1. Field of the Invention
The present invention relates to optical transmitters, and more particularly, to an optical transmitter that performs deterioration detection of the optical transmitter using a laser diode (LD) and that controls an extinct ratio in accordance with a result of the deterioration detection.
2. Description of the Related Art
Optical transmitters using an LD as a light source are available for an optical transmission system capable of long-distance transmission. In order to make an optical transmission distance longer, optical transmitters control optical transmission power to a constant value. In addition, optical transmitters control an extinct ratio, which is a level ratio of a logical level “1” to a logical level “0” of an optical transmission signal, to be within a predetermined range.
Direct modulation of the LD is described next with reference to FIGS. 12 to 14. The transmission signal (2) is modulated in accordance with the modulation current Ip in the AMP 102, and applied to the LD 101 biased in accordance with the bias current Ib set to the LD threshold current Ith or more. Thus, the LD current (104) to be applied to the LD 101 functions as a signal having amplitude of the modulation current Ip centered on the operation point biased in an LD current range of the LD conversion efficiency curve (103) in which the LD is capable of oscillating, and the optical output (105) is gained due to a characteristic of the LD conversion efficiency curve (103). Accordingly, the extinct ratio is affected by the gradient of the LD conversion efficiency curve (103) and the size of the modulation current Ip.
The control circuit 113 receives a monitor current of the PD 111, and controls the LD drive circuit 112 using the Ip control signal (4) and the Ib control signal (5) shown in
Since LD conversion efficiency is susceptible to a temperature change and changes with age, the LD threshold current Ith and the gradient of the LD conversion efficiency curve (103) are not constant. Thus, there is a need to perform auto power control (APC) in order to maintain the optical output power constant and to perform auto modulation control (AMC) in order to maintain the extinct ratio within a predetermined range.
A technology, as a control technology for the APC and the AMC, in which in order to control optical output power and an extinct ratio of a laser diode to be constant with respect to long-term deterioration, optical output power of the laser diode before deterioration is detected, the detected value is stored as a reference value, and feedback control is performed for the reference value is disclosed in Japanese Unexamined Patent Application Publication No. 11-135871.
In addition, a technology in which an operation point of a bias current Ib and a motion range of a modulation current Ip of an LD conversion efficiency curve in the process of operation are compared with an operation point of the bias current Ib and a motion range of the modulation current Ip of the LD conversion efficiency curve set in advance and optimal optical output power and extinct ratio can be ensured by changing the bias current Ib and the modulation current Ip is disclosed in U.S. Pat. No. 6,414,974.
LD conversion efficiency differs depending on the type of LD. In addition, even for LDs of the same type, LD conversion efficiency differs depending on the ambient temperature and depending on aged deterioration. Generally, deterioration increases by use in high temperature environment and with age.
Accordingly, it is an object of the present invention to provide an optical transmitter using an LD that is capable of rapidly detecting deterioration of the LD. In addition, it is another object of the present invention to provide an optical transmitter capable of acquiring an optimal extinct ratio using a function to detect the deterioration of the LD and a method for controlling the optical transmitter.
An optical transmitter according to an aspect of the present invention includes an LD drive circuit for driving a laser diode in accordance with a laser diode current that superimposes a pilot signal on a “0” logic level and a “1” logic level of a transmission signal, the pilot signal having a low-frequency compared with the transmission signal, so as to become an opposite phase each other; a monitor circuit for monitoring an optical output of the laser diode; a filter circuit for extracting a low-frequency component of the pilot signal from an output of the monitor circuit; a phase compare circuit for comparing a phase of the low-frequency component of the pilot signal extracted by the filter circuit with a phase of the generated pilot signal; and a deterioration judgment circuit for judging whether or not the laser diode deteriorates in accordance with a comparison result of the phase compare circuit.
Accordingly, an optical transmitter using an LD that is capable of rapidly detecting deterioration of the LD can be provided.
An optical transmitter according to another aspect of the present invention further includes a control circuit for controlling one of or both of optical output power of the laser diode and an extinct ratio of the optical output of the laser diode in accordance with a monitor current output by the monitor circuit. The control circuit maintains control for optical output power of the laser diode and the extinct ratio of the optical output of the laser diode when the deterioration judgment circuit judges the laser diode deteriorating.
Accordingly, an optical transmitter that achieves an optimal extinct ratio using a function to detect deterioration of an LD can be provided.
A method for controlling optical transmitter according to an aspect of the present invention includes the steps of driving a laser diode in accordance with a laser diode current that superimposes a bias current on a modulation current for modulating a transmission signal on which superimposes a pilot signal; extracting a low-frequency component of a pilot signal from an output of the monitor circuit; comparing a phase of the low-frequency component of the pilot signal extracted by the filter circuit with a phase of the generated pilot signal; judging whether or not the laser diode deteriorates in accordance with a comparison result of the phase compare circuit; controlling one of or both of optical output power of the laser diode and an extinct ratio of the optical output of the laser diode in accordance with a monitor current output by the monitor circuit; and maintaining control for optical output power of the laser diode and the extinct ratio of the optical output of the laser diode when it is judged that the laser diode deteriorates.
Accordingly, a method for controlling optical transmitter capable of achieving an optimal extinct ratio using a function to detect deterioration of an LD can be provided.
According to the optical transmitter and the method for controlling optical transmitter, in a state in which LD conversion efficiency deteriorates since an LD provided in the optical transmitter deteriorates due to a temperature increase or deteriorates with age, the deterioration of the LD can be rapidly detected. In addition, an optical transmitter that is capable of controlling a bias current Ib and a modulation current Ip to achieve an optimal extinct ratio in accordance with a result of comparison between phases of pilot signals and a result of detection of amplitude values of the pilot signals can be provided.
Embodiments of the present invention will be described with reference to the drawings. In the descriptions below, the same or similar parts in the drawings are referred to with the same reference numerals.
It's explained by using FIGS. 1 to 3.
The pilot signal (1) has a frequency sufficiently lower than that of the transmission signal (2). For example, when the transmission signal (2) has a frequency of 2.4 GHz, the pilot signal (1) has a frequency of about 2 KHz. Although, in the first embodiment, the pilot signal (1) has a constant cycle of logical levels “1” and “0”, the pilot signal (1) may have a unique and specified pattern that allows an opposing optical receiver in a transmission system including the optical transmitter to recognize a transmission destination.
The generated pilot signal (1) is supplied to the LD drive circuit 10 and the phase compare circuit 11. As shown in
The Ip control signal (4) controls an amplitude value of the LD current (6). An amplification rate of the AMP (102) increases, and the LD current (6) grows by enlarging the Ip control signal (4). The Ib control signal (5) controls a center value of the LD current (6). The center value grows by enlarging the Ib control signal (5).
So, a motion range of the LD current (6) is determined in accordance with the Ip control signal (4), an operation point is determined in accordance with the Ib control signal (5), as shown in
Since
The PD 111 monitors part of the LD optical output (3), and outputs to the filter circuit 12 the PD current (7) obtained by photoelectric conversion.
The filter circuit 12 passes the PD current (7) in a frequency band equal to or lower than that of the pilot signal (1). Alternatively, the filter circuit 12 passes frequency components in the frequency band of the pilot signal (1). Since a pilot signal included in each of the LD optical output (3) and the PD current (7) that monitors the LD optical output (3) is superimposed on the modulation current Ip and modulated, the pilot signal has a positive phase on the side of logical level “1” and a negative phase on the side of logical level (0). Thus, when the LD optical output (3) is converted in accordance with the same gradient as the LD conversion efficiency curve (8), since the filter circuit 12 averages a pilot signal of a positive phase on the side of logical level “1” and a pilot signal of a negative phase on the side of logical level “0”, the filter circuit 12 does not output a pilot signal.
The phase compare circuit 11 judges whether or not the filter circuit 12 outputs a pilot signal. When the filter circuit 12 outputs a pilot signal, the phase compare circuit 11 judges whether or not the pilot signal output from the filter circuit 12 has a positive phase or a negative phase by comparing the phase of the pilot signal output from the filter circuit 12 with the generated pilot signal (1).
The deterioration judgement circuit 13 judges, in accordance with a comparison result of the phase compare circuit 11, that the LD 101 is in the normal state, that is, the LD 101 does not deteriorate when the filter circuit 12 does not output a pilot signal.
For an optical output (13) obtained by converting the LD current (6), a pilot signal of a positive phase on the side of logical level “1” is completely suppressed, in accordance with an LD conversion efficiency curve (18) when the LD 101 deteriorates. Similarly, for a PD current (17) that monitors the optical output (13), a pilot signal of a positive phase on the side of logical level “1” is completely suppressed.
Thus, the filter circuit 12 extracts only a pilot signal of a negative phase on the side of logical level “0”.
The phase compare circuit 11 compares the phase of the pilot signal of the negative phase on the side of logical level “0” with the phase of the generated pilot signal (1), and reports that the pilot signal of the negative phase is detected.
In accordance with the comparison result of the phase compare circuit 11, the deterioration judgement circuit 13 judges that the gradient of the LD conversion efficiency curve (18) is abnormal, and determines that the LD 101 deteriorates.
In the operation point and the motion range of the LD 101, for an optical output (23) obtained by converting the LD current (6), a pilot signal of a negative phase on the side of logical level “0” is suppressed, in accordance with the LD conversion efficiency curve (8). Similarly, for a PD current (27) that monitors the optical output (23), a pilot signal in which a negative phase on the side of logical level “0” is suppressed is acquired.
Since the filter circuit 12 averages a pilot signal of a positive phase on the side of logical level “1” and a pilot signal of a negative phase on the side of logical level “0”, the filter circuit 12 outputs a pilot signal of a positive phase on the side of logical level “1”.
The phase compare circuit 11 compares the phase of the pilot signal of the positive phase on the side of logical level “1” with the phase of the generated pilot signal (1), and reports to the deterioration judgement circuit 13 that the pilot signal of the positive phase is detected.
In accordance with the comparison result of the phase compare circuit 11, the deterioration judgement circuit 13 judges that the operation point and the motion range of the LD 101 are lower, and determines that the LD 101 does not deteriorate.
In accordance with the judgement result and the determination result of the deterioration judgement circuit 13, the control circuit 14 controls the LD drive circuit 10 using the Ib control signal (5) such that the bias current Ib increases in order to achieve a higher operation point.
With the configuration of the optical transmitter shown in
The amplitude compare circuit 15 compares the amplitude value of the pilot signal (1) with the amplitude value of a pilot signal obtained in the filter circuit 12 by averaging a pilot signal of a positive phase on the side of logical level “1” and a pilot signal of a negative phase on the side of logical level “0”.
In step S1, a result of phase comparison performed by the phase compare circuit 11 between the phase of the pilot signal (1) and the phase of the pilot signal filtered by the filter circuit 12 is judged. If a pilot signal does not appear in the filtered pilot signal, that is, if a pilot signal of a positive phase on the side of logical level “1” and a pilot signal of a negative phase on the side of logical level “0” are averaged and a pilot signal is not output, it is judged that it is in the normal state. For other cases, that is, if a pilot signal of a positive or negative phase appears in the filtered pilot signal, it is judged that it is not in the normal state.
In step S2, if it is judged in step S1 that it is not in the normal state, a result of amplitude comparison performed by the amplitude compare circuit 15 between the amplitude value of the pilot signal (1) and the amplitude value of the pilot signal filtered by the filter circuit 12 is judged. In accordance with the deterioration judgement condition shown in
In step S3, if the amplitude ratio is not within the normal range in step S2, it is determined that the LD 101 deteriorates and a warning is issued. The control circuit 18 may maintain control for optical output power of the LD 101 and the extinct ratio of the optical output of the LD 101. In addition, the control circuit 18 may control the optical output of the LD 101 to stop.
In step S4, if the result of phase comparison is normal in step S1 or if the result of amplitude comparison is normal in step S2, it is judged whether or not to control the extinct ratio of the optical output of the LD 101. If the present extinct ratio satisfies the characteristic of the optical transmission system including the optical transmitter to be controlled, it is judged that the extinct ratio is not to be controlled. If the extinct ratio is to be improved, it is judged that the extinct ratio is to be controlled.
In step S5, if it is judged in step S4 that the extinct ratio is not to be improved, the control circuit 18 controls the bias current Ib and the modulation current Ip to hold the present values.
In step S6, if it is judged in step S4 that the extinct ratio is to be improved, it is judged whether the result of phase comparison performed by the phase compare circuit 11 between the phase of the pilot signal (1) and the phase of the pilot signal filtered by the filter circuit 12 is a positive phase, a negative phase, or non-appearance of a pilot signal in the filtered pilot signal.
In step S7, if the result of phase comparison in step S6 is a positive phase, the control circuit 18 decreases the modulation current Ip. By decreasing the modulation current Ip, an operation of the pilot signal of the negative phase on the side of logical level “0” at the LD threshold current Ith or less is improved. The amount of change in the modulation current Ip is determined in accordance with control information stored in a control table (not shown) provided in advance in the control circuit 18.
In step S8, if the result of phase comparison in step S6 is a negative phase, the control circuit 18 decreases the bias current Ib or the modulation current Ip. By decreasing the bias current Ib, an operation point in an LD conversion efficiency curve is moved to a smaller LD current side, and an operation at a curve point in the LD conversion efficiency curve of a pilot signal of a positive phase on the side of logical level “1” whose gradient is smaller than the gradient of the LD conversion efficiency curve of a pilot signal of a negative phase on the side of logical level “0” is improved. The amount of decrease in the modulation current Ip or the bias current Ib is determined in accordance with control information stored in a control table (not shown) provided in advance in the control circuit 18.
In step S9, if the result of phase comparison in step S6 is that a pilot signal does not appear in the filtered pilot signal, the control circuit 18 increases the modulation current Ip. By increasing the modulation current Ip, the motion range in the LD conversion efficiency curve is increased, and the extinct ratio is increased.
In step S10, after the processing in step S7, S8, or S9 is performed, the pilot signal (1) is transmitted to judge whether or not the extinct ratio is improved by the processing. The processing in step S10 must be performed when an optical transmitter that appropriately outputs the pilot signal (1) is used. If an optical transmitter that always outputs the pilot signal (1) is used, the processing in step S10 can be omitted. By transmitting the pilot signal (1), the processing from step S1 is performed, and an extinct ratio that satisfies the characteristic of the optical transmission system can be achieved.
Number | Date | Country | Kind |
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2005-366471 | Dec 2005 | JP | national |