WO2013121826A1 - Optical communication device - Google Patents

Optical communication device Download PDF

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Publication number
WO2013121826A1
WO2013121826A1 PCT/JP2013/050798 JP2013050798W WO2013121826A1 WO 2013121826 A1 WO2013121826 A1 WO 2013121826A1 JP 2013050798 W JP2013050798 W JP 2013050798W WO 2013121826 A1 WO2013121826 A1 WO 2013121826A1
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WO
WIPO (PCT)
Prior art keywords
optical
transmission
level
side optical
unit
Prior art date
Application number
PCT/JP2013/050798
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French (fr)
Japanese (ja)
Inventor
創 山崎
Original Assignee
三菱電機株式会社
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Publication date
Application filed by 三菱電機株式会社 filed Critical 三菱電機株式会社
Priority to JP2014500128A priority Critical patent/JP5847286B2/en
Publication of WO2013121826A1 publication Critical patent/WO2013121826A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/29Repeaters
    • H04B10/291Repeaters in which processing or amplification is carried out without conversion of the main signal from optical form
    • H04B10/293Signal power control
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/07Arrangements for monitoring or testing transmission systems; Arrangements for fault measurement of transmission systems
    • H04B10/075Arrangements for monitoring or testing transmission systems; Arrangements for fault measurement of transmission systems using an in-service signal
    • H04B10/077Arrangements for monitoring or testing transmission systems; Arrangements for fault measurement of transmission systems using an in-service signal using a supervisory or additional signal
    • H04B10/0777Monitoring line amplifier or line repeater equipment

Definitions

  • the present invention relates to an optical communication apparatus that communicates an optical signal via a transmission line, and more particularly to an optical communication apparatus having a function of adjusting the level of an optical signal according to a transmission line loss.
  • a wavelength division multiplexing optical communication system is a system capable of multiplexing and transmitting optical signals of different wavelengths on an optical fiber, which is a signal transmission medium, and can greatly increase the transmission capacity with a single optical fiber. It has been put into practical use as a system.
  • a wavelength division multiplexing optical communication system is configured by connecting a plurality of wavelength division multiplexing optical devices (nodes) via optical fibers. Each node can take a connection form such as a point-to-point connection configured in a one-to-one relationship, a linear connection configured linearly, or a ring connection configured in a loop shape.
  • an optical multiplexing / demultiplexing unit that can multiplex, separate or transmit a plurality of optical signals of different wavelengths, a transponder unit that can set a signal from a downstream device to an optical signal of any wavelength, Monitors and controls alarms and performance information between the receiving-side optical amplifier that compensates for loss in the transmission line (optical fiber), the transmitting-side optical amplifier that compensates for the passage loss in the wavelength-multiplexed optical device, and the wavelength-multiplexed optical device There is a supervisory control light unit.
  • the transmission path loss between the nodes usually has various values.
  • the receiving side optical amplifying unit and the transmitting side optical amplifying unit are required to have a wide input dynamic range. It affects the wavelength dependence of gain and the direction in which the noise figure (NF) deteriorates.
  • the output level of the transmission side optical amplifier is made constant and the level before the reception side optical amplifier is set.
  • An adjuster is arranged to adjust the input level of the receiving-side optical amplifier to a level that is the same as when receiving the maximum possible transmission line loss. Therefore, even if the transmission line loss is small, the level adjuster causes an unnecessary loss, and the optical signal-to-noise ratio (OSNR) decreases in proportion to the passing loss of the level adjuster. I will.
  • Patent Document 1 discloses an optical transmission device in which a variable optical coupler capable of changing the branching ratio is arranged in front of the reception side optical amplifier in order to adjust the input level of the reception side optical amplifier. . Since this optical transmission device does not use a variable optical attenuator or the like as a level adjuster, it can reduce the passage loss and suppress the OSNR reduction.
  • the optical transmission device of Patent Document 1 has a problem in that the output energy of the transmission side optical amplifier is wasted because a loss is caused on the reception side when the transmission line loss is small.
  • the optical output level of the transmission-side optical amplifier is high, the influence of nonlinear degradation that occurs in the transmission path becomes large. Therefore, there is a problem that non-linear degradation is unnecessarily caused and the OSNR necessary for reception is also increased.
  • An object of the present invention is to obtain an optical communication apparatus that solves the above problems.
  • An optical communication apparatus includes a transmission-side optical amplifier that amplifies an optical signal, a transmission-side optical amplification unit that outputs an optical signal amplified by the transmission-side optical amplifier to a transmission line, and reception via the transmission line A receiving-side optical amplifier that amplifies the received optical signal, and a control circuit unit that adjusts the optical output level of the transmitting-side optical amplifier so that the optical input level to the receiving-side optical amplifier becomes a predetermined target value.
  • the present invention is configured to adjust the optical output level of the transmission side optical amplifier so that the optical input level to the reception side optical amplifier becomes a predetermined target value, the optical input level to the reception side optical amplifier Can be adjusted to an appropriate level regardless of various transmission line losses, and nonlinear deterioration of the optical signal and OSNR decrease due to unnecessary high-level transmission can be suppressed.
  • 3 is a level diagram of an optical signal according to the first embodiment of the present invention. It is a level division diagram which divided the optical output level and optical input level range concerning Embodiment 1 of this invention into the step. It is a flowchart which shows the adjustment procedure of the optical output level concerning Embodiment 1 of this invention. It is a block diagram which shows the detail of the transmission side optical amplifier of the wavelength multiplexing optical apparatus concerning Embodiment 2 of this invention. It is a block diagram which shows the detail of the transmission side optical amplification part of the wavelength multiplexing optical apparatus concerning Embodiment 3 of this invention.
  • FIG. 1 shows a configuration of a wavelength division multiplexing optical apparatus (optical communication apparatus) according to Embodiment 1 of the present invention.
  • a wavelength multiplexing optical device 1 includes a reception side optical amplification unit 2, an optical multiplexing / demultiplexing unit 3, a transponder unit 4, a transmission side optical amplification unit 5, a transmission side supervisory control light unit 6, and a reception side supervisory control light unit 7. Consists of.
  • the plurality of wavelength division multiplexing optical devices 1 are connected via transmission lines 8 each composed of an optical fiber, and constitute a wavelength division multiplexing optical communication system that transmits a wavelength division multiplexed optical signal obtained by combining a plurality of different wavelengths.
  • the optical level of the optical signal transmitted from the adjacent wavelength multiplexing optical device 1 is lowered due to the loss of the transmission path 8.
  • the receiving side optical amplifying unit 2 has a function of optically amplifying the received optical signal in order to compensate for the loss caused by the transmission path.
  • the optical multiplexing / demultiplexing unit 3 has a function of multiplexing, demultiplexing, or transmitting a plurality of optical signals having different wavelengths, and the divided optical signal is output to the transponder unit 4.
  • the transponder unit 4 extracts an electrical signal from an optical signal having an arbitrary wavelength output from the optical multiplexing / demultiplexing unit 3 and transmits the electrical signal to a downstream device (not shown), and an optical signal having an arbitrary wavelength received from the downstream device And has a function of outputting to the optical multiplexing / demultiplexing unit 3.
  • the optical signal having an arbitrary wavelength output from the transponder unit 4 is combined with the optical signal from the reception side optical amplification unit 2 in the optical multiplexing / demultiplexing unit 3 and output to the transmission side optical amplification unit 5.
  • the transmission side optical amplifying unit 5 has a function of interpolating the loss in the wavelength division multiplexing optical apparatus 1 and optically amplifying the signal to a preset transmission line output level (optical output level).
  • the amplified optical signal is transmitted to the transmission path 8 connected to the adjacent wavelength multiplexing optical device 1.
  • the transmission-side supervisory control light unit 6 connected to the output side of the transmission-side optical amplification unit 5 collects performance information and alarm status of the transmission-side optical amplification unit 5 and notifies them to the adjacent wavelength multiplexing optical device 1
  • the information notified from the adjacent wavelength multiplexing optical device 1 has a function of notifying the transmitting side optical amplifying unit 5 of the information.
  • the reception-side supervisory control light unit 7 connected to the input side of the reception-side optical amplification unit 2 collects performance information and alarm status of the reception-side optical amplification unit 2 and notifies the adjacent wavelength multiplexing optical device 1
  • the function of notifying the receiving side optical amplifying unit 2 of the information notified from the adjacent wavelength multiplexing optical device 1 is provided.
  • FIG. 2 shows the internal configuration of the transmission side optical amplification unit 5 and the reception side optical amplification unit 2.
  • the transmission side optical amplifying unit 5 includes a transmission side optical amplifier 11, an optical output level detection element (output side optical monitor) 12 connected to the output side, an input side level adjuster 13 connected to the input side, and a control.
  • a circuit unit 14 is included.
  • the transmission side optical amplifier 11 optically amplifies the input signal with a predetermined amplification gain.
  • the optical output level detection element 12 monitors the optical output level of the transmission side optical amplifier 11 and notifies the control circuit unit 14 and the transmission side monitoring control light unit 6 of the monitoring result. This optical output level is equal to the optical output level of the transmission side optical amplifying unit 5 transmitted to the transmission line 8.
  • the control circuit unit 14 drives the input side level adjuster 13 to adjust the optical input level of the transmission side optical amplifier 11.
  • the reception side optical amplifying unit 2 includes a reception side optical amplifier 15 and an optical input level detection element (input side optical monitor) 16 connected to the input side thereof.
  • the receiving side optical amplifier 15 optically amplifies the input signal with a predetermined amplification gain.
  • the optical input level detection element 16 monitors the optical input level of the reception side optical amplifier 15 and notifies the reception side monitoring control light unit 7 of the monitoring result.
  • the reception-side monitoring control light unit 7 transmits the optical input level monitoring result to the transmission-side monitoring control light unit 6 via the transmission path 8.
  • the transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitor result together with the optical output level monitor result notified from the optical output level detection element 12.
  • the input optical signal is level-adjusted by the input side level adjuster 13 and optically amplified by the transmission side optical amplifier 11 with a predetermined amplification gain.
  • the optical output level detection element 12 notifies the control circuit unit 14 of the monitored optical output level (optical output level monitoring result) of the transmission side optical amplifier 11.
  • the control circuit unit 14 controls the input side level adjuster 13 so that the light output level becomes a predetermined reference value at the time of activation.
  • the optical signal whose optical output level is adjusted to the reference value at the time of activation is transmitted from the transmission side optical amplifying unit 5 to the adjacent wavelength division multiplexing optical device 1 through the transmission path 8.
  • the receiving side optical amplifying unit 2 receives an optical signal whose level has been reduced due to a loss caused by the transmission path 8.
  • the optical input level detecting element 16 notifies the receiving side monitoring control light unit 7 of the monitored optical input level to the receiving side optical amplifier 15 as an optical input level monitoring result.
  • the reception side monitoring control light unit 7 transmits the notified optical input level monitoring result to the transmission side monitoring control light unit 6 via the transmission path 8.
  • the transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitoring result and the optical output level monitoring result notified from the optical output level detection element 12 at the same timing.
  • the control circuit unit 14 follows a preset flow (for example, the flow shown in FIG. 5 to be described later), and the optical input level to the reception-side optical amplifier 15 is a predetermined target according to the notified optical input level monitoring result.
  • the target value of the optical output level of the transmission side optical amplifying unit 5 is determined so as to be a value.
  • the input side level adjuster 13 is controlled to adjust the optical output level of the transmission side optical amplifier 11, that is, the optical output level of the transmission side optical amplification unit 5 to the determined target value.
  • the optical input level to the reception side optical amplifier 15 is adjusted to a prescribed target value.
  • the transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the optical output level monitoring result at the same timing as the optical input level monitoring result on the receiving side, so that the control circuit unit 14 adjusts the light being adjusted. It is possible to avoid erroneous control using the output level monitor result.
  • FIG. 3 shows a level diagram in the wavelength division multiplexing apparatus 1 after the level adjustment by the above operation.
  • (a), (b), (c), and (d) on the horizontal axis correspond to the locations indicated by the same reference numerals in FIG. 2, and (a) shows the transmission side optical amplifier 11 and the transmission side optical amplification unit.
  • (b) shows the input location of the reception side optical amplifier 2
  • (c) shows the input location of the reception side optical amplifier
  • (d) shows the output location of the reception side optical amplifier 15.
  • the vertical axis indicates the light level at each location
  • the light level in (a) indicates the light output level monitoring result monitored by the light output level detection element 12
  • (b) and (c) indicate the light input level detection element 16. Is equal to the result of monitoring the optical input level monitored.
  • the difference between the optical level in (a) and the optical level in (b) is the transmission path loss received in the transmission path 8, and the optical input level to the receiving side optical amplifier 15 becomes a predetermined value.
  • the optical level of (a) that is, the optical output level of the transmission side optical amplification unit 5 is increased, and when the transmission line loss is small, the optical output level of the transmission side optical amplification unit 5 is decreased.
  • FIG. 4 shows an example of a table in which the optical output level of the transmission side optical amplifying unit 5 and the optical input level of the reception side optical amplifier 15 are divided in stages within an adjustable range.
  • the control circuit unit 14 holds values for this step division (table) in advance.
  • the optical output level of the transmission side optical amplifying unit 5 is divided into five stages (a, b, c, d, e), and the optical input level of the reception side optical amplifier 15 is divided into five ranges (AB, B- C, CD, DE, and EF).
  • FIG. 5 shows a light output level adjustment (setting) flowchart when the table shown in FIG. 4 is applied.
  • the reception limit value D is determined based on the number of wavelength division multiplexing optical devices 1 (number of nodes) called nodes included in the system and the receivable level range of the reception side optical amplifier 12. (Target value) is determined and held by the control circuit unit 14.
  • step S1 the control circuit unit 14 controls the input side level adjuster 13 to set the optical output level of the transmission side optical amplifier 11 to the reference value c at the time of activation.
  • the reception-side monitoring control light unit 7 receives the optical input level monitoring result of the reception-side optical amplifier 15 from the optical input level detection element 16, and notifies the transmission-side monitoring control light unit 6 (step S2).
  • the control circuit unit 14 determines the level control amount of the input side level adjuster 13 in the following steps according to the optical input level monitor result notified from the transmission side monitoring control light unit 6.
  • step S3 If the optical input level monitoring result (Rx) is outside the five optical input level ranges (A or higher or F or lower) defined in the table (step S3, Y) in step S3, it is determined that adjustment is impossible. It is necessary to replace the receiving side optical amplifier 15 with a type that falls within the receivable level range (step S4). If the optical input level monitor result is within the optical input level range defined in the table (step S3, N), it is determined whether or not the optical input level monitor result is greater than or equal to B and less than A (step S5). If it is greater than or equal to B and less than A (step S5, Y), the level control amount is determined so as to decrease the optical output level of the transmission side optical amplifier 11 from c to e (step S6).
  • step S5 is negative (N)
  • step S7 it is determined in step S7 whether the input level monitor result is greater than or equal to C and less than B. If it is C or more and less than B (step S7, Y), the level control amount is determined so as to decrease the optical output level of the transmission side optical amplifier 11 from c to d (step S8). If step S7 is negative (N), it is determined in step S9 whether the input level monitor result is greater than or equal to D and less than C. When it is D or more and less than C (step S9, Y), the optical output level of the transmission side optical amplifier 11 is maintained at c (step S10). If step S9 is NO (N), it is determined in step S11 whether the input level monitor result is greater than or equal to E and less than D.
  • step S11, Y If it is greater than or equal to E and less than D (step S11, Y), the level control amount is determined so as to increase the optical output level of the transmission side optical amplifier 11 from c to b (step S12). If step S11 is negative (N), it is confirmed in step S13 that the input level monitor result is F or more and less than E (step S13, Y), and the optical output level of the transmission side optical amplifier 11 is changed from c. The level control amount is determined so as to increase to a (step S14).
  • control circuit unit 14 drives the input side level adjuster 13 to complete the light level adjustment.
  • the transmission side optical amplifying unit receives the notification of the optical input level of the reception side optical amplifier 15 so that the optical input level becomes a predetermined target value. Since the optical output level of 5 is adjusted, the transmission side optical amplification unit 5 does not perform extra optical amplification in accordance with the maximum transmission path loss, and the drive current of the transmission side optical amplification unit 5 is reduced. Therefore, low power consumption can be realized.
  • the receiving side optical amplifying unit 2 does not include a level adjuster that lowers the optical input level in order to correspond to the input dynamic range of the receiving side optical amplifier 15, no extra optical loss occurs and it is necessary. OSNR can be secured.
  • the optical output level can be appropriately adjusted without greatly increasing the input dynamic range of the transmission side optical amplifier 11, so that the optical amplification gain is increased.
  • the wavelength dependency is improved and the transmission performance can be improved.
  • a wavelength division multiplexing optical communication system capable of realizing a long transmission distance can be configured using the wavelength division multiplexing optical device 1.
  • FIG. FIG. 6 shows an internal configuration of the transmission side optical amplifying unit 21 of the wavelength division multiplexing optical apparatus 20 according to the second embodiment of the present invention.
  • the configuration of the wavelength multiplexing optical device 20 is the same as that of the wavelength multiplexing optical device 1 shown in FIG. 1, and the internal configuration of the transmission side optical amplification unit 21 is different from that of the transmission side optical amplification unit 5.
  • the internal configuration of the reception side optical amplifying unit 2 is the same as that in FIG.
  • the transmission side optical amplifier 21 includes a transmission side optical amplifier 11, an output side level adjuster 22 connected to the output side thereof, and an optical output level connected to the output side of the output side level adjuster 22.
  • a detection element (output side optical monitor) 12 and a control circuit unit 14 are included.
  • the transmission side optical amplifier 11 optically amplifies the input signal with a predetermined amplification gain.
  • the optical output level detection element 12 monitors the level of the optical signal level adjusted by the output side level adjuster 22, that is, the optical output level of the transmission side optical amplifying unit 21 transmitted to the transmission line 8, and controls the monitoring result.
  • the circuit unit 14 and the transmission side supervisory control light unit 6 are notified.
  • the control circuit unit 14 drives the output side level adjuster 22 to adjust the optical output level of the transmission side optical amplifying unit 21.
  • the input optical signal is optically amplified with a predetermined amplification gain by the transmission-side optical amplifier 11, and the level is adjusted by the output-side level adjuster 22.
  • the optical output level detection element 12 notifies the control circuit unit 14 of the monitored optical output level (optical output level monitoring result) of the transmission side optical amplifying unit 21.
  • the control circuit unit 14 controls the output side level adjuster 22 so that the light output level becomes a predetermined reference value at the time of activation.
  • the optical signal whose optical output level is adjusted to the reference value at the time of activation is transmitted from the transmission side optical amplifying unit 5 to the adjacent wavelength division multiplexing optical device via the transmission path 8.
  • the receiving side optical amplifying unit 2 receives an optical signal whose level has been reduced due to a loss caused by the transmission path 8.
  • the optical input level detecting element 16 notifies the receiving side monitoring control light unit 7 of the monitored optical input level to the receiving side optical amplifier 15 as an optical input level monitoring result.
  • the reception side monitoring control light unit 7 transmits the notified optical input level monitoring result to the transmission side monitoring control light unit 6 via the transmission path 8.
  • the transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitoring result and the optical output level monitoring result notified from the optical output level detection element 12 at the same timing.
  • the control circuit unit 14 sets the optical input level to the reception side optical amplifier 15 to a predetermined target value according to the notified optical input level monitoring result.
  • the target value of the optical output level of the transmission side optical amplifying unit 21 is determined.
  • the output side level adjuster 22 is controlled to adjust the optical output level of the transmission side optical amplifying unit 21 to the determined target value.
  • the optical input level to the reception side optical amplifier 15 is adjusted to a prescribed target value.
  • the transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the optical output level monitoring result at the same timing as the optical input level monitoring result on the receiving side, so that the control circuit unit 14 adjusts the light being adjusted. It is possible to avoid erroneous control using the output level monitor result.
  • the transmission side optical amplifying unit receives the notification of the optical input level of the reception side optical amplifier 15 so that the optical input level becomes a predetermined target value. Since the optical output level of the transmission side 21 is adjusted, the transmission side optical amplification unit 21 does not perform extra optical amplification in accordance with the maximum transmission path loss, and the drive current of the transmission side optical amplification unit 21 is reduced. Therefore, low power consumption can be realized.
  • the receiving side optical amplifying unit 2 does not include a level adjuster that lowers the optical input level in order to correspond to the input dynamic range of the receiving side optical amplifier 15, no extra optical loss occurs and it is necessary. OSNR can be secured.
  • the control circuit unit 14 directly uses the optical output level of the output side level adjuster 22 so that the optical output level is adjusted. Since the output side level adjuster 22 is controlled so that the target value is determined, the level adjustment feedback loop configuration is simplified. Further, although the output level of the transmission side optical amplifier 11 is set higher by the passage loss of the output side level adjuster 22, it is not necessary to change the input level of the transmission side optical amplifier 11 in accordance with the transmission line loss. Therefore, there is an effect that the input dynamic range of the transmission side optical amplifier 11 can be set efficiently.
  • a wavelength division multiplexing optical communication system capable of realizing a long transmission distance can be configured using the wavelength division multiplexing optical device 20.
  • FIG. FIG. 7 shows an internal configuration of the transmission side optical amplifying unit 31 of the wavelength division multiplexing apparatus 30 according to the third embodiment of the present invention.
  • the configuration of the wavelength multiplexing optical device 30 is the same as that of the wavelength multiplexing optical device 1 shown in FIG. 1, and the internal configuration of the transmission side optical amplification unit 31 is different from that of the transmission side optical amplification unit 5.
  • the internal configuration of the reception side optical amplifying unit 2 is the same as that in FIG.
  • the transmission side optical amplification unit 31 includes a transmission side optical amplifier 32, an optical output level detection element (output side optical monitor) 12 connected to the output side, and a control circuit unit 14.
  • the transmission side optical amplifier 32 is a variable gain optical amplifier, and optically amplifies an input signal with a set amplification gain.
  • the optical output level detection element 12 monitors the optical output level of the transmission side optical amplifier 32, that is, the optical output level of the transmission side optical amplification unit 31 transmitted to the transmission line 8, and the monitor result is transmitted to the control circuit unit 14 and the transmission side.
  • the monitoring control light unit 6 is notified.
  • the control circuit unit 14 sets and controls the optical amplification gain of the transmission side optical amplifier 32 and adjusts the optical output level of the transmission side optical amplification unit 31.
  • the input optical signal is optically amplified with the amplification gain set by the transmission side optical amplifier 32.
  • the optical output level detecting element 12 notifies the control circuit unit 14 of the monitored optical output level (optical output level monitoring result) of the transmission side optical amplifying unit 31.
  • the control circuit unit 14 sets the optical amplification gain of the transmission side optical amplifier 32 so that the optical output level becomes a predetermined reference value at the time of activation.
  • the optical signal whose optical output level is adjusted to the reference value at the time of activation is transmitted from the transmission side optical amplifying unit 31 to the adjacent wavelength division multiplexing optical device via the transmission path 8.
  • the receiving side optical amplifying unit 2 receives an optical signal whose level has been reduced due to a loss caused by the transmission path 8.
  • the optical input level detecting element 16 notifies the receiving side monitoring control light unit 7 of the monitored optical input level to the receiving side optical amplifier 15 as an optical input level monitoring result.
  • the reception side monitoring control light unit 7 transmits the notified optical input level monitoring result to the transmission side monitoring control light unit 6 via the transmission path 8.
  • the transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitoring result and the optical output level monitoring result notified from the optical output level detection element 12 at the same timing.
  • the control circuit unit 14 sets the optical input level to the reception side optical amplifier 15 to a predetermined target value according to the notified optical input level monitoring result.
  • the target value of the optical output level of the transmission side optical amplifying unit 31 is determined.
  • the optical amplification gain is set and controlled so that the optical output level of the transmission side optical amplifier 32 becomes the determined target value.
  • the optical input level to the reception side optical amplifier 15 is adjusted to a prescribed target value.
  • the transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the optical output level monitoring result at the same timing as the optical input level monitoring result on the receiving side, so that the control circuit unit 14 adjusts the light being adjusted. It is possible to avoid erroneous control using the output level monitor result.
  • the transmission side optical amplifying unit receives the notification of the optical input level of the reception side optical amplifier 15 so that the optical input level becomes a predetermined target value. Since the optical output level of 31 is adjusted, the transmission side optical amplifying unit 31 does not perform extra optical amplification in accordance with the maximum transmission path loss, and the drive current of the transmission side optical amplifying unit 31 is reduced. Therefore, low power consumption can be realized.
  • the receiving side optical amplifying unit 2 does not include a level adjuster that lowers the optical input level in order to correspond to the input dynamic range of the receiving side optical amplifier 15, no extra optical loss occurs and it is necessary. OSNR can be secured.
  • the transmission side optical amplifier 32 is used as a variable gain optical amplifier and the optical amplification gain is directly controlled, a level adjuster is not required, and the transmission side optical amplification unit 31 can be realized with a simple configuration.
  • the optical amplification gain of the transmission side optical amplifier 31 can be reduced, so that the drive current can be reduced to realize low power consumption.
  • a wavelength division multiplexing optical communication system capable of realizing a long transmission distance can be configured using the wavelength division multiplexing apparatus 30.
  • the optical communication apparatus is configured to adjust the optical output level of the transmission side optical amplifier so that the optical input level to the reception side optical amplifier becomes a predetermined target value.
  • the optical input level can be adjusted to an appropriate level regardless of various transmission line losses, and non-linear degradation of the optical signal and OSNR decrease due to unnecessary high-level transmission can be suppressed. It is suitable for use in a wavelength division multiplexing optical communication system.
  • 1 wavelength multiplexed optical device optical communication device
  • 2 receiving side optical amplifying unit 5 transmitting side optical amplifying unit, 6 transmitting side monitoring control light unit, 7 receiving side monitoring control light unit, 8 transmission path, 11 transmitting side optical amplifier
  • 12 Optical output level detection element output side optical monitor
  • 13 Input side level adjuster 14 Control circuit section, 15 Reception side optical amplifier
  • 16 Optical input level detection element input side optical monitor
  • 20 Wavelength multiplexing optical device Optical communication device

Abstract

This optical communication device is provided with: a transmission-side optical amplification unit which contains a transmission-side optical amplifier for amplifying an optical signal, and which outputs to the transmission path the optical signal amplified by the transmission-side optical amplifier; a receiving-side optical amplifier which amplifies the optical signal received over the transmission path; and a control circuit unit which adjusts the optical output level of the transmission-side optical amplification unit such that the optical input level to the receiving-side optical amplifier assumes a pre-set target value.

Description

光通信装置Optical communication device
 この発明は、光信号を伝送路を介して通信する光通信装置に関し、特に、伝送路損失に応じて光信号のレベルを調整する機能を備えた光通信装置に関する。 The present invention relates to an optical communication apparatus that communicates an optical signal via a transmission line, and more particularly to an optical communication apparatus having a function of adjusting the level of an optical signal according to a transmission line loss.
 波長多重光通信システムは、信号の伝送媒体である光ファイバーに複数の異なる波長の光信号を多重して送信することが可能なシステムであり、1本の光ファイバーで伝送容量を大幅に増大できる光通信システムとして実用化されている。波長多重光通信システムは、複数の波長多重光装置(ノード)が、光ファイバーを介して接続され構成される。各ノードは、1対1で構成されるPoint-to-Point接続、直線的に構成されるリニア接続、またはループ型に構成されるリング接続といった接続形態をとることが可能である。 A wavelength division multiplexing optical communication system is a system capable of multiplexing and transmitting optical signals of different wavelengths on an optical fiber, which is a signal transmission medium, and can greatly increase the transmission capacity with a single optical fiber. It has been put into practical use as a system. A wavelength division multiplexing optical communication system is configured by connecting a plurality of wavelength division multiplexing optical devices (nodes) via optical fibers. Each node can take a connection form such as a point-to-point connection configured in a one-to-one relationship, a linear connection configured linearly, or a ring connection configured in a loop shape.
 波長多重光装置の構成要素としては、複数の異なる波長の光信号を多重、分離あるいは透過可能な光合分波部や、下流装置からの信号を任意の波長の光信号に設定可能なトランスポンダ部、伝送路(光ファイバー)の損失を補償する受信側光増幅部、波長多重光装置内の通過損失を補完するための送信側光増幅部、波長多重光装置間の警報や性能情報の監視制御をする監視制御光部がある。 As components of the wavelength multiplexing optical device, an optical multiplexing / demultiplexing unit that can multiplex, separate or transmit a plurality of optical signals of different wavelengths, a transponder unit that can set a signal from a downstream device to an optical signal of any wavelength, Monitors and controls alarms and performance information between the receiving-side optical amplifier that compensates for loss in the transmission line (optical fiber), the transmitting-side optical amplifier that compensates for the passage loss in the wavelength-multiplexed optical device, and the wavelength-multiplexed optical device There is a supervisory control light unit.
 複数のノードで構成される波長多重光通信システムでは、各ノード間の伝送路損失が様々な値になることが通常である。様々な伝送路損失に対応するためには、受信側光増幅部と送信側光増幅部は、広い入力ダイナミックレンジを備えることを求められるが、入力ダイナミックレンジを広くするほど、各光増幅部の利得の波長依存性や雑音指数(Noise Figure:NF)が劣化する方向に影響を与えてしまう。 In a wavelength division multiplexing optical communication system composed of a plurality of nodes, the transmission path loss between the nodes usually has various values. In order to cope with various transmission line losses, the receiving side optical amplifying unit and the transmitting side optical amplifying unit are required to have a wide input dynamic range. It affects the wavelength dependence of gain and the direction in which the noise figure (NF) deteriorates.
 そこで、従来の波長多重光通信システムでは、光増幅部のダイナミックレンジを広くしないで様々な伝送路損失に対応するため、送信側光増幅器の出力レベルを一定にし、受信側光増幅器の前段にレベル調整器を配置して、受信側光増幅器の入力レベルを、対応可能な最大の伝送路損失を受けた場合と同一になるレベルに調整している。そのため、伝送路損失が小さい場合でも不要にレベル調整器が損失を与え、また、レベル調整器の通過損失分に比例して光信号対雑音比(Optical Signal to Noise Ratio:OSNR)の低下を招いてしまう。 Therefore, in the conventional wavelength division multiplexing optical communication system, in order to cope with various transmission line losses without widening the dynamic range of the optical amplifying unit, the output level of the transmission side optical amplifier is made constant and the level before the reception side optical amplifier is set. An adjuster is arranged to adjust the input level of the receiving-side optical amplifier to a level that is the same as when receiving the maximum possible transmission line loss. Therefore, even if the transmission line loss is small, the level adjuster causes an unnecessary loss, and the optical signal-to-noise ratio (OSNR) decreases in proportion to the passing loss of the level adjuster. I will.
 これに対し、例えば特許文献1では、受信側光増幅器の入力レベルを調整するために、受信側光増幅器の前段に分岐比を変更可能な可変光カプラを配置した光伝送装置が開示されている。この光伝送装置は、レベル調整器として可変光減衰器などを使用しないため、通過損失を減少でき、OSNRの低下を抑制できる。 On the other hand, for example, Patent Document 1 discloses an optical transmission device in which a variable optical coupler capable of changing the branching ratio is arranged in front of the reception side optical amplifier in order to adjust the input level of the reception side optical amplifier. . Since this optical transmission device does not use a variable optical attenuator or the like as a level adjuster, it can reduce the passage loss and suppress the OSNR reduction.
特開2005-259736JP 2005-259736 A
 しかし、特許文献1の光伝送装置は、伝送路損失が小さい場合に受信側で損失を与えることになるため、送信側光増幅器の出力エネルギーが無駄になるという問題点があった。
また、送信側光増幅器の光出力レベルが高い場合には、伝送路中で発生する非線形劣化の影響が大きくなる。そのため、非線形劣化を不要に招く要因になり、受信に必要なOSNRも高くなるという問題点があった。この発明は、上記のような問題点を解消する光通信装置を得ることを目的としている。
However, the optical transmission device of Patent Document 1 has a problem in that the output energy of the transmission side optical amplifier is wasted because a loss is caused on the reception side when the transmission line loss is small.
In addition, when the optical output level of the transmission-side optical amplifier is high, the influence of nonlinear degradation that occurs in the transmission path becomes large. Therefore, there is a problem that non-linear degradation is unnecessarily caused and the OSNR necessary for reception is also increased. An object of the present invention is to obtain an optical communication apparatus that solves the above problems.
 この発明の光通信装置は、光信号を増幅する送信側光増幅器を含み、当該送信側光増幅器により増幅した光信号を伝送路へ出力する送信側光増幅部と、前記伝送路を介して受信した光信号を増幅する受信側光増幅器と、前記受信側光増幅器への光入力レベルが既定の目標値になるように、前記送信側光増幅部の光出力レベルを調整する制御回路部とを備える。 An optical communication apparatus according to the present invention includes a transmission-side optical amplifier that amplifies an optical signal, a transmission-side optical amplification unit that outputs an optical signal amplified by the transmission-side optical amplifier to a transmission line, and reception via the transmission line A receiving-side optical amplifier that amplifies the received optical signal, and a control circuit unit that adjusts the optical output level of the transmitting-side optical amplifier so that the optical input level to the receiving-side optical amplifier becomes a predetermined target value. Prepare.
 この発明は、受信側光増幅器への光入力レベルが既定の目標値になるように、送信側光増幅部の光出力レベルを調整するように構成したので、受信側光増幅器への光入力レベルを様々な伝送路損失によらず適切なレベルに調整することができ、かつ、不要な高レベル伝送による光信号の非線形劣化やOSNRの低下を抑制できる。 Since the present invention is configured to adjust the optical output level of the transmission side optical amplifier so that the optical input level to the reception side optical amplifier becomes a predetermined target value, the optical input level to the reception side optical amplifier Can be adjusted to an appropriate level regardless of various transmission line losses, and nonlinear deterioration of the optical signal and OSNR decrease due to unnecessary high-level transmission can be suppressed.
この発明の実施の形態1にかかる波長多重光装置を示す構成図である。It is a block diagram which shows the wavelength multiplexing optical apparatus concerning Embodiment 1 of this invention. この発明の実施の形態1にかかる波長多重光装置の送信側光増幅部と受信側光増幅部の詳細を示す構成図である。It is a block diagram which shows the detail of the transmission side optical amplification part of the wavelength multiplexing optical apparatus concerning Embodiment 1 of this invention, and a reception side optical amplification part. この発明の実施の形態1にかかる光信号のレベルダイヤである。3 is a level diagram of an optical signal according to the first embodiment of the present invention. この発明の実施の形態1にかかる光出力レベルと光入力レベル範囲を段階に分けたレベル分割図である。It is a level division diagram which divided the optical output level and optical input level range concerning Embodiment 1 of this invention into the step. この発明の実施の形態1にかかる光出力レベルの調整手順を示すフローチャートである。It is a flowchart which shows the adjustment procedure of the optical output level concerning Embodiment 1 of this invention. この発明の実施の形態2にかかる波長多重光装置の送信側光増幅部の詳細を示す構成図である。It is a block diagram which shows the detail of the transmission side optical amplifier of the wavelength multiplexing optical apparatus concerning Embodiment 2 of this invention. この発明の実施の形態3にかかる波長多重光装置の送信側光増幅部の詳細を示す構成図である。It is a block diagram which shows the detail of the transmission side optical amplification part of the wavelength multiplexing optical apparatus concerning Embodiment 3 of this invention.
 以下、この発明をより詳細に説明するために、この発明を実施するための形態について、添付の図面に従って説明する。
実施の形態1.
 以下、この発明の実施の形態1を図に基づいて説明する。図1は、この発明の実施の形態1にかかる波長多重光装置(光通信装置)の構成を示す。図において、波長多重光装置1は、受信側光増幅部2、光合分波部3、トランスポンダ部4、送信側光増幅部5、送信側監視制御光部6、受信側監視制御光部7を含み構成される。複数の波長多重光装置1は、各々が光ファイバーで構成される伝送路8を介して接続され、複数の異なる波長を合波した波長多重光信号を伝送する波長多重光通信システムを構成する。
Hereinafter, in order to explain the present invention in more detail, modes for carrying out the present invention will be described with reference to the accompanying drawings.
Embodiment 1 FIG.
Embodiment 1 of the present invention will be described below with reference to the drawings. FIG. 1 shows a configuration of a wavelength division multiplexing optical apparatus (optical communication apparatus) according to Embodiment 1 of the present invention. In the figure, a wavelength multiplexing optical device 1 includes a reception side optical amplification unit 2, an optical multiplexing / demultiplexing unit 3, a transponder unit 4, a transmission side optical amplification unit 5, a transmission side supervisory control light unit 6, and a reception side supervisory control light unit 7. Consists of. The plurality of wavelength division multiplexing optical devices 1 are connected via transmission lines 8 each composed of an optical fiber, and constitute a wavelength division multiplexing optical communication system that transmits a wavelength division multiplexed optical signal obtained by combining a plurality of different wavelengths.
 波長多重光通信システムにおいて、隣接の波長多重光装置1から送信された光信号は、伝送路8による損失で光レベルが低下する。受信側光増幅部2は、前記伝送路による損失を補償するために、受信した光信号を光増幅する機能を有する。 In the wavelength multiplexing optical communication system, the optical level of the optical signal transmitted from the adjacent wavelength multiplexing optical device 1 is lowered due to the loss of the transmission path 8. The receiving side optical amplifying unit 2 has a function of optically amplifying the received optical signal in order to compensate for the loss caused by the transmission path.
 光合分波部3は、複数の異なる波長の光信号を合波あるいは分波または透過する機能を有し、分派した光信号は、トランスポンダ部4へ出力される。トランスポンダ部4は、光合分波部3から出力された任意の波長の光信号から電気信号を取り出し、図示しない下流装置へ送信する機能と、下流装置から受信する電気信号を任意の波長の光信号に設定し、光合分波部3へ出力する機能を有する。トランスポンダ部4から出力された任意の波長の光信号は、光合分波部3において、受信側光増幅部2からの光信号と合波され、送信側光増幅部5へ出力される。 The optical multiplexing / demultiplexing unit 3 has a function of multiplexing, demultiplexing, or transmitting a plurality of optical signals having different wavelengths, and the divided optical signal is output to the transponder unit 4. The transponder unit 4 extracts an electrical signal from an optical signal having an arbitrary wavelength output from the optical multiplexing / demultiplexing unit 3 and transmits the electrical signal to a downstream device (not shown), and an optical signal having an arbitrary wavelength received from the downstream device And has a function of outputting to the optical multiplexing / demultiplexing unit 3. The optical signal having an arbitrary wavelength output from the transponder unit 4 is combined with the optical signal from the reception side optical amplification unit 2 in the optical multiplexing / demultiplexing unit 3 and output to the transmission side optical amplification unit 5.
 送信側光増幅部5は、波長多重光装置1内の損失を補間し、予め設定された伝送路出力レベル(光出力レベル)まで信号を光増幅する機能を有する。増幅した光信号は、隣接の波長多重光装置1と接続された伝送路8へ送信される。 The transmission side optical amplifying unit 5 has a function of interpolating the loss in the wavelength division multiplexing optical apparatus 1 and optically amplifying the signal to a preset transmission line output level (optical output level). The amplified optical signal is transmitted to the transmission path 8 connected to the adjacent wavelength multiplexing optical device 1.
 送信側光増幅部5の出力側に接続される送信側監視制御光部6は、送信側光増幅部5の性能情報や警報状態を収集し、隣接の波長多重光装置1へ通知する機能や、隣接の波長多重光装置1から通知された情報を、送信側光増幅部5へ通知する機能を有する。受信側光増幅部2の入力側に接続される受信側監視制御光部7は、受信側光増幅部2の性能情報や警報状態を収集し、隣接の波長多重光装置1へ通知する機能や、隣接の波長多重光装置1から通知された情報を、受信側光増幅部2へ通知する機能を有する。 The transmission-side supervisory control light unit 6 connected to the output side of the transmission-side optical amplification unit 5 collects performance information and alarm status of the transmission-side optical amplification unit 5 and notifies them to the adjacent wavelength multiplexing optical device 1 The information notified from the adjacent wavelength multiplexing optical device 1 has a function of notifying the transmitting side optical amplifying unit 5 of the information. The reception-side supervisory control light unit 7 connected to the input side of the reception-side optical amplification unit 2 collects performance information and alarm status of the reception-side optical amplification unit 2 and notifies the adjacent wavelength multiplexing optical device 1 The function of notifying the receiving side optical amplifying unit 2 of the information notified from the adjacent wavelength multiplexing optical device 1 is provided.
 図2は、送信側光増幅部5と受信側光増幅部2の内部構成を示す。送信側光増幅部5は、送信側光増幅器11と、その出力側に接続される光出力レベル検出素子(出力側光モニタ)12、入力側に接続される入力側レベル調整器13、および制御回路部14を含む。
送信側光増幅器11は、入力した信号を既定の増幅利得で光増幅する。光出力レベル検出素子12は、送信側光増幅器11の光出力レベルをモニタし、モニタ結果を制御回路部14と送信側監視制御光部6へ通知する。この光出力レベルは、伝送路8へ送信される送信側光増幅部5の光出力レベルと等しい。制御回路部14は、入力側レベル調整器13を駆動させ、送信側光増幅器11の光入力レベルを調整する。
FIG. 2 shows the internal configuration of the transmission side optical amplification unit 5 and the reception side optical amplification unit 2. The transmission side optical amplifying unit 5 includes a transmission side optical amplifier 11, an optical output level detection element (output side optical monitor) 12 connected to the output side, an input side level adjuster 13 connected to the input side, and a control. A circuit unit 14 is included.
The transmission side optical amplifier 11 optically amplifies the input signal with a predetermined amplification gain. The optical output level detection element 12 monitors the optical output level of the transmission side optical amplifier 11 and notifies the control circuit unit 14 and the transmission side monitoring control light unit 6 of the monitoring result. This optical output level is equal to the optical output level of the transmission side optical amplifying unit 5 transmitted to the transmission line 8. The control circuit unit 14 drives the input side level adjuster 13 to adjust the optical input level of the transmission side optical amplifier 11.
 受信側光増幅部2は、受信側光増幅器15と、その入力側に接続される光入力レベル検出素子(入力側光モニタ)16を含む。受信側光増幅器15は、入力した信号を既定の増幅利得で光増幅する。光入力レベル検出素子16は、受信側光増幅器15の光入力レベルをモニタし、モニタ結果を受信側監視制御光部7へ通知する。受信側監視制御光部7は、伝送路8を介して、送信側監視制御光部6へ光入力レベルモニタ結果を送信する。送信側監視制御光部6は、受信した光入力レベルモニタ結果を、光出力レベル検出素子12から通知された光出力レベルモニタ結果とともに制御回路部14へ通知する。 The reception side optical amplifying unit 2 includes a reception side optical amplifier 15 and an optical input level detection element (input side optical monitor) 16 connected to the input side thereof. The receiving side optical amplifier 15 optically amplifies the input signal with a predetermined amplification gain. The optical input level detection element 16 monitors the optical input level of the reception side optical amplifier 15 and notifies the reception side monitoring control light unit 7 of the monitoring result. The reception-side monitoring control light unit 7 transmits the optical input level monitoring result to the transmission-side monitoring control light unit 6 via the transmission path 8. The transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitor result together with the optical output level monitor result notified from the optical output level detection element 12.
 次に動作を説明する。送信側光増幅部5において、入力した光信号は、入力側レベル調整器13でレベル調整され、送信側光増幅器11で既定の増幅利得で光増幅される。既定のタイミング、例えばシステム起動時に、光出力レベル検出素子12は、モニタした送信側光増幅器11の光出力レベル(光出力レベルモニタ結果)を制御回路部14へ通知する。制御回路部14はこの通知を受け、光出力レベルが予め定めた起動時の基準値になるように入力側レベル調整器13を制御する。光出力レベルが起動時の基準値に調整された光信号は、送信側光増幅部5から伝送路8を介して隣接する波長多重光装置1へ送信される。 Next, the operation will be described. In the transmission side optical amplifying unit 5, the input optical signal is level-adjusted by the input side level adjuster 13 and optically amplified by the transmission side optical amplifier 11 with a predetermined amplification gain. At a predetermined timing, for example, when the system is activated, the optical output level detection element 12 notifies the control circuit unit 14 of the monitored optical output level (optical output level monitoring result) of the transmission side optical amplifier 11. Upon receiving this notification, the control circuit unit 14 controls the input side level adjuster 13 so that the light output level becomes a predetermined reference value at the time of activation. The optical signal whose optical output level is adjusted to the reference value at the time of activation is transmitted from the transmission side optical amplifying unit 5 to the adjacent wavelength division multiplexing optical device 1 through the transmission path 8.
 受信側光増幅部2は、伝送路8による損失でレベル低下した光信号を受信する。受信側光増幅部2において、光入力レベル検出素子16は、モニタした受信側光増幅器15への光入力レベルを光入力レベルモニタ結果として受信側監視制御光部7へ通知する。受信側監視制御光部7は、通知された光入力レベルモニタ結果を、伝送路8を介して、送信側監視制御光部6へ送信する。送信側監視制御光部6は、受信した光入力レベルモニタ結果と、光出力レベル検出素子12から通知される光出力レベルモニタ結果を、同一タイミングで制御回路部14へ通知する。 The receiving side optical amplifying unit 2 receives an optical signal whose level has been reduced due to a loss caused by the transmission path 8. In the receiving side optical amplifying unit 2, the optical input level detecting element 16 notifies the receiving side monitoring control light unit 7 of the monitored optical input level to the receiving side optical amplifier 15 as an optical input level monitoring result. The reception side monitoring control light unit 7 transmits the notified optical input level monitoring result to the transmission side monitoring control light unit 6 via the transmission path 8. The transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitoring result and the optical output level monitoring result notified from the optical output level detection element 12 at the same timing.
 制御回路部14は、予め設定されたフロー(例えば、後述する図5に示すフロー)に従い、通知された光入力レベルモニタ結果に応じて、受信側光増幅器15への光入力レベルが既定の目標値になるように、送信側光増幅部5の光出力レベルの目標値を決定する。そして、入力側レベル調整器13を制御して、送信側光増幅器11の光出力レベル、すなわち送信側光増幅部5の光出力レベルが決定した目標値になるように調整する。これにより、受信側光増幅器15への光入力レベルが規定の目標値に調整される。尚、送信側監視制御光部6が、受信側の光入力レベルモニタ結果と同一のタイミングで光出力レベルモニタ結果を制御回路部14へ通知することにより、制御回路部14が、調整途中の光出力レベルモニタ結果を用いて誤制御することを回避できる。 The control circuit unit 14 follows a preset flow (for example, the flow shown in FIG. 5 to be described later), and the optical input level to the reception-side optical amplifier 15 is a predetermined target according to the notified optical input level monitoring result. The target value of the optical output level of the transmission side optical amplifying unit 5 is determined so as to be a value. Then, the input side level adjuster 13 is controlled to adjust the optical output level of the transmission side optical amplifier 11, that is, the optical output level of the transmission side optical amplification unit 5 to the determined target value. As a result, the optical input level to the reception side optical amplifier 15 is adjusted to a prescribed target value. The transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the optical output level monitoring result at the same timing as the optical input level monitoring result on the receiving side, so that the control circuit unit 14 adjusts the light being adjusted. It is possible to avoid erroneous control using the output level monitor result.
 図3は、上記動作によるレベル調整後の波長多重光装置1内におけるレベルダイヤを示す。図において、横軸の(a)、(b)、(c)、(d)は、図2の同符号が示す箇所に対応し、(a)が送信側光増幅器11および送信側光増幅部5の出力箇所、(b)が受信側光増幅部2の入力箇所、(c)が受信側光増幅器15の入力箇所、(d)が受信側光増幅器15の出力箇所を示す。縦軸は、各箇所における光レベルを示し、(a)の光レベルは、光出力レベル検出素子12のモニタする光出力レベルモニタ結果、(b)および(c)は、光入力レベル検出素子16のモニタする光入力レベルモニタ結果と等しい。 FIG. 3 shows a level diagram in the wavelength division multiplexing apparatus 1 after the level adjustment by the above operation. In the figure, (a), (b), (c), and (d) on the horizontal axis correspond to the locations indicated by the same reference numerals in FIG. 2, and (a) shows the transmission side optical amplifier 11 and the transmission side optical amplification unit. 5, (b) shows the input location of the reception side optical amplifier 2, (c) shows the input location of the reception side optical amplifier 15, and (d) shows the output location of the reception side optical amplifier 15. The vertical axis indicates the light level at each location, the light level in (a) indicates the light output level monitoring result monitored by the light output level detection element 12, and (b) and (c) indicate the light input level detection element 16. Is equal to the result of monitoring the optical input level monitored.
 (a)での光レベルと、(b)での光レベルとの差が、伝送路8で受ける伝送路損失であり、受信側光増幅器15への光入力レベルが既定値になるように、伝送路損失が大きい場合は、(a)の光レベル、すなわち送信側光増幅部5の光出力レベルを大きくし、伝送路損失が小さい場合は、送信側光増幅部5の光出力レベルを小さくするように調整する。 The difference between the optical level in (a) and the optical level in (b) is the transmission path loss received in the transmission path 8, and the optical input level to the receiving side optical amplifier 15 becomes a predetermined value. When the transmission line loss is large, the optical level of (a), that is, the optical output level of the transmission side optical amplification unit 5 is increased, and when the transmission line loss is small, the optical output level of the transmission side optical amplification unit 5 is decreased. Adjust to
 図4は、送信側光増幅部5の光出力レベルと受信側光増幅器15の光入力レベルを、調整が可能な範囲内で段階分けしたテーブルの一例を示す。この段階分けの値(テーブル)は、予め制御回路部14が保持している。図において、送信側光増幅部5の光出力レベルを5段階(a,b,c,d,e)に分け、受信側光増幅器15の光入力レベルを5つの範囲(A-B、B-C、C-D、D-E、E-F)に分割している。 FIG. 4 shows an example of a table in which the optical output level of the transmission side optical amplifying unit 5 and the optical input level of the reception side optical amplifier 15 are divided in stages within an adjustable range. The control circuit unit 14 holds values for this step division (table) in advance. In the figure, the optical output level of the transmission side optical amplifying unit 5 is divided into five stages (a, b, c, d, e), and the optical input level of the reception side optical amplifier 15 is divided into five ranges (AB, B- C, CD, DE, and EF).
 図5は、図4に示すテーブルを適用した場合の、光出力レベルの調整(設定)フローチャートを示す。まず、波長多重光通信システムの起動時に、このシステムに含まれるノードと呼ばれる波長多重光装置1の数(ノード数)や、受信側光増幅器12の受信可能レベル範囲に基づいて、受信リミット値D(目標値)を決定し、これを制御回路部14が保持する。 FIG. 5 shows a light output level adjustment (setting) flowchart when the table shown in FIG. 4 is applied. First, when the wavelength division multiplexing optical communication system is activated, the reception limit value D is determined based on the number of wavelength division multiplexing optical devices 1 (number of nodes) called nodes included in the system and the receivable level range of the reception side optical amplifier 12. (Target value) is determined and held by the control circuit unit 14.
 ステップS1において、制御回路部14は、入力側レベル調整器13を制御して、送信側光増幅器11の光出力レベルを起動時の基準値cに設定する。受信側監視制御光部7は、受信側光増幅器15の光入力レベルモニタ結果を光入力レベル検出素子16から受け取り、送信側監視制御光部6へ通知する(ステップS2)。制御回路部14は、送信側監視制御光部6から通知された光入力レベルモニタ結果に応じて、以下のステップで入力側レベル調整器13のレベル制御量を決定する。 In step S1, the control circuit unit 14 controls the input side level adjuster 13 to set the optical output level of the transmission side optical amplifier 11 to the reference value c at the time of activation. The reception-side monitoring control light unit 7 receives the optical input level monitoring result of the reception-side optical amplifier 15 from the optical input level detection element 16, and notifies the transmission-side monitoring control light unit 6 (step S2). The control circuit unit 14 determines the level control amount of the input side level adjuster 13 in the following steps according to the optical input level monitor result notified from the transmission side monitoring control light unit 6.
 ステップS3において、光入力レベルモニタ結果(Rx)が、テーブルに定めた5つの光入力レベル範囲の外側(A以上、またはF以下)の場合は(ステップS3、Y)、調整不可と判断し、受信側光増幅器15を受信可能レベル範囲におさまる種類へ交換することが必要となる(ステップS4)。光入力レベルモニタ結果が、テーブルに定めた光入力レベル範囲の内側の場合(ステップS3、N)、当該光入力レベルモニタ結果がB以上かつA未満か否かを判断する(ステップS5)。B以上かつA未満の場合(ステップS5、Y)、送信側光増幅器11の光出力レベルを、cからeへ低下させるようにレベル制御量を決定する(ステップS6)。ステップS5が否(N)の場合、ステップS7で、入力レベルモニタ結果がC以上かつB未満か否かを判断する。C以上かつB未満の場合(ステップS7、Y)、送信側光増幅器11の光出力レベルを、cからdへ低下させるようにレベル制御量を決定する(ステップS8)。ステップS7が否(N)の場合、ステップS9で、入力レベルモニタ結果がD以上かつC未満か否かを判断する。D以上かつC未満の場合(ステップS9、Y)、送信側光増幅器11の光出力レベルを、cに維持する(ステップS10)。ステップS9が否(N)の場合、ステップS11で、入力レベルモニタ結果がE以上かつD未満か否かを判断する。E以上かつD未満の場合(ステップS11、Y)、送信側光増幅器11の光出力レベルを、cからbへ増加させるようにレベル制御量を決定する(ステップS12)。ステップS11が否(N)の場合、ステップS13で、入力レベルモニタ結果がF以上かつE未満であることを確認し(ステップS13、Y)、送信側光増幅器11の光出力レベルを、cからaへ増加させるようにレベル制御量を決定する(ステップS14)。 If the optical input level monitoring result (Rx) is outside the five optical input level ranges (A or higher or F or lower) defined in the table (step S3, Y) in step S3, it is determined that adjustment is impossible. It is necessary to replace the receiving side optical amplifier 15 with a type that falls within the receivable level range (step S4). If the optical input level monitor result is within the optical input level range defined in the table (step S3, N), it is determined whether or not the optical input level monitor result is greater than or equal to B and less than A (step S5). If it is greater than or equal to B and less than A (step S5, Y), the level control amount is determined so as to decrease the optical output level of the transmission side optical amplifier 11 from c to e (step S6). If step S5 is negative (N), it is determined in step S7 whether the input level monitor result is greater than or equal to C and less than B. If it is C or more and less than B (step S7, Y), the level control amount is determined so as to decrease the optical output level of the transmission side optical amplifier 11 from c to d (step S8). If step S7 is negative (N), it is determined in step S9 whether the input level monitor result is greater than or equal to D and less than C. When it is D or more and less than C (step S9, Y), the optical output level of the transmission side optical amplifier 11 is maintained at c (step S10). If step S9 is NO (N), it is determined in step S11 whether the input level monitor result is greater than or equal to E and less than D. If it is greater than or equal to E and less than D (step S11, Y), the level control amount is determined so as to increase the optical output level of the transmission side optical amplifier 11 from c to b (step S12). If step S11 is negative (N), it is confirmed in step S13 that the input level monitor result is F or more and less than E (step S13, Y), and the optical output level of the transmission side optical amplifier 11 is changed from c. The level control amount is determined so as to increase to a (step S14).
 上記フローにより決定されたレベル制御量に従って、制御回路部14は入力側レベル調整器13を駆動し、光レベル調整を完了する。 In accordance with the level control amount determined by the above flow, the control circuit unit 14 drives the input side level adjuster 13 to complete the light level adjustment.
 以上のように、この実施の形態1の波長多重光装置1では、受信側光増幅器15の光入力レベルの通知を受け、当該光入力レベルが既定の目標値になるように送信側光増幅部5の光出力レベルを調整する構成としたので、最大伝送路損失に合わせて、送信側光増幅部5が余分な光増幅をすることがなく、送信側光増幅部5の駆動電流を小さくして低消費電力化を実現することができる。 As described above, in the wavelength division multiplexing optical apparatus 1 according to the first embodiment, the transmission side optical amplifying unit receives the notification of the optical input level of the reception side optical amplifier 15 so that the optical input level becomes a predetermined target value. Since the optical output level of 5 is adjusted, the transmission side optical amplification unit 5 does not perform extra optical amplification in accordance with the maximum transmission path loss, and the drive current of the transmission side optical amplification unit 5 is reduced. Therefore, low power consumption can be realized.
 また、受信側光増幅部2には、受信側光増幅器15の入力ダイナミックレンジに対応させるために光入力レベルを低下させるレベル調整器を備えないので、余分な光損失が発生せず、必要なOSNRを確保できる。 Further, since the receiving side optical amplifying unit 2 does not include a level adjuster that lowers the optical input level in order to correspond to the input dynamic range of the receiving side optical amplifier 15, no extra optical loss occurs and it is necessary. OSNR can be secured.
 さらに、入力側レベル調整器13を送信側光増幅器11の入力側に配置することにより、送信側光増幅器11の入力ダイナミックレンジを大きく広げることなく光出力レベルを適正に調整できるので、光増幅利得の波長依存性が良好な特性となり、伝送性能を向上できる。 Further, by arranging the input side level adjuster 13 on the input side of the transmission side optical amplifier 11, the optical output level can be appropriately adjusted without greatly increasing the input dynamic range of the transmission side optical amplifier 11, so that the optical amplification gain is increased. As a result, the wavelength dependency is improved and the transmission performance can be improved.
 これらの伝送性能の向上により、波長多重光装置1を用いて、伝送距離の長距離化を実現可能な波長多重光通信システムを構成できる。 By improving the transmission performance, a wavelength division multiplexing optical communication system capable of realizing a long transmission distance can be configured using the wavelength division multiplexing optical device 1.
実施の形態2.
 図6は、この発明の実施の形態2にかかる波長多重光装置20の送信側光増幅部21の内部構成を示す。波長多重光装置20の構成は、図1に示す波長多重光装置1と同等であり、送信側光増幅部21の内部構成が送信側光増幅部5と異なる。受信側光増幅部2の内部構成は、図2と同等である。
Embodiment 2. FIG.
FIG. 6 shows an internal configuration of the transmission side optical amplifying unit 21 of the wavelength division multiplexing optical apparatus 20 according to the second embodiment of the present invention. The configuration of the wavelength multiplexing optical device 20 is the same as that of the wavelength multiplexing optical device 1 shown in FIG. 1, and the internal configuration of the transmission side optical amplification unit 21 is different from that of the transmission side optical amplification unit 5. The internal configuration of the reception side optical amplifying unit 2 is the same as that in FIG.
 図6において、送信側光増幅部21は、送信側光増幅器11と、その出力側に接続される出力側レベル調整器22、この出力側レベル調整器22の出力側に接続される光出力レベル検出素子(出力側光モニタ)12、および制御回路部14を含む。送信側光増幅器11は、入力した信号を既定の増幅利得で光増幅する。光出力レベル検出素子12は、出力側レベル調整器22でレベル調整された光信号のレベル、すなわち伝送路8へ送信される送信側光増幅部21の光出力レベルをモニタし、モニタ結果を制御回路部14と送信側監視制御光部6へ通知する。制御回路部14は、出力側レベル調整器22を駆動させ、送信側光増幅部21の光出力レベルを調整する。 In FIG. 6, the transmission side optical amplifier 21 includes a transmission side optical amplifier 11, an output side level adjuster 22 connected to the output side thereof, and an optical output level connected to the output side of the output side level adjuster 22. A detection element (output side optical monitor) 12 and a control circuit unit 14 are included. The transmission side optical amplifier 11 optically amplifies the input signal with a predetermined amplification gain. The optical output level detection element 12 monitors the level of the optical signal level adjusted by the output side level adjuster 22, that is, the optical output level of the transmission side optical amplifying unit 21 transmitted to the transmission line 8, and controls the monitoring result. The circuit unit 14 and the transmission side supervisory control light unit 6 are notified. The control circuit unit 14 drives the output side level adjuster 22 to adjust the optical output level of the transmission side optical amplifying unit 21.
 次に動作を説明する。送信側光増幅部21において、入力した光信号は、送信側光増幅器11で既定の増幅利得で光増幅され、出力側レベル調整器22でレベル調整される。既定のタイミング、例えばシステム起動時に、光出力レベル検出素子12は、モニタした送信側光増幅部21の光出力レベル(光出力レベルモニタ結果)を制御回路部14へ通知する。制御回路部14はこの通知を受け、光出力レベルが予め定めた起動時の基準値になるように出力側レベル調整器22を制御する。光出力レベルが起動時の基準値に調整された光信号は、送信側光増幅部5から伝送路8を介して隣接する波長多重光装置へ送信される。 Next, the operation will be described. In the transmission-side optical amplifier 21, the input optical signal is optically amplified with a predetermined amplification gain by the transmission-side optical amplifier 11, and the level is adjusted by the output-side level adjuster 22. At a predetermined timing, for example, when the system is activated, the optical output level detection element 12 notifies the control circuit unit 14 of the monitored optical output level (optical output level monitoring result) of the transmission side optical amplifying unit 21. Upon receiving this notification, the control circuit unit 14 controls the output side level adjuster 22 so that the light output level becomes a predetermined reference value at the time of activation. The optical signal whose optical output level is adjusted to the reference value at the time of activation is transmitted from the transmission side optical amplifying unit 5 to the adjacent wavelength division multiplexing optical device via the transmission path 8.
 受信側光増幅部2は、伝送路8による損失でレベル低下した光信号を受信する。受信側光増幅部2において、光入力レベル検出素子16は、モニタした受信側光増幅器15への光入力レベルを光入力レベルモニタ結果として受信側監視制御光部7へ通知する。受信側監視制御光部7は、通知された光入力レベルモニタ結果を、伝送路8を介して、送信側監視制御光部6へ送信する。送信側監視制御光部6は、受信した光入力レベルモニタ結果と、光出力レベル検出素子12から通知される光出力レベルモニタ結果を、同一タイミングで制御回路部14へ通知する。 The receiving side optical amplifying unit 2 receives an optical signal whose level has been reduced due to a loss caused by the transmission path 8. In the receiving side optical amplifying unit 2, the optical input level detecting element 16 notifies the receiving side monitoring control light unit 7 of the monitored optical input level to the receiving side optical amplifier 15 as an optical input level monitoring result. The reception side monitoring control light unit 7 transmits the notified optical input level monitoring result to the transmission side monitoring control light unit 6 via the transmission path 8. The transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitoring result and the optical output level monitoring result notified from the optical output level detection element 12 at the same timing.
 制御回路部14は、予め設定されたフロー(例えば、図5に示すフロー)に従い、通知された光入力レベルモニタ結果に応じて、受信側光増幅器15への光入力レベルが既定の目標値になるように、送信側光増幅部21の光出力レベルの目標値を決定する。そして、出力側レベル調整器22を制御して、送信側光増幅部21の光出力レベルが決定した目標値になるように調整する。これにより、受信側光増幅器15への光入力レベルが規定の目標値に調整される。尚、送信側監視制御光部6が、受信側の光入力レベルモニタ結果と同一のタイミングで光出力レベルモニタ結果を制御回路部14へ通知することにより、制御回路部14が、調整途中の光出力レベルモニタ結果を用いて誤制御することを回避できる。 In accordance with a preset flow (for example, the flow shown in FIG. 5), the control circuit unit 14 sets the optical input level to the reception side optical amplifier 15 to a predetermined target value according to the notified optical input level monitoring result. Thus, the target value of the optical output level of the transmission side optical amplifying unit 21 is determined. Then, the output side level adjuster 22 is controlled to adjust the optical output level of the transmission side optical amplifying unit 21 to the determined target value. As a result, the optical input level to the reception side optical amplifier 15 is adjusted to a prescribed target value. The transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the optical output level monitoring result at the same timing as the optical input level monitoring result on the receiving side, so that the control circuit unit 14 adjusts the light being adjusted. It is possible to avoid erroneous control using the output level monitor result.
 以上のように、この実施の形態2の波長多重光装置20では、受信側光増幅器15の光入力レベルの通知を受け、当該光入力レベルが既定の目標値になるように送信側光増幅部21の光出力レベルを調整する構成としたので、最大伝送路損失に合わせて、送信側光増幅部21が余分な光増幅をすることがなく、送信側光増幅部21の駆動電流を小さくして低消費電力化を実現することができる。 As described above, in the wavelength division multiplexing optical apparatus 20 according to the second embodiment, the transmission side optical amplifying unit receives the notification of the optical input level of the reception side optical amplifier 15 so that the optical input level becomes a predetermined target value. Since the optical output level of the transmission side 21 is adjusted, the transmission side optical amplification unit 21 does not perform extra optical amplification in accordance with the maximum transmission path loss, and the drive current of the transmission side optical amplification unit 21 is reduced. Therefore, low power consumption can be realized.
 また、受信側光増幅部2には、受信側光増幅器15の入力ダイナミックレンジに対応させるために光入力レベルを低下させるレベル調整器を備えないので、余分な光損失が発生せず、必要なOSNRを確保できる。 Further, since the receiving side optical amplifying unit 2 does not include a level adjuster that lowers the optical input level in order to correspond to the input dynamic range of the receiving side optical amplifier 15, no extra optical loss occurs and it is necessary. OSNR can be secured.
 さらに、送信側光増幅器11の後方(出力側)に出力側レベル調整器22を配置する構成は、出力側レベル調整器22の光出力レベルを直接用いて、制御回路部14が当該光出力レベルを決定した目標値になるように出力側レベル調整器22を制御するため、レベル調整のフィードバックループ構成が簡易になる。また、送信側光増幅器11の出力レベルを出力側レベル調整器22の通過損失分だけ高く設定することになるが、送信側光増幅器11の入力レベルを伝送路損失に応じて変化させる必要がないため、送信側光増幅器11の入力ダイナミックレンジを効率よく設定できるという効果がある。 Further, in the configuration in which the output side level adjuster 22 is disposed behind (output side) the transmission side optical amplifier 11, the control circuit unit 14 directly uses the optical output level of the output side level adjuster 22 so that the optical output level is adjusted. Since the output side level adjuster 22 is controlled so that the target value is determined, the level adjustment feedback loop configuration is simplified. Further, although the output level of the transmission side optical amplifier 11 is set higher by the passage loss of the output side level adjuster 22, it is not necessary to change the input level of the transmission side optical amplifier 11 in accordance with the transmission line loss. Therefore, there is an effect that the input dynamic range of the transmission side optical amplifier 11 can be set efficiently.
 これらの伝送性能の向上により、波長多重光装置20を用いて、伝送距離の長距離化を実現可能な波長多重光通信システムを構成できる。 By improving the transmission performance, a wavelength division multiplexing optical communication system capable of realizing a long transmission distance can be configured using the wavelength division multiplexing optical device 20.
実施の形態3.
 図7は、この発明の実施の形態3にかかる波長多重光装置30の送信側光増幅部31の内部構成を示す。波長多重光装置30の構成は、図1に示す波長多重光装置1と同等であり、送信側光増幅部31の内部構成が送信側光増幅部5と異なる。受信側光増幅部2の内部構成は、図2と同等である。
Embodiment 3 FIG.
FIG. 7 shows an internal configuration of the transmission side optical amplifying unit 31 of the wavelength division multiplexing apparatus 30 according to the third embodiment of the present invention. The configuration of the wavelength multiplexing optical device 30 is the same as that of the wavelength multiplexing optical device 1 shown in FIG. 1, and the internal configuration of the transmission side optical amplification unit 31 is different from that of the transmission side optical amplification unit 5. The internal configuration of the reception side optical amplifying unit 2 is the same as that in FIG.
 図7において、送信側光増幅部31は、送信側光増幅器32と、その出力側に接続される光出力レベル検出素子(出力側光モニタ)12、および制御回路部14を含む。送信側光増幅器32は、可変利得光増幅器であり、入力した信号を設定された増幅利得で光増幅する。光出力レベル検出素子12は、送信側光増幅器32の光出力レベル、すなわち伝送路8へ送信される送信側光増幅部31の光出力レベルをモニタし、モニタ結果を制御回路部14と送信側監視制御光部6へ通知する。制御回路部14は、送信側光増幅器32の光増幅利得を設定・制御し、送信側光増幅部31の光出力レベルを調整する。 7, the transmission side optical amplification unit 31 includes a transmission side optical amplifier 32, an optical output level detection element (output side optical monitor) 12 connected to the output side, and a control circuit unit 14. The transmission side optical amplifier 32 is a variable gain optical amplifier, and optically amplifies an input signal with a set amplification gain. The optical output level detection element 12 monitors the optical output level of the transmission side optical amplifier 32, that is, the optical output level of the transmission side optical amplification unit 31 transmitted to the transmission line 8, and the monitor result is transmitted to the control circuit unit 14 and the transmission side. The monitoring control light unit 6 is notified. The control circuit unit 14 sets and controls the optical amplification gain of the transmission side optical amplifier 32 and adjusts the optical output level of the transmission side optical amplification unit 31.
 次に動作を説明する。送信側光増幅部31において、入力した光信号は、送信側光増幅器32で設定された増幅利得で光増幅される。既定のタイミング、例えばシステム起動時に、光出力レベル検出素子12は、モニタした送信側光増幅部31の光出力レベル(光出力レベルモニタ結果)を制御回路部14へ通知する。制御回路部14はこの通知を受け、光出力レベルが予め定めた起動時の基準値になるように送信側光増幅器32の光増幅利得を設定する。光出力レベルが起動時の基準値に調整された光信号は、送信側光増幅部31から伝送路8を介して隣接する波長多重光装置へ送信される。 Next, the operation will be described. In the transmission side optical amplification unit 31, the input optical signal is optically amplified with the amplification gain set by the transmission side optical amplifier 32. At a predetermined timing, for example, when the system is activated, the optical output level detecting element 12 notifies the control circuit unit 14 of the monitored optical output level (optical output level monitoring result) of the transmission side optical amplifying unit 31. Upon receiving this notification, the control circuit unit 14 sets the optical amplification gain of the transmission side optical amplifier 32 so that the optical output level becomes a predetermined reference value at the time of activation. The optical signal whose optical output level is adjusted to the reference value at the time of activation is transmitted from the transmission side optical amplifying unit 31 to the adjacent wavelength division multiplexing optical device via the transmission path 8.
 受信側光増幅部2は、伝送路8による損失でレベル低下した光信号を受信する。受信側光増幅部2において、光入力レベル検出素子16は、モニタした受信側光増幅器15への光入力レベルを光入力レベルモニタ結果として受信側監視制御光部7へ通知する。受信側監視制御光部7は、通知された光入力レベルモニタ結果を、伝送路8を介して、送信側監視制御光部6へ送信する。送信側監視制御光部6は、受信した光入力レベルモニタ結果と、光出力レベル検出素子12から通知される光出力レベルモニタ結果を、同一タイミングで制御回路部14へ通知する。 The receiving side optical amplifying unit 2 receives an optical signal whose level has been reduced due to a loss caused by the transmission path 8. In the receiving side optical amplifying unit 2, the optical input level detecting element 16 notifies the receiving side monitoring control light unit 7 of the monitored optical input level to the receiving side optical amplifier 15 as an optical input level monitoring result. The reception side monitoring control light unit 7 transmits the notified optical input level monitoring result to the transmission side monitoring control light unit 6 via the transmission path 8. The transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the received optical input level monitoring result and the optical output level monitoring result notified from the optical output level detection element 12 at the same timing.
 制御回路部14は、予め設定されたフロー(例えば、図5に示すフロー)に従い、通知された光入力レベルモニタ結果に応じて、受信側光増幅器15への光入力レベルが既定の目標値になるように、送信側光増幅部31の光出力レベルの目標値を決定する。そして、送信側光増幅器32の光出力レベルが決定した目標値になるように、光増幅利得を設定・制御する。これにより、受信側光増幅器15への光入力レベルが規定の目標値に調整される。尚、送信側監視制御光部6が、受信側の光入力レベルモニタ結果と同一のタイミングで光出力レベルモニタ結果を制御回路部14へ通知することにより、制御回路部14が、調整途中の光出力レベルモニタ結果を用いて誤制御することを回避できる。 In accordance with a preset flow (for example, the flow shown in FIG. 5), the control circuit unit 14 sets the optical input level to the reception side optical amplifier 15 to a predetermined target value according to the notified optical input level monitoring result. Thus, the target value of the optical output level of the transmission side optical amplifying unit 31 is determined. Then, the optical amplification gain is set and controlled so that the optical output level of the transmission side optical amplifier 32 becomes the determined target value. As a result, the optical input level to the reception side optical amplifier 15 is adjusted to a prescribed target value. The transmission side monitoring control light unit 6 notifies the control circuit unit 14 of the optical output level monitoring result at the same timing as the optical input level monitoring result on the receiving side, so that the control circuit unit 14 adjusts the light being adjusted. It is possible to avoid erroneous control using the output level monitor result.
 以上のように、この実施の形態3の波長多重光装置30では、受信側光増幅器15の光入力レベルの通知を受け、当該光入力レベルが既定の目標値になるように送信側光増幅部31の光出力レベルを調整する構成としたので、最大伝送路損失に合わせて、送信側光増幅部31が余分な光増幅をすることがなく、送信側光増幅部31の駆動電流を小さくして低消費電力化を実現することができる。 As described above, in the wavelength division multiplexing apparatus 30 according to the third embodiment, the transmission side optical amplifying unit receives the notification of the optical input level of the reception side optical amplifier 15 so that the optical input level becomes a predetermined target value. Since the optical output level of 31 is adjusted, the transmission side optical amplifying unit 31 does not perform extra optical amplification in accordance with the maximum transmission path loss, and the drive current of the transmission side optical amplifying unit 31 is reduced. Therefore, low power consumption can be realized.
 また、受信側光増幅部2には、受信側光増幅器15の入力ダイナミックレンジに対応させるために光入力レベルを低下させるレベル調整器を備えないので、余分な光損失が発生せず、必要なOSNRを確保できる。 Further, since the receiving side optical amplifying unit 2 does not include a level adjuster that lowers the optical input level in order to correspond to the input dynamic range of the receiving side optical amplifier 15, no extra optical loss occurs and it is necessary. OSNR can be secured.
 さらに、送信側光増幅器32を可変利得光増幅器として、光増幅利得を直接制御するようにしたため、レベル調整器が不要となり、簡易な構成で送信側光増幅部31を実現できる。また、伝送路損失が小さい場合には、送信側光増幅器31の光増幅利得を小さくできるため、駆動電流を小さくして低消費電力化を実現できる。 Furthermore, since the transmission side optical amplifier 32 is used as a variable gain optical amplifier and the optical amplification gain is directly controlled, a level adjuster is not required, and the transmission side optical amplification unit 31 can be realized with a simple configuration. In addition, when the transmission line loss is small, the optical amplification gain of the transmission side optical amplifier 31 can be reduced, so that the drive current can be reduced to realize low power consumption.
 これらの伝送性能の向上により、波長多重光装置30を用いて、伝送距離の長距離化を実現可能な波長多重光通信システムを構成できる。 By improving the transmission performance, a wavelength division multiplexing optical communication system capable of realizing a long transmission distance can be configured using the wavelength division multiplexing apparatus 30.
 なお、本願発明はその発明の範囲内において、各実施の形態の自由な組み合わせ、あるいは各実施の形態の任意の構成要素の変形、もしくは各実施の形態において任意の構成要素の省略が可能である。 In the present invention, within the scope of the invention, any combination of the embodiments, any modification of any component in each embodiment, or omission of any component in each embodiment is possible. .
 この発明の光通信装置は、受信側光増幅器への光入力レベルが既定の目標値になるように、送信側光増幅部の光出力レベルを調整するように構成し、受信側光増幅器への光入力レベルを様々な伝送路損失によらず適切なレベルに調整することができ、かつ、不要な高レベル伝送による光信号の非線形劣化やOSNRの低下を抑制できるので、複数のノードで構成される波長多重光通信システムに用いるのに適している。 The optical communication apparatus according to the present invention is configured to adjust the optical output level of the transmission side optical amplifier so that the optical input level to the reception side optical amplifier becomes a predetermined target value. The optical input level can be adjusted to an appropriate level regardless of various transmission line losses, and non-linear degradation of the optical signal and OSNR decrease due to unnecessary high-level transmission can be suppressed. It is suitable for use in a wavelength division multiplexing optical communication system.
 1 波長多重光装置(光通信装置)、2 受信側光増幅部、5 送信側光増幅部、6 送信側監視制御光部、7 受信側監視制御光部、8 伝送路、11 送信側光増幅器、12 光出力レベル検出素子(出力側光モニタ)、13 入力側レベル調整器、14 制御回路部、15 受信側光増幅器、16 光入力レベル検出素子(入力側光モニタ)、20 波長多重光装置(光通信装置)、21 送信側光増幅部、22 出力側レベル調整器、30 波長多重光装置(光通信装置)、31 送信側光増幅部、32 送信側光増幅器。 1 wavelength multiplexed optical device (optical communication device), 2 receiving side optical amplifying unit, 5 transmitting side optical amplifying unit, 6 transmitting side monitoring control light unit, 7 receiving side monitoring control light unit, 8 transmission path, 11 transmitting side optical amplifier , 12 Optical output level detection element (output side optical monitor), 13 Input side level adjuster, 14 Control circuit section, 15 Reception side optical amplifier, 16 Optical input level detection element (input side optical monitor), 20 Wavelength multiplexing optical device (Optical communication device), 21 transmission side optical amplification unit, 22 output side level adjuster, 30 wavelength division multiplexing optical device (optical communication device), 31 transmission side optical amplification unit, 32 transmission side optical amplifier.

Claims (6)

  1.  光信号を増幅する送信側光増幅器を含み、当該送信側光増幅器により増幅した光信号を伝送路へ出力する送信側光増幅部、
     前記伝送路を介して受信した光信号を増幅する受信側光増幅器、
     前記受信側光増幅器への光入力レベルが既定の目標値になるように、前記送信側光増幅部の光出力レベルを調整する制御回路部を備えることを特徴とする光通信装置。
    A transmission-side optical amplifier that includes a transmission-side optical amplifier that amplifies the optical signal, and that outputs the optical signal amplified by the transmission-side optical amplifier to a transmission line;
    A receiving-side optical amplifier that amplifies an optical signal received via the transmission path;
    An optical communication apparatus comprising: a control circuit unit that adjusts an optical output level of the transmission side optical amplification unit so that an optical input level to the reception side optical amplifier becomes a predetermined target value.
  2.  前記受信側光増幅器への光入力レベルをモニタする入力側光モニタ、
     この入力側光モニタから光入力レベルモニタ結果を通知され、当該光入力レベルモニタ結果を前記伝送路を介して送信側へ送信する受信側監視制御光部をさらに備え、
     前記制御回路部は、受信側監視制御光部から送信される前記光入力レベルモニタ結果が、既定の目標値になるように、前記送信側光増幅部の光出力レベルを調整することを特徴とする請求項1記載の光通信装置。
    An input side optical monitor for monitoring an optical input level to the receiving side optical amplifier;
    The input side optical monitor is further notified of the optical input level monitor result, further comprising a reception side monitoring control light unit for transmitting the optical input level monitor result to the transmission side via the transmission line,
    The control circuit unit adjusts an optical output level of the transmission side optical amplifying unit so that the optical input level monitoring result transmitted from the reception side monitoring control light unit becomes a predetermined target value. The optical communication device according to claim 1.
  3.  前記送信側光増幅部の光出力レベルをモニタする出力側光モニタ、
     この出力側光モニタから光出力レベルモニタ結果を通知される送信側監視制御光部をさらに備え、
     前記送信側監視制御光部は、前記光出力レベルモニタ結果と、前記受信側監視制御光部から送信された前記光入力レベルモニタ結果を前記制御回路部へ通知し、
     前記制御回路部は、受信側光増幅器の光入力レベル範囲と送信側光増幅部の光出力レベル範囲をそれぞれ対応する複数の段階に分けたテーブルを保持し、当該テーブルに従い、前記光出力レベルモニタ結果が前記光入力レベルモニタ結果に対応した段階となるように、前記送信側光増幅部の光出力レベルを調整することを特徴とする請求項2記載の光通信装置。
    An output side optical monitor for monitoring the optical output level of the transmission side optical amplifying unit;
    A transmission-side monitoring control light unit that is notified of the optical output level monitoring result from the output-side optical monitor;
    The transmission side monitoring control light unit notifies the control circuit unit of the optical output level monitoring result and the optical input level monitoring result transmitted from the receiving side monitoring control light unit,
    The control circuit unit holds a table in which the optical input level range of the receiving-side optical amplifier and the optical output level range of the transmitting-side optical amplifying unit are respectively divided into a plurality of stages, and the optical output level monitor according to the table 3. The optical communication apparatus according to claim 2, wherein the optical output level of the transmission side optical amplifying unit is adjusted so that the result corresponds to the optical input level monitor result.
  4.  前記送信側光増幅部は、前記送信側光増幅器へ入力される光信号のレベルを調整する入力側レベル調整器をさらに備え、
     前記制御回路部は、前記入力側レベル調整器を制御することにより、前記送信側光増幅部の光出力レベルを調整することを特徴とする請求項1記載の光通信装置。
    The transmission-side optical amplification unit further includes an input-side level adjuster that adjusts the level of an optical signal input to the transmission-side optical amplifier,
    2. The optical communication apparatus according to claim 1, wherein the control circuit unit adjusts an optical output level of the transmission side optical amplification unit by controlling the input side level adjuster.
  5.  前記送信側光増幅部は、前記送信側光増幅器から出力された光信号のレベルを調整する出力側レベル調整器をさらに備え、
     前記制御回路部は、前記出力側レベル調整器を制御することにより、前記送信側光増幅部の光出力レベルを調整することを特徴とする請求項1記載の光通信装置。
    The transmission side optical amplification unit further includes an output side level adjuster that adjusts the level of the optical signal output from the transmission side optical amplifier,
    2. The optical communication apparatus according to claim 1, wherein the control circuit unit adjusts an optical output level of the transmission side optical amplification unit by controlling the output side level adjuster.
  6.  前記制御回路部は、前記送信側光増幅器の光増幅利得を制御することにより、前記送信側光増幅部の光出力レベルを調整することを特徴とする請求項1記載の光通信装置。 The optical communication apparatus according to claim 1, wherein the control circuit unit adjusts an optical output level of the transmission side optical amplification unit by controlling an optical amplification gain of the transmission side optical amplifier.
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