EP1585997B1

System and method for controlling noise figure

Abstract

This record has no abstract on file.

EP1585997B1, drawing sheet 1
Sheet 1 of 10

Term

Term ended

Expired 25 July 2022, 4.2 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

55 claims: 2 independent, 53 dependent

  1. 1
    An optical amplifier (100) operable to amplify a plurality of optical wavelength signals at least in part through Raman amplification, the amplifier comprising an amplification stage (112) comprising:an input operable to receive a plurality of wavelength signals (16);an output operable to communicate an amplified version of at least some of the plurality of wavelength signals;a pump assembly (122) operable to generate one or more pump signals (124);and a gain medium (120) operable to receive the plurality of wavelength signals and the one or more pump signals and to facilitate amplification of at least some of the plurality of wavelength signals;characterised in that the amplifier stage (112) has associated with it a noise figure having a shape varying as a function of wavelength and wherein at least one of the one or more pump signals (124) is operable to have its power varied based at least in part on a signal power of the plurality of wavelength signals (16) at an input of the gain medium of the amplifier stage to approximately maintain an intended shape of the noise figure.
  2. 2
    The amplifier of Claim 1, wherein the at least one of the one or more pump signals (124) is operable to have its power varied to contribute to approximately maintaining the shape of the noise figure as the power of at least one of the plurality of optical wavelength signals (16) varies or wavelength signals are added to or dropped from the plurality of wavelength signals.
  3. 3
    The amplifier of Claim 1, wherein the at least one of the one of more pump signals (124) comprises a pump signal having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  4. 4
    The amplifier of Claim 1, wherein the at least one of the one of more pump signals (124) comprises a pump signal having a longer wavelength than wavelengths of any of the other one or more pump signals.
  5. 5
    The amplifier of Claim 1, wherein the at least one of the one or more pump signals (124) comprises a plurality of pump signals each having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  6. 6
    The amplifier of Claim 1, wherein the pump assembly (122) comprises a plurality of pumps each operable to generate one of a plurality of pump signals.
  7. 7
    The amplifier of Claim 1, wherein the gain medium (120) comprises a transmission fiber.
  8. 8
    The amplifier of Claim 1, wherein the gain medium (120) comprises a Raman gain fiber.
  9. 9
    The amplifier of Claim 1, wherein the amplifier stage comprises a first stage (112a) of a multiple stage amplifier which also includes a second stage (112n).
  10. 10
    The amplifier of Claim 9, wherein a majority of control of the shape of the noise figure occurs in the first amplifier stage (112a).
  11. 11
    The amplifier of Claim 9, wherein a pump power in the first amplifier stage (112a) is varied to control the shape of the noise figure, and wherein a pump power in a second amplifier stage (112n) is varied to control the flatness of the gain of the wavelength signals.
  12. 12
    The amplifier of Claim 9, wherein a pump power in the first amplifier stage (112a) is varied to control the shape of the noise figure, and when a gain flattening filter is applied to control the flatness of the gain of the wavelength signals.
  13. 13
    The amplifier of Claim 1, wherein the amplifier (100) comprises at least one distributed Raman amplification stage.
  14. 14
    The amplifier of Claim 1, wherein the amplifier (100) comprises at least one discrete Raman amplification stage.
  15. 15
    The amplifier of Claim 1, wherein the amplifier (100) comprises a multiple stage amplifier comprising:at least one stage comprising a distributed Raman amplifier;and at least one stage comprising a discrete Raman amplifier.
  16. 16
    The amplifier of Claim 1, wherein the amplifier (100) comprises a multiple stage amplifier comprising:at least one stage of Raman amplification;and at least one stage of rare-earth doped amplification.
  17. 17
    The amplifier of Claim 1, wherein the amplifier (100) comprises a multiple stage amplifier, comprising a lossy element (126) coupled between two amplification stages.
  18. 18
    The amplifier of Claim 17, wherein the lossy element (126) is selected from a group consisting of an optical add/drop multiplexer, an optical cross-connect, a gain equalizer, and an optical isolator.
  19. 20
    The amplifier of Claim 9, wherein a majority of the control of the shape of the noise figure occurs in the first stage (112a) of the multiple stage amplifier.
  20. 21
    The amplifier of Claim 9, wherein substantially all of the control of the shape of the noise figure occurs in the first Raman amplifier stage (112a) of the multiple stage amplifier.
  21. 22
    The amplifier of Claim 21, wherein the at least one of the one or more pump signals (124) in the first stage comprises a pump signal having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  22. 23
    The amplifier of Claim 21, wherein the at least one of the one or more pump signals (124) comprises a pump signal having a longer wavelength than wavelengths of any of the other one or more pump signals.
  23. 24
    The amplifier of Claim 21, wherein the at least one of the one or more pump signals (124) comprises a plurality of pump signals each having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  24. 25
    The amplifier of Claim 9, wherein a pump power in the first Raman amplifier stage (112a) is varied to control the shape of the noise figure, and wherein a pump power in the second stage (112a) is varied to control the flatness of the gain of the wavelength signals.
  25. 26
    The amplifier of Claim 9, wherein the second amplifier stage (112n) comprises a rare-earth doped amplifier stage.
  26. 27
    The amplifier of Claim 9, further comprising at least one additional amplification stage coupled between the first (112a) and second (112n) amplification stages.
  27. 28
    The amplifier of Claim 1, wherein the amplifier (100) comprises a distributed Raman amplifier.
  28. 29
    The amplifier of Claim 1, wherein the amplifier (100) comprises a discrete Raman amplifier.
  29. 30
    The amplifier of Claim 9, wherein the first stage (112a) of the amplifier comprises a distributed Raman amplifier, and wherein the second stage (112n) of the amplifier comprises a discrete Raman amplifier.
  30. 31
    The amplifier of Claim 1, wherein the power of the at least one of the one or more pump signals (124) is varied using control circuitry (330) operable to generate a control signal (132) based at least in part on a signal proportional to the power of the plurality of wavelength signals (16).
  31. 32
    The amplifier of Claim 31, wherein the control circuitry (330) comprises a look-up table.
  32. 33
    The amplifier of Claim 32, wherein the look-up table comprises values operable to be adjusted over time to account for changes in amplifier characteristics over time.
  33. 34
    The amplifier of Claim 31, wherein the total power of the wavelength signals (16) comprises the total power of the wavelength signals at an input to the amplifier stage.
  34. 35
    The amplifier of Claim 31, wherein the total power of the wavelength signals (16) comprises the total power of the wavelength signals at an output of the amplifier.
  35. 36
    The amplifier of Claim 31, wherein the control circuitry comprises logic operable to determine the control signal (132) by applying an equation describing a relationship between the total power of the wavelength signals and pump power.
  36. 37
    The amplifier of Claim 31, wherein the control circuitry comprises a comparison circuit operable to determine a difference between the total power of the wavelength signals (16) at an input to the amplifier and the total power of the wavelength signals at an output to the amplifier.
  37. 38
    The amplifier of Claim 31, wherein at least one of the one or more pump signals (124) comprises a pump signal having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  38. 39
    The amplifier of Claim 31, wherein the at least one of the one or more pump signals (124) comprises a pump signal having a longer wavelength than wavelengths of any of the other one or more pump signals.
  39. 40
    The amplifier of Claim 31, wherein the at least one of the one or more pump signals (124) comprises a plurality of pump signals each having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  40. 41
    The amplifier of Claim 31, further comprising an optical tap operable to direct a portion of each of the plurality of wavelength signals to the control circuitry, the portion comprising an optical signal having a total power that is proportional to the total power of the plurality of wavelength signals.
  41. 42
    A method of amplifying optical signals (16) at least in part by Raman amplification, comprising:introducing to a gain medium (120) of an amplifier stage (112), one or more pump signals (124) and a multiple wavelength signal comprising a plurality of wavelength signals (16), the one or more pump signals amplify the plurality of wavelength signals within the amplifier stage at least in part by Raman amplification;detecting a change in power of the multiple wavelength signal;characterised in that one or more pump signals amplify the plurality of wavelength signals within the amplifier stage at least in part by Raman amplification;and in that the method comprises using further step of: selectively adjusting a power of at least one of the one or more pump signals in response to the detected change in signal power of the multiple wavelength signal to result in approximately maintaining an intended shape of a noise figure associated with the multiple wavelength signal.
  42. 43
    The method of Claim 42, wherein the at least one of the one of more pump signals (124) comprises a pump signal having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  43. 44
    The method of Claim 42, wherein the at least one of the one of more pump signals comprises a pump signal having a longer wavelength than wavelengths of any of the other one or more pump signals.
  44. 45
    The method of Claim 42, wherein the at least one of the one or more pump signals (124) comprises a plurality of pump signals each having a longer wavelength than wavelengths of at least half of the one or more pump signals.
  45. 46
    The method of Claim 42, wherein detecting a change in power of the multiple wavelength signal comprises detecting a change in a total power of the multiple wavelength signal.
  46. 47
    The method of Claim 46, wherein detecting a change in the total power of the multiple wavelength signal comprises receiving a signal proportional to the total power of the multiple wavelength signal.
  47. 48
    The method of Claim 46, wherein detecting a change in the total power of the multiple wavelength signal comprises detecting a change of the total power of the multiple wavelength signal at or prior to an input to the gain medium.
  48. 49
    The method of Claim 46, wherein detecting a change in the total power of the multiple wavelength signal comprises detecting a change of the total power of the multiple wavelength signal at or after an output from the gain medium.
  49. 50
    The method of Claim 42, wherein detecting a change in power of the multiple wavelength signal comprises detecting a change in the number of wavelength signals in the plurality of wavelength signals.
  50. 51
    The method of Claim 42, wherein selectively adjusting a power of at least one of the one or more pump signals (124) comprises adjusting the power of the at least one of the one or more pump signals in a first amplification stage (112a) of a multiple stage amplifier.
  51. 52
    The method of Claim 51, further comprising applying a gain flattening technique in a subsequent amplification stage to the first amplification stage (112a).
  52. 53
    The method of Claim 52, wherein the gain flattening technique comprises adjusting a pump power in the subsequent amplification stage.
  53. 54
    The method of Claim 42, wherein the gain medium (120) comprises a transmission fiber in a distributed Raman amplification stage.
  54. 55
    The method of Claim 42, wherein the gain medium (120) comprises a Raman gain fiber in a discrete Raman amplification stage.
Independent claims54