantially equal to the signal power expected before LOS. The transient effect of downstream optical amplifiers is therefore completely suppressed and the inter-channel stimulated Raman scattering (SRS) induced spectrum tilt does not change. After the noise power is raised, the receiver amplifier may be shut down at a speed much slower than the speed of downstream amplifier control circuitry.
    Type: Grant
    Filed: October 8, 2010
    Date of Patent: November 29, 2011
    Assignee: AT&T Intellectual Property II, LP
    Inventors: Joseph T. Stango, Guodong Zhang
  • Patent number: 8055127
    Abstract: A wavelength division multiplex optical ring network comprises optical fibre (1-4) arranged in a ring configuration and a plurality of doped fibre optical amplifiers (17-20) arranged in the ring. The spectral response in the ring is configured such in use amplified spontaneous emission (ASE) noise circulates around the ring in a lasing mode to clamp the gain of each doped fibre optical amplifier. Each optical amplifier (17-20) includes respective control means (28) which in use control the optical amplifier to produce a substantially constant output power or to maintain a substantially constant pump power. In the event of loss of the lasing peak, detection means switches the doped fibre optical amplifiers to a different mode of gain control, for example, a mode to produce constant gain at the value before the loss of the lasing peak. Optionally, after a predetermined delay, the optical amplifiers may revert to constant output power or pump power mode.
    Type: Grant
    Filed: November 22, 2004
    Date of Patent: November 8, 2011
    Assignee: Ericsson AB
    Inventors: Roberto Magri, Cornelius Furst
  • Patent number: 8027588
    Abstract: In one embodiment a system and method pertain to generating a pump from a received optical signal, inputting the generated pump into a phase-sensitive oscillator, and amplifying a carrier component of the pump to generate an optical carrier having the same phase and polarity of an optical carrier of the received optical signal.
    Type: Grant
    Filed: February 5, 2008
    Date of Patent: September 27, 2011
    Assignee: University of Central Florida Research Foundation, Inc.
    Inventors: Inwoong Kim, Guifang Li
  • Patent number: 7978976
    Abstract: An optical data transmission system having a hub, an optical router, and a plurality of optically pumped sources at a curb location, and a plurality of optical network units (ONUs). The ONUs generate and transmit respective data modulated pumping light to the curb location where it is received by the optically pumped sources, which convert it into the wavelength channels having predefined wavelength ranges assigned to respective ONUs. The optical router routes the wavelength channels for transmission to the hub.
    Type: Grant
    Filed: July 18, 2003
    Date of Patent: July 12, 2011
    Assignee: Schofield Technologies LLC
    Inventors: Olli-Pekka Pohjola, Ari Tervonen, Harri T. Jarvinen, Markku Oksanen
  • Patent number: 7941049
    Abstract: An optical transmission apparatus including an optical amplifier for providing a high-power optical amplifier on the receive side, in which a wavelength of pumping light for an optical amplifier on the transmission side is suitably shifted to be different from a wavelength of pumping light for an optical amplifier on the receive side, pumping optical power for the optical amplifier on the transmission side is not all consumed in a doped fiber in amplification process, and remnant pump light that was left surplus is added by a wavelength multiplex coupler to the pumping light for the optical amplifier on the receive side, thereby enhancing a gain and light output without an increase in output power of the pumping light used for the optical amplifier on the receive side.
    Type: Grant
    Filed: November 28, 2007
    Date of Patent: May 10, 2011
    Assignee: Hitachi, Ltd.
    Inventors: Hiroyuki Nakano, Hiroshi Takeuchi, Hiroshi Masuda
  • Patent number: 7920793
    Abstract: An inline repeater that uses a forward-pumped DRA that can use a pumping light source such as an FBG pumping light source and a fiber laser, which are the most commonly used, and an optical fiber communication system are realized.
    Type: Grant
    Filed: June 17, 2005
    Date of Patent: April 5, 2011
    Assignee: Nippon Telegraph and Telephone Corporation
    Inventors: Hiroji Masuda, Kenji Sato, Yutaka Miyamoto
  • Patent number: 7853149
    Abstract: Frequency peaking is used in the transmitter to improve link performance. In one example, frequency peaking improves the PIED or TWDP. The frequency peaking can result in pulse shapes that have more electrical energy in the receiver (and therefore higher received SNR) than uncompensated pulses. In addition, due to the response of typical fibers, boosting the high frequencies typically will flatten the received spectrum, which will improve the performance of the equalizer in an EDC receiver.
    Type: Grant
    Filed: March 7, 2006
    Date of Patent: December 14, 2010
    Assignee: ClariPhy Communications, Inc.
    Inventors: Thomas A. Lindsay, Norman L. Swenson
  • Patent number: 7844187
    Abstract: An optical communications circuit has a communications light signal source and a heat pump coupled to cool the signal source. A controller monitors a current and a temperature of the signal source, and regulates the temperature. The controller updates a heat pump control limit parameter for the heat pump, based on the monitored current. Other embodiments are also described and claimed.
    Type: Grant
    Filed: December 12, 2006
    Date of Patent: November 30, 2010
    Assignee: Intel Corporation
    Inventors: Craig Schulz, Chihhao Chen, David Hui
  • Patent number: 7826746
    Abstract: An optically amplified wavelength division multiplexing network has the functionality to add/drop channels at the optical add/drop multiplexing (OADM) nodes. The OADM node includes a receiver amplifier, an OADM module, and a transmitter amplifier. Once the OADM node detects a loss of signal (LOS) due to a fiber cut or network element failure upstream, the receiver amplifier is kept in operation as a noise source. The output of the receiver amplifier is immediately raised by increasing pump power to compensate for the LOS. The noise power received at the transmitter amplifier from the receiver amplifier is substantially equal to the signal power expected before LOS. The transient effect of downstream optical amplifiers is therefore completely suppressed and the inter-channel stimulated Raman scattering (SRS) induced spectrum tilt does not change. After the noise power is raised, the receiver amplifier may be shut down at a speed much slower than the speed of downstream amplifier control circuitry.
    Type: Grant
    Filed: October 28, 2008
    Date of Patent: November 2, 2010
    Assignee: AT&T Intellectual Property II, L.P.
    Inventors: Joseph T. Stango, Guodong Zhang
  • Publication number: 20100209110
    Abstract: A submarine optical repeater that shares optical pump power in multiple gain stages such that approximately the same wavelengths of optical pump is provided to each of the gain stages. Also, tilt control mechanism may adjust gain dependency on wavelength by adjusting the amount of optical pump power delivered to the optical gain stages. Residual optical pump power from both forward and backward Raman amplification may be used to power corresponding optically pumped amplifiers.
    Type: Application
    Filed: February 13, 2009
    Publication date: August 19, 2010
    Applicant: Xtera Communications, Inc.
    Inventors: Wayne S. Pelouch, Do-Il Chang
  • Patent number: 7773884
    Abstract: A method and apparatus for automatic shut-down and start-up of optical amplifiers in wavelength division multiplexed (WDM) optical networks include use of an optical channel monitor (OCM) to monitor loss and return of an input signal. By using the OCM to separately monitor the power level of each individual channel, it is possible to detect loss of all channels or return of a single channel even in the presence of ASE at the amplifier input. The OCM receives a fraction of the input power to the amplifier via an optical tap at the amplifier input, and provides an electrical output to a control unit corresponding to the optical power level of each individual WDM channel. Based on this electrical output, the control sends a shut-down or start-up signal to the pump unit within the amplifier.
    Type: Grant
    Filed: October 5, 2006
    Date of Patent: August 10, 2010
    Assignee: Red - C Optical Newworks Ltd.
    Inventors: Uri Ghera, David Menashe
  • Patent number: 7738791
    Abstract: For transmitting information on an optical fiber, a plurality of information carrier channels at different carrier frequencies and a plurality of filling channels are used. The filling channels are transmitted together with the information carrier channels along the fiber. The total optical power of the information carrier channels and the filling channels transmitted on the fiber is maintained constant by compensating every change of the optical power of the information carrier channels by an inverse change of the optical power of the filling channels. The change of the optical power of the filling channels is distributed to the individual filling channels such that a minimum displacement of the center of gravity of the common spectrum of information carrier channels and filling channels results.
    Type: Grant
    Filed: January 21, 2004
    Date of Patent: June 15, 2010
    Assignee: Ericsson, AB
    Inventor: Cornelius Furst
  • Patent number: 7729585
    Abstract: A light source apparatus with modulation function has a wavelength conversion module (75) composed of a nonlinear optical material with a structure having a nonlinear constant modulated periodically. It outputs a difference frequency or sum frequency produced by multiplexing pumping light from semiconductor laser light sources (71) and (72) with different wavelengths through a WDM coupler (74) and by launching the multiplexed light into the optical waveguide. The semiconductor laser light source (72) includes a diffraction grating. The semiconductor laser light source (71) includes a section for modulating output light emitted from its semiconductor laser, and is connected to an external FBG (73) which has a reflection band narrower than a resonance wavelength spacing determined by the device length of the semiconductor laser. The FBG (73) is supplied with the modulated output.
    Type: Grant
    Filed: January 17, 2006
    Date of Patent: June 1, 2010
    Assignees: NipponTelegraph and Telephone Corporation, NTT Electronics Corporation
    Inventors: Katsuaki Magari, Tsutomu Yanagawa, Yoshiki Nishida, Hiroyasu Mawatari, Osamu Tadanaga, Masaki Asobe, Hiroyuki Suzuki, Hiroshi Miyazawa, Junji Yumoto
  • Patent number: 7725032
    Abstract: An optical transmission apparatus includes an optical add drop multiplexer (OADM) that adds/drops an optical signal to/from a transmission path. The optical transmission apparatus further includes a pump light multiplexer and a dispersion compensation fiber that are located downstream of the OADM on the transmission path. The optical transmission apparatus is configured to house a pump light source connectable to the pump light multiplexer to Raman amplify an optical signal in the dispersion compensation fiber.
    Type: Grant
    Filed: December 29, 2005
    Date of Patent: May 25, 2010
    Assignee: Fujitsu Limited
    Inventors: Miki Onaka, Yasushi Sugaya, Hiroki Ooi
  • Publication number: 20090324233
    Abstract: An ultra-long fiber-optic transmission system is configured in accordance with the current telecom standards and particularly advantageous for transmission data at a long distance which may exceed 400 km between adjacent nodes. The disclosed system has at least one intermediary amplifying node provided with a supervisory optical channel (SOC) which comprises a transponder operative to select the direction in which a supervisory channel signal (SCS), carrying information about the fiber break and malfunction of WDM channels, is transmitted along the SOC. The transponder further includes a receiver operative to measure the power of incoming and a Raman controller coupled to the receiver and to either turn or turn off a pump of Raman amplifier based on determination of whether the measured power of the SCS is lower than or at least equal to a reference value. The transponder is further configured with a transmitter configured as a fiber laser which operates in at least two modes.
    Type: Application
    Filed: June 26, 2008
    Publication date: December 31, 2009
    Inventors: Igor Samartsev, Vladimir Antonenko
  • Publication number: 20090324234
    Abstract: Provided is an optical transmission system using Raman optical amplification, which is configured in a WDM-PON topology where a signal light between an optical line terminal 11 and each of optical network units 13-1, . . . , 13-N is multi/demultiplexed at a WDM 12. The optical line terminal 11 supplies continuous lights having wavelengths ?u1, . . . , ?uN to the optical network units 13-1, . . ., 13-N through an optical fiber from the optical line terminal 11. The continuous lights are used for an uplink signal. In addition, the optical line terminal 11 outputs a pumping light having a wavelength ?p which is used to excite lights of the continuous lights, to the optical fiber from the optical line terminal 11. Since intensities of the continuous lights are amplified through the Raman optical amplification, it is possible to compensate for insufficiency of intensities of uplink signal lights.
    Type: Application
    Filed: June 11, 2009
    Publication date: December 31, 2009
    Applicants: FUJIKURA LTD., SHIBAURA INSTITUTE OF TECHNOLOGY
    Inventor: Norio Kashima
  • Patent number: 7593647
    Abstract: An optical transmitter has a resonance wavelength characteristic that varies with the refractive index of the optical transmitter. The optical transmitter receives a narrow band injected wavelength signal from an incoherent light source. The controller substantially matches a resonant wavelength of the optical transmitter to the wavelength of the injected wavelength signal by changing the refractive index of the optical transmitter to substantially match the resonant wavelength of the optical transmitter and the wavelength of the injected wavelength signal. A detector measures a parameter of the optical transmitter to provide a feedback signal to a controller to determine when the resonant wavelength of the optical transmitter and the wavelength of the injected wavelength signal are substantially matched.
    Type: Grant
    Filed: April 22, 2003
    Date of Patent: September 22, 2009
    Assignee: Novera Optics, Inc.
    Inventors: Chang-Hee Lee, Kwang-Uk Chu, Bong-Soo Kim
  • Publication number: 20090196619
    Abstract: In one embodiment a system and method pertain to generating a pump from a received optical signal, inputting the generated pump into a phase-sensitive oscillator, and amplifying a carrier component of the pump to generate an optical carrier having the same phase and polarity of an optical carrier of the received optical signal.
    Type: Application
    Filed: February 5, 2008
    Publication date: August 6, 2009
    Applicant: University of Central Florida Research Foundation, Inc.
    Inventors: Inwoong Kim, Guifang Li
  • Patent number: 7555215
    Abstract: A dual structure for a multiplexing section extended to an OSU is obtained without adding a dynamic function, such as an optical switch, to a W-MULDEM. The W-MULDEM of an optical wavelength division multiplexing access system divides, among ports corresponding to the individual ONUs, downstream optical signals having wavelengths ?d1 to ?dn, which are received along a current-use optical fiber, or downstream optical signals having wavelengths ?d1+?? to ?dn+??, which are received along a redundant optical fiber. The W-MULDEM also multiplexes, for the port that corresponds to the current-use optical fiber or the redundant optical fiber, upstream optical signals having wavelengths ?u1 to ?un or wavelengths ?u1+?? to ?un+??, which are received along optical fibers corresponding to the ONUs. A wavelength difference between the downstream optical signal and the upstream optical signal that are consonant with each ONU is defined as an integer times the FSR of an AWG.
    Type: Grant
    Filed: May 28, 2004
    Date of Patent: June 30, 2009
    Assignee: Nippon Telegraph and Telephone Corporation
    Inventors: Hirotaka Nakamura, Junichi Kani, Hiroo Suzuki, Mitsuhiro Teshima, Ukyo Yamaguchi, Hidetaka Onishi, Katsumi Iwatsuki
  • Publication number: 20090142061
    Abstract: A wavelength division multiplexing (WDM) fiber optic communication system is operative to transmit WDM signals between multiple nodes. Each of the nodes has a booster EDFA, and in-band (IB) and out-of-band (OB) supervisory channels operative to monitor the integrity of a transmission link by generating and detecting respective in-band and out-of-band control signals. The booster EDFA is operative to receive the multiplexed WDM and IB signals and generate an output signal carried by a plurality of fiber-optic cables between the nodes. The booster EDFA is operative to switch from an automatic gain control regime upon detecting of at least one of the IB and OB signals to an automatic power control regime upon loss of both IB and OB signals. The output signal of the EDFA in the AGC regime has a high power sufficient for being transmitted the WDM and IB signals, and has a low power in the APC regime sufficient for transmitting only the IB signal between the nodes.
    Type: Application
    Filed: December 3, 2007
    Publication date: June 4, 2009
    Applicant: IPG PHOTONICS CORPORATION
    Inventors: George BuAbbud, Cristiano Mornatta, Peter Reeves-Hall, Igor Samartsev
  • Patent number: 7522842
    Abstract: A commercially viable All-Raman system, is implemented by removing the dispersion compensating Fiber (DCF) and two stage amplifier at each span, and including a transmission path dispersion compensator which performs dispersion compensation on a transmission path basis. For example, by pre-compensating for the accumulated dispersion in the electrical domain at the transmitter, the gain of the Raman pumps at each span amplifier need only compensate for the loss within the span, without needing to compensate for the loss of a DCF. In addition there is provided a low-cost method for implementing a bidirectional Service Channel by modulating/demodulating low-rate data on the Raman pump. For example, a Raman amplifier can include an information source for producing a service channel signal which includes information to be communicated; and a modulator for modulating the Raman pump signal with the service channel signal.
    Type: Grant
    Filed: September 30, 2005
    Date of Patent: April 21, 2009
    Assignee: Nortel Networks Limited
    Inventors: John McNicol, Kuang Tsan Wu
  • Patent number: 7471900
    Abstract: Provided are a passive optical network system and a method of transmitting a broadcasting signal in the same system. A central office (CO) generates a broadcasting signal and a downstream optical data signal using a coding method guaranteeing a run-length, multiplexes the downstream optical data signal and the broadcasting signal, and transmits the multiplexed downstream optical data signal and broadcasting signal. A remote node (RN) transmits the multiplexed downstream optical data signal and broadcasting signal received from the CO to one or more optical network units (ONUs). A gain medium, which is located on a transmission line between the CO and the RN, amplifies the broadcasting signal using the downstream optical data signal as a pump light source. Accordingly, a high gain can be obtained by amplifying the broadcasting signal using the gain medium located on the transmission line without a separate pump light source.
    Type: Grant
    Filed: November 22, 2005
    Date of Patent: December 30, 2008
    Assignee: Electronics and Telecommunications Research Institute
    Inventors: Moon Seop Lee, Byung Tak Lee, Hyun Seo Kang, Jai Sang Koh
  • Patent number: 7457495
    Abstract: A method of filtering optical signals (300) utilizing an optical fiber (100A-100D). The method of filtering optical signals (300) includes the steps (304) selecting an optical fiber (100A-100D) coupled to a source of optical signals, (306) disposing a core (102) in the bore (103) of the optical fiber (100A-100D) formed of a core material (105), (308) selecting a core material (105) to provide a waveguide within the optical fiber (100A-100D), (310) disposing an optical grating (114-1) in a first optical cladding layer (104) disposed about the core (102), (312) propagating an optical signal within the optical fiber (100A-100D) guided substantially within the core (102), (314) modifying a propagation path of selected wavelengths comprising said optical signal with the optical grating (114-1), and (316) determining selected wavelengths for which the propagation path is modified by selectively varying an energetic stimulus to the core (102) thereby tuning the waveguide.
    Type: Grant
    Filed: October 5, 2006
    Date of Patent: November 25, 2008
    Assignee: Harris Corporation
    Inventors: Timothy E. Dimmick, Kevin H. Smith, Douglas J. Markos
  • Patent number: 7444077
    Abstract: An optical transmission system includes an optical signal transmitter to output optical signal, a monitoring light transmitter to generate monitoring light, an optical multiplexer to output a multiplexed signal light by multiplexing the optical signal and monitoring light, an optical relay transmission path to amplify the multiplexed signal light by using a Raman amplification effect, an optical demultiplexer to demultiplex the multiplexed signal light, a monitoring light receiver to receive the monitoring light output from the optical demultiplexer, and a pumping light source stopping device to continuously monitor a transmission state of the monitoring light and, when the transmission of the monitoring light is interrupted, to stop emission of the pumping light from the pumping light source to be used for distributed Raman amplification.
    Type: Grant
    Filed: June 23, 2005
    Date of Patent: October 28, 2008
    Assignee: NEC Corporation
    Inventor: Hideki Okuno
  • Patent number: 7444078
    Abstract: An optically amplified wavelength division multiplexing network has the functionality to add/drop channels at the optical add/drop multiplexing (OADM) nodes. The OADM node includes a receiver amplifier, an OADM module, and a transmitter amplifier. Once the OADM node detects a loss of signal (LOS) due to a fiber cut or network element failure upstream, the receiver amplifier is kept in operation as a noise source. The output of the receiver amplifier is immediately raised by increasing pump power to compensate for the LOS. The noise power received at the transmitter amplifier from the receiver amplifier is substantially equal to the signal power expected before LOS. The transient effect of downstream optical amplifiers is therefore completely suppressed and the inter-channel stimulated Raman scattering (SRS) induced spectrum tilt does not change. After the noise power is raised, the receiver amplifier may be shut down at a speed much slower than the speed of downstream amplifier control circuitry.
    Type: Grant
    Filed: March 17, 2004
    Date of Patent: October 28, 2008
    Assignee: AT&T Intellectual Property II, L.P.
    Inventors: Joseph T. Stango, Guodong Zhang
  • Publication number: 20080232808
    Abstract: According to an aspect of an embodiment, an apparatus for controlling optical waveform, comprises: an input port for inputting a signal light having a modulating frequency and a signal light power; a pump light generator generating pulsed pump light having a frequency higher than the modulating frequency of the signal light and a pulsed pump light power; a nonlinear optical medium for transmitting the signal light from the input port and the pulsed pump light, the nonlinear optical medium having a gain of the signal light based on a nonlinear optical effect; and a power adjustor for adjusting a gain of the signal light saturates in the nonlinear optical medium by a nonlinear optical effect by adjusting at least one of the signal light power or the pulsed pump light power.
    Type: Application
    Filed: March 17, 2008
    Publication date: September 25, 2008
    Inventor: Shigeki Watanabe
  • Patent number: 7418204
    Abstract: A passive optical network system is disclosed that simultaneously provides both broadcasting service and data service. The passive optical network (PON) amplifies the optical signals for the broadcasting service in an optical amplifier media of the local office by pumping optical signals generated from the central office and provides the optical signals for the broadcasting service to the subscriber terminals. Therefore, the present invention can simultaneously provide broadcasting service and data service for more subscribers without reducing the number of subscribers to the PON. Also, the present invention uses a plurality of optical sources for the data service and the broadcasting service and receives the optical signals generated from the optical sources by using a plurality of optical receivers in the subscriber terminals, and thus can provide a greater amount and variety of data services and broadcasting services.
    Type: Grant
    Filed: June 20, 2003
    Date of Patent: August 26, 2008
    Assignee: Samsung Electronics Co., Ltd.
    Inventors: Dae-Kwang Jung, Byung-Chang Kang, Yun-Je Oh, Tae-Sung Park
  • Publication number: 20080193136
    Abstract: An inline repeater that uses a forward-pumped DRA that can use a pumping light source such as an FBG pumping light source and a fiber laser, which are the most commonly used, and an optical fiber communication system are realized.
    Type: Application
    Filed: June 17, 2005
    Publication date: August 14, 2008
    Applicant: Nippon Telegraph and Telephone Corporation
    Inventors: Hiroji Masuda, Kenji Sato, Yutaka Miyamoto
  • Patent number: 7408701
    Abstract: A multi-frequency light producing method and apparatus multiplies the number of optical channels present in an incident wavelength division multiplexed (WDM) signal light source by four-wave mixing (FWM) the WDM signal with at least one pump lightwave at least one time. By FWM the WDM light and a pump lightwave multiple times, wherein each FWM process is executed with a pump lightwave having a different frequency, either in series or parallel, the number of optical channels produced as a result of FWM effectively increases the number of optical channels present in addition to those from the WDM signal. The light producing method and apparatus can be employed in a telecommunications system as a an inexpensive light source producing a plurality of optical frequencies.
    Type: Grant
    Filed: April 20, 2006
    Date of Patent: August 5, 2008
    Assignee: The Furukawa Electric Co., Ltd.
    Inventors: Osamu Aso, Shunichi Matushita, Misao Sakano, Masateru Tadakuma
  • Patent number: 7398021
    Abstract: An optical transmitter including a multi-lambda source to output injection light consisting of a plurality of injection wavelengths in channels, a circulator having a first port, a second port, and a third port, the circulator receiving the injection light at the first port, and outputting the received injection light to the second port, and further receiving signal light at the second port, and outputting the received signal light to the third port, an arrayed waveguide grating having a multiplexing port connected to the second port of the circulator, and a plurality of demultiplexing ports, spectrum-slicing injection light received from the circulator at the multiplexing port into a plurality of injection channels, and outputting the injection channels to the demultiplexing ports and further receiving and multiplexing a plurality of signal channels at the demultiplexing ports, into a signal light, and outputting the signal light to the multiplexing port, and a plurality of reflective semiconductor optical a
    Type: Grant
    Filed: February 7, 2005
    Date of Patent: July 8, 2008
    Assignee: Samsung Electronics Co., Ltd.
    Inventors: Hong-Seok Shin, Hyun-Cheol Shin, Seong-Taek Hwang, Dae-Kwang Jung
  • Patent number: 7394995
    Abstract: An optical receiver is disclosed comprising an erbium-doped fiber amplifier (EDFA) that is coupled to a photodiode and transimpedance amplifier without filtering output light signal in the EDFA. Optionally, a clock/data regenerator can be coupled to the electrical output of the transimpedance amplifier for compensating for noise distortion and timing jitter for affecting the control loop feeding back for adjusting the electrical current into a pump laser of an optical pre-amplifier. Furthermore, the optical receiver of the present invention can also be implemented in a transponder.
    Type: Grant
    Filed: April 1, 2004
    Date of Patent: July 1, 2008
    Assignee: Avanex Corporation
    Inventors: Emmanuel Audic, Franck Deblock, Elisabeth Leclerc, Gilles Sorhouetgary, Alexandre Sherr, Henri Jean Egger
  • Publication number: 20080145055
    Abstract: A method of communicating an optical signal includes generating an optical signal at a bit rate of at least 2.5 Gb/s. The optical signal including at least thirty optical channels. In one particular embodiment, at least some of the thirty optical channels reside within a 1567-1620 nanometer wavelength range. The method also includes receiving the optical signal at a ROPA that includes a rare-earth doped optical fiber. In addition, the method includes introducing a pump signal to a communication span of the unrepeatered optical communication system. The pump signal operable to amplify the optical signal by Raman amplification within the communication span and including at least one pump signal wavelength operable to excite the rare-earth doped fiber. The method further includes receiving the optical signal after the optical signal has traversed at least 200 kilometers of the communication span.
    Type: Application
    Filed: February 15, 2008
    Publication date: June 19, 2008
    Applicant: Xtera Communications, Inc.
    Inventors: Philippe A. Perrier, Sergey P. Burtsev, Do Il Chang, Andrzej S. Kaminski, Andrej B. Puc
  • Publication number: 20080131121
    Abstract: A wavelength division multiplex optical ring network comprises optical fibre (1-4) arranged in a ring configuration and a plurality of doped fibre optical amplifiers (17-20) arranged in the ring. The spectral response in the ring is configured such in use amplified spontaneous emission (ASE) noise circulates around the ring in a lasing mode to clamp the gain of each doped fibre optical amplifier. Each optical amplifier (17-20) includes respective control means (28) which in use control the optical amplifier to produce a substantially constant output power or to maintain a substantially constant pump power. In the event of loss of the lasing peak, detection means switches the doped fibre optical amplifiers to a different mode of gain control, for example, a mode to produce constant gain at the value before the loss of the lasing peak. Optionally, after a predetermined delay, the optical amplifiers may revert to constant output power or pump power mode.
    Type: Application
    Filed: November 22, 2004
    Publication date: June 5, 2008
    Applicant: ERICSSON AB
    Inventors: Roberto Magri, Cornilius Furst