Control architecture and method for optical amplifiers

Optical: systems and elements – Optical amplifier – Correction of deleterious effects

Reexamination Certificate

Rate now

  [ 0.00 ] – not rated yet Voters 0   Comments 0

Details

C359S199200, C359S341300, C359S341410

Reexamination Certificate

active

06690506

ABSTRACT:

FIELD OF THE INVENTION
The present invention relates generally to optical amplifiers and more specifically to a controller for an optical amplifier and its method of use.
BACKGROUND OF THE INVENTION
The increasing demand for high-speed voice and data communications has led to an increased reliance on optical communications, especially optical fiber communications. The use of optical signals as a vehicle to carry channeled information at high speed is preferred in many instances to carrying channeled information at other electromagnetic wavelengths/frequencies in media such as microwave transmission lines, coaxial cable lines, and twisted copper pair transmission lines. Advantages of optical media include higher channel capacities (bandwidth), greater immunity to electromagnetic interference, and lower propagation loss. In fact, it is common for high-speed optical systems to have signal rates in the range of approximately several megabits per second (Mbit/s) to approximately several tens of gigabits per second (Gbit/s). However, as the communication capacity is further increased to transmit greater amounts of information at greater rates over fiber, maintaining signal integrity can be challenging.
The emergence of optical communications as a useful vehicle for short and long-haul data and voice communications has led to the development of a variety of optical amplifiers. One type of optical amplifier is the rare-earth element doped optical amplifier (rare-earth doped amplifier). One such rare-earth doped amplifier is based on erbium-doped silica fiber. The erbium doped fiber amplifier (EDFA) has gained great acceptance in the telecommunications industry. The erbium-doped fiber amplifier has a number of characteristics which make it an excellent amplifier for optical communications. These characteristics include polarization-independent gain, low interchannel cross-talk, wide optical bandwidth, and low-noise generation. In brief, the EDFA offers a useful way to compensate for signal propagation losses along high-speed fiber-optic links.
Erbium-doped fiber amplifiers (EDFA) are useful in a variety of optical transmission systems. One type of optical transmission system relies on multiplexing. One particular type of multiplexing is wavelength division multiplexing (WDM). In WDM, several information streams (voice and/or data streams) share a particular transmission medium, such as an optical fiber. Each high-speed information channel is transmitted at a designated wavelength along the optical fiber. At the receiver end, the interleaved channels are separated (de-multiplexed) and may be further processed by electronics. (By convention, when the number of channels transmitted by such a multiplexing technique exceeds approximately four, the technique is referred to dense WDM or DWDM). As WDM/DWDM gains popularity, optical amplifiers may be required to give requisite signal boost to preserve signal quality, particularly in long-haul applications.
Typically, optical amplifiers used in WDM/DWDM based systems must satisfy certain requirements. One of the requirements is that the gain of the amplifier over the operating spectrum is substantially flat with low gain tilt and a low noise figure. This requirement is often referred to as gain flatness. As can be appreciated, gain flatness is required to avoid the dominance of the power of one or more channels over the others.
Another requirement of the optical amplifier is good transient characteristics. This requirement is related to the sensitivity of the surviving signals present in the optical network to the adding or dropping of some other signals (channels). When additional channels are added, the total optical power may experience a large upward transient spike that may last up to a millisecond causing a temporary increase in the bit-error-rate (BER). If the channels are dropped, the total optical power may experience a large downward transient spike. This may also increase the BER due to effects such as receiver overload or some nonlinear phenomena, such as stimulated Brillouin scattering. In addition to the above-described affects, the amplifier may exhibit a permanent shift in gain or an unwanted power offset.
To fulfill the above illustrative requirements, it is necessary to control the optical amplifier during operation. While control mechanisms and schemes have been incorporated in conventional optical amplifiers, they have shortcomings in deployed systems. To this end, conventional controllers lack the capability to control fast gain and output power transients. Control of these transients is useful in order to avoid cross-talk between the channels caused by the adding or dropping of channels.
Accordingly, what is needed is a controller and its method of use which overcomes the drawbacks of conventional controllers described above.
SUMMARY OF THE INVENTION
According to an illustrative embodiment of the present invention, a method for controlling an optical amplifier is disclosed. The illustrative method includes receiving a portion of an input signal to the optical amplifier; receiving a portion of an output signal from a first amplification stage; receiving a portion of an output signal of the optical amplifier; and adjusting the first amplification stage and a second amplification stage based on the received portions to substantially control the optical amplifier.
According to another illustrative embodiment of the present invention, an optical amplifier includes a controller which receives a portion of an output signal from a first amplification stage and a portion of an output signal from the optical amplifier. The controller adjusts the first amplification stage and a second amplification stage based on the received portions of the signals.
DEFINED TERM
As used herein, “signal” means the optical signal plus any noise present. For example, “input signal” means the input optical signal plus any noise present.


REFERENCES:
patent: 5117196 (1992-05-01), Epworth et al.
patent: 5664131 (1997-09-01), Sugiya
patent: 5737118 (1998-04-01), Sugaya et al.
patent: 5900968 (1999-05-01), Srivastava et al.
patent: 5963361 (1999-10-01), Taylor et al.
patent: 5966237 (1999-10-01), Sugaya et al.
patent: 5986799 (1999-11-01), Itou et al.
patent: 6023366 (2000-02-01), Kinoshita
patent: 6025947 (2000-02-01), Sugaya et al.
patent: 6038063 (2000-03-01), Tsuda et al.
patent: 6108123 (2000-08-01), Kinoshita
patent: 6111688 (2000-08-01), Kobayashi et al.
patent: 6151158 (2000-11-01), Takeda et al.
patent: 6163399 (2000-12-01), Berg
patent: 6166850 (2000-12-01), Roberts et al.
patent: 6198571 (2001-03-01), Yang
patent: 6201636 (2001-03-01), Noda
patent: 6215584 (2001-04-01), Yang et al.
patent: 6259553 (2001-07-01), Kinoshita
patent: 6275330 (2001-08-01), Izumi
patent: 6282017 (2001-08-01), Kinoshita
patent: 6288836 (2001-09-01), Kawasaki et al.
patent: 6373625 (2002-04-01), Kobayashi et al.
patent: 6441955 (2002-08-01), Takatsu et al.
patent: 6625433 (2003-09-01), Poirear et al.
patent: 2002/0171917 (2002-11-01), Lelic et al.
patent: 9-214034 (1997-08-01), None
Haruo Okamura; “Automatic Optical Loss Compensation with Erbium-Doped Fiber Amplifier”; Journal of Lightwave Technology, vol. 10, No. 8, Aug. 1992; pp. 1110-1116; IEEE 1992.
Dwight H. Richards, Janel L. Jackel, Senior Member, IEEE, and Mohamed A. Ali; A Theoretical Investigation of Dynamic All-Optical Automatic Gain Control in Multichannel EDFA's and EDFA Cascades; IEEE Journal of Selected Topics in Quantum Electronics, vol. 3, No. 4, Aug. 1997; pp. 1027-1036; IEEE 1997.
A. K. Srivastava, J.L. Zyskind, Y. Sun, J. Ellson, G. Newsome, R. W. Tkach, A. R. Chraplyvy, J. W. Sulhoff, T. A. Strasser, C. Wolf, and J. R. Pedrazzani; “Fast-Link Control Protection of Survising Channels in Multiwavelength Optical Networks”; IEEE Photonics Technology Letters, vol. 9, No. 12, Dec. 1997; pp. 1667-1669.
Seo Yeon Park, Hyang Kyun Kim, Gap Yeol Lyu, Sun Mo Kang, and Sang-Yung Shin; “Dynamic Gain and Output Power Control in a Gain-Flattened Erbium-Doped Fiber Amplifier”; IEEE Photonics Technology Letters, v

LandOfFree

Say what you really think

Search LandOfFree.com for the USA inventors and patents. Rate them and share your experience with other people.

Rating

Control architecture and method for optical amplifiers does not yet have a rating. At this time, there are no reviews or comments for this patent.

If you have personal experience with Control architecture and method for optical amplifiers, we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Control architecture and method for optical amplifiers will most certainly appreciate the feedback.

Rate now

     

Profile ID: LFUS-PAI-O-3293303

  Search
All data on this website is collected from public sources. Our data reflects the most accurate information available at the time of publication.