IP Library Granted Patent US 7,061,668
Granted Patent B2
US 7,061,668 · App. 10/393,563 · Granted Jun 13, 2006

Fast optical amplifier control circuit

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,061,668
App. No.
10/393,563
Granted
Jun 13, 2006
Kind
B2
Abstract

A gain control circuit for an optical amplifier includes a feed-forward path which enables the pump power of an excitation laser to be controlled based on input power of the amplifier. The feed-forward path is complemented by a feed-back loop which includes: a subtractor that outputs an error signal based on a difference between scaled input power and output power of the optical amplifier; a regulator which generates a bias and correction signal that reduces the error signal to zero; and an adder which adds the bias and correction signal to the input power signal of the feed-forward path. The output of the adder forms a pump control signal which maintains a desired gain of the amplifier irrespective of fluctuations in input power and channel load changes, as well as other influences. Through the use of purely electronic control, the control circuit controls the gain of the amplifier with substantially less pump power than conventional circuits utilizing other known methods. Further, the feed-forward path eliminates gain sag which degrades the performance of many conventional amplifier circuits. Preferably, the control circuit is dynamically adapted to the non-linear dynamic behavior of the optical amplifier. This will advantageously result in a substantial improvement in speed of the amplifier control.

Claims (62)

1. A gain control circuit for an optical amplifier, comprising:

a subtractor which outputs an error signal based on a difference between an input power signal and an output power signal of the optical amplifier;

a regulator which generates a bias and correction signal that reduces the error signal to at least substantially zero, the regulator including:

an amplification signal path which amplifies the error signal by a desired amplification factor; the amplification signal path including:

a differentiator which differentiates the error signal;

a multiplier which multiplies the differentiated error signal by said desired amplification factor; and

an integrator which integrates the multiplied signal from the multiplier;

an integration signal path which integrates the error signal; and

an adder circuit which adds the amplified error signal from the amplification path and the integrated error signal from the integration path to form the bias and correction signal; and

an adder which adds the input power signal and the bias and correction signal to form a pump control signal which maintains a desired gain of the optical amplifier.

2. A gain control circuit for an optical amplifier, comprising:

a subtractor which outputs an error signal based on a difference between an input power signal and an output power signal of the optical amplifier;

a regulator which generates a bias and correction signal that reduces the error signal to at least substantially zero, the regulator including;

an amplification signal path which amplifies the error signal by a desired amplification factor, the desired amplification factor being derived from the input power signal;

an integration signal oath which integrates the error signal;

an adder circuit which adds the amplified error signal from the amplification path and the integrated error signal from the integration path to form the bias and correction signal; and

an adder which adds the input power signal and the bias and correction signal to form a pump control signal which maintains a desired gain of the optical amplifier.

3. A gain control circuit for an optical amplifier, comprising:

a subtractor which outputs an error signal based on a difference between an input power signal and an output power signal of the optical amplifier;

a regulator which generates a bias and correction signal that reduces the error signal to at least substantially zero;

an adder which adds the input power signal and the bias and correction signal to form a pump control signal which maintains a desired gain of the optical amplifier;

a non-linear amplifier which amplifies the input power signal prior to being input into said adder; and

an amplifier of reverse linearity which amplifies the pump control signal prior being input into the optical amplifier.

4. A gain control circuit for an optical amplifier, comprising:

a subtractor which outputs an error signal based on a difference between an input power signal and an output power signal of the optical amplifier;

a regulator which generates a bias and correction signal that reduces the error signal to at least substantially zero;

an adder which adds the input power signal and the bias and correction signal to form a pump control signal which maintains a desired gain of the optical amplifier; and

a correction unit which removes a bias derived from optical noise.

5. A gain control circuit for an optical amplifier, comprising:

a subtractor which outputs an error signal based on a difference between an input power signal and an output power signal of the optical amplifier;

a regulator which generates a bias and correction signal that reduces the error signal to at least substantially zero; the regulator including

a circuit which differentiates the error signal;

an adder which adds the error signal with the differentiated error signal;

a multiplier which amplifies an output of the adder by a desired amplification factor; and

an integrator which integrates the amplified signal output from the multiplier to form the bias and correction signal;

an adder which adds the input power signal and the bias and correction signal to form a pump control signal which maintains a desired gain of the optical amplifier.

6. A gain control circuit for an optical amplifier, comprising:

a subtractor which outputs an error signal based on a difference between an input power signal and an output power signal of the optical amplifier;

a regulator which generates a bias and correction signal that reduces the error signal to at least substantially zero, the regulator including

a multiplier which amplifies the error signal by a desired amplification factor;

an integrator which integrates an output of the multiplier; and

an adder which adds the output of the multiplier with the integrated signal output from the integrator to form the bias and correction signal; and

an adder which adds the input power signal and the bias and correction signal to form a pump control signal which maintains a desired gain of the optical amplifier.

7. A method for controlling an optical amplifier, comprising:

generating an error signal proportional to a difference between an input power signal and an output power signal of the optical amplifier;

deriving a bias and correction signal which reduces the error signal to at least substantially zero; the deriving step including:

amplifying the error signal by an amplification factor, the amplification including

calculating a derivative of the error signal;

multiplying the derivative of the error signal by said predetermined amplification factor; and

integrating the multiplied derivative of the error signal;

integrating the error signal;

adding the amplified error signal and the integrated error signal to form the bias and correction signal;

adding the bias signal to the input signal power to form a pump control signal; and

controlling pump power of the optical amplifier based on said pump control signal.

8. A method for controlling an optical amplifier, comprising:

generating an error signal proportional to a difference between an input power signal and an output power signal of the optical amplifier;

deriving a bias and correction signal which reduces the error signal to at least substantially zero; the deriving step including

amplifying the error signal by an amplification factor, the amplification factor being derived from the input power signal

integrating the error signal;

adding the amplified error signal and the integrated error signal to form the bias and correction signal;

adding the bias signal to the input signal power to form pump control signal; and

controlling pump power of the optical amplifier based on said pump control signal.

Assignments (6)
RELEASE OF SECURITY INTEREST Recorded Oct 26, 2018
From: CERBERUS BUSINESS FINANCE, LLC
To: XIEON NETWORKS S.A.R.L.
Reel/Frame 047335/0952 →
SECURITY INTEREST Recorded Dec 16, 2014
From: XIEON NETWORKS S.A R.L
To: CERBERUS BUSINESS FINANCE, LLC, AS COLLATERAL AGENT
Reel/Frame 034639/0201 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 25, 2013
From: NOKIA SIEMENS NETWORKS GMBH & CO. KG
To: XIEON NETWORKS S.A.R.L.
Reel/Frame 031719/0220 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2008
From: SIEMENS COMMUNICATIONS, INC.
To: NOKIA SIEMENS NETWORKS GMBH & CO. KG
Reel/Frame 020773/0310 →
MERGER Recorded Apr 12, 2006
From: SIEMENS INFORMATION AND COMMUNICATION NETWORKS, INC.
To: SIEMENS COMMUNICATIONS, INC.
Reel/Frame 017462/0245 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2003
From: ZHUBER-OKROG, KUNO; MAURER, ERICH K.
To: SIEMENS INFORMATION AND COMMUNICATION NETWORKS, INC.
Reel/Frame 014169/0703 →