TUNABLE OPTICAL ADD/DROP MULTIPLEXER
20230231642 · 2023-07-20
Inventors
- Kui OUYANG (Wuhan, CN)
- Tenghao LI (Shenzhen, CN)
- Luo HAN (Dongguan, CN)
- Xiaoshi DONG (Shenzhen, CN)
- Fengpei SUN (Shenzhen, CN)
- Zhiwu CHANG (Shenzhen, CN)
Cpc classification
H04J14/0205
ELECTRICITY
H04J14/0212
ELECTRICITY
International classification
Abstract
This application provides a tunable optical add/drop multiplexer T-OADM. A beam adjustment apparatus changes an incident angle at which an incident beam is emitted onto an optical filter. After the optical filter splits the incident beam into a transmitted beam and a reflected beam, the beam adjustment apparatus further adjusts a transmission direction of the transmitted beam emergent from the optical filter and a transmission direction of the reflected beam emergent from the optical filter, so that the transmitted beam and the reflected beam are output to corresponding ports, so as to implement a flexible and controllable T-OADM apparatus. This application may be applied to the optical communication field, for example, may be used to implement add/drop multiplexing of tributary signals in an optical domain in fields such as a long-haul backbone and a metropolitan area network.
Claims
1. A tunable optical add/drop multiplexer (T-OADM), comprising: a first port configured to input an input beam comprising at least two wavelengths, a first beam adjustment apparatus configured to adjust a transmission direction of the input beam based on a first signal dropped by the T-OADM, so that the input beam is incident onto a first optical filter at a first incident angle corresponding to a wavelength of the first signal, the first optical filter configured to: receive a beam that is incident at the first incident angle, and split the incident beam into a first transmitted beam and a first reflected beam, wherein a wavelength of a beam comprised in the first transmitted beam is different from a wavelength of a beam comprised in the first reflected beam, a second beam adjustment apparatus configured to adjust a transmission direction of the first transmitted beam based on the first incident angle, a second port configured to output the first transmitted beam, and a third port configured to output the first reflected beam, wherein; the first beam adjustment apparatus is further configured to adjust a transmission direction of the first reflected beam based on the first incident angle.
2. The T-OADM according to claim 1, wherein the first beam adjustment apparatus comprises: an incident beam adjustment apparatus configured to adjust a transmission direction of the input beam, and a reflected beam adjustment apparatus configured to adjust a transmission direction of the first reflected beam.
3. The T-OADM according to claim 2, further comprising: a first optical apparatus, wherein the incident beam adjustment apparatus, the first optical filter, and the second beam adjustment apparatus sequentially located on a first optical axis, and the first optical apparatus configured to converge the beam emergent from the incident beam adjustment apparatus onto the second beam adjustment apparatus, wherein an included angle between the beam emergent from the incident beam adjustment apparatus and the first optical axis one-to-one correspond to an included angle between the beam emergent from the first optical apparatus and the first optical axis.
4. The T-OADM according to claim 3, wherein the first optical apparatus comprises a first optical 4f system, wherein the incident beam adjustment apparatus is located at a front focus of a front lens of the first optical 4f system, and the second beam adjustment apparatus is located at a rear focus of an optical path transmitted by the first optical filter of a rear lens of the first optical 4f system, and the reflected beam adjustment apparatus is located at a rear focus of an optical path reflected by the first optical filter of the rear lens of the first optical 4f system.
5. The T-OADM according to claim 3, wherein the first optical apparatus comprises a first lens, wherein the incident beam adjustment apparatus is located at a 2× focal length on a first side of the first lens, the second beam adjustment apparatus is located at a 2× focal length of an optical path transmitted by the first optical filter on a second side of the first lens, and the reflected beam adjustment apparatus is located at a 2× focal length of an optical path reflected by the first optical filter of the first lens.
6. The T-OADM according to claim 2, further comprising: a spherical reflector, configured to converge the beam emergent from the incident beam adjustment apparatus onto the second beam adjustment apparatus, wherein an included angle between the beam emergent from the incident beam adjustment apparatus one-to-one corresponds to an included angle between the beam emergent from the spherical reflector and the optical axis.
7. The T-OADM according to claim 2, further comprising: a second optical apparatus configured to converge the first transmitted beam emergent from the first optical filter onto the second beam adjustment apparatus, wherein an included angle between the beam emergent from the incident beam adjustment apparatus and the second optical axis one-to-one corresponds to an included angle between the beam emergent from the second optical apparatus and a second optical axis; a third optical apparatus; the input beam adjustment apparatus, the first optical filter, the second optical apparatus, wherein the second beam adjustment apparatus are sequentially located on the second optical axis; the first optical filter, the third optical apparatus, and the reflected beam adjustment apparatus are located on a third optical axis; and the third optical apparatus is configured to converge the first reflected beam emergent from the first optical filter onto the reflected beam adjustment apparatus, wherein the included angle between the beam emergent from the incident beam adjustment apparatus and the second optical axis one-to-one corresponds to an included angle between the beam emergent from the third optical apparatus and the third optical axis.
8. The T-OADM according to claim 7, wherein the second optical apparatus comprises: a second optical 4f system, wherein the incident beam adjustment apparatus is located at a front focus of a front lens of the second optical 4f system, and the second beam adjustment apparatus is located at a rear focus of a rear lens of the second optical 4f system; or the second optical apparatus comprises: a second lens, wherein the incident beam adjustment apparatus is located at a 2× focal length on a first side of the second lens, and the second beam adjustment apparatus is located at a 2× focal length on a second side of the second lens.
9. The T-OADM according to claim 7, wherein the third optical apparatus comprises: a third optical 4f system, wherein the incident beam adjustment apparatus is located at a front focus of an optical path that is reflected by the first optical filter and that is of a front lens of the third optical 4f system, and the reflected beam adjustment apparatus is located at a rear focus of a rear lens of the third optical 4f system; or the third optical apparatus comprises: a third lens, wherein the incident beam adjustment apparatus is located at a 2× focal length of an optical path reflected by the first optical filter on a first side of the third lens, and the reflected beam adjustment apparatus is located at a 2× focal length on a second side of the third lens.
10. The T-OADM according to claim 2, further comprising: a fourth optical apparatus configured to converge the beam emergent from the incident beam adjustment apparatus onto the first optical filter, wherein an included angle between the beam emergent from the incident beam adjustment apparatus and the fourth optical axis one-to-one corresponds to an included angle between the beam emergent from the fourth optical apparatus and a fourth optical axis, a fifth optical apparatus configured to converge the first transmitted beam emergent from the first optical filter onto the second beam adjustment apparatus, wherein an included angle between the first transmitted beam emergent from the first optical filter and the fourth optical axis one-to-one corresponds to an included angle between the beam emergent from the fifth optical apparatus and the fourth optical axis, and a sixth optical apparatus configured to converge the first reflected beam emergent from the first optical filter onto the reflected beam adjustment apparatus, wherein an included angle between the first reflected beam emergent from the first optical filter and the fifth optical axis one-to-one corresponds to an included angle between the beam emergent from the sixth optical apparatus and a fifth optical axis, wherein the incident beam adjustment apparatus, the fourth optical apparatus, the first optical filter, the fifth optical apparatus, and the second beam adjustment apparatus are sequentially disposed on the fourth optical axis. wherein the first optical filter, the sixth optical apparatus, and the reflected beam adjustment apparatus are sequentially disposed on the fifth optical axis.
11. The T-OADM according to claim 10, wherein the fourth optical apparatus comprises: a fourth optical 4f system, wherein the incident beam adjustment apparatus is located at a front focus of a front lens of the fourth optical 4f system, and the first optical filter is located at a rear focus of a rear lens of the fourth optical 4f system; or the fourth optical apparatus comprises: a fourth lens, wherein the incident beam adjustment apparatus is located at a 2× focal length on a first side of the fourth lens, and the first optical filter is located at a 2× focal length on a second side of the fourth lens.
12. The T-OADM according to claim 1, wherein the first optical filter comprises: at least two regions having different filter bandwidths, wherein the apparatus further comprises a driving component connected to the first optical filter configured to drive the first optical filter to move, so that the input beam is incident onto a first region in the at least two regions, wherein a filtering wavelength of the first region is the same as the wavelength of the first signal.
13. The T-OADM according to claim 1, wherein the first optical filter is a band-pass optical filter or a band-stop optical filter, wherein when the first optical filter is a band-pass optical filter, the first optical filter splits the incident beam into the first transmitted beam comprising a first wavelength and the first reflected beam comprising at least one wavelength, wherein the first wavelength is selected by the first optical filter when the beam is emitted to the first optical filter at the first incident angle; or when the first filter is a band-stop optical filter, the first optical filter splits the incident beam into the first reflected beam comprising a first wavelength and the first transmitted beam comprising at least one wavelength, wherein the first wavelength is selected by the first optical filter when the beam is emitted to the first optical filter at the first incident angle.
14. A tunable optical add/drop multiplexer T-OADM, comprising: a first port configured to input an input beam comprising at least two wavelengths, a rotating component configured to rotate to adjust tilt angles of an optical filter and a reflector, so that the input beam is incident onto the optical filter at a first incident angle, the optical filter configured to split the incident beam into a transmitted beam and a reflected beam, wherein a wavelength of a beam comprised in the transmitted beam is different from a wavelength of a beam comprised in the reflected beam, the reflector configured to reflect the reflected beam, so that the reflected beam is output to the reflection port, a transmission port configured to output the transmitted beam, and the reflection port configured to output the reflected beam, wherein the rotating component is connected to both the optical filter and the reflector, the optical filter is connected to the reflector, and there is an included angle between the optical filter and a reflective surface of the reflector.
15. The T-OADM according to claim 14, wherein the angle between the optical filter and the reflective surface of the reflector ranges from 40° to 120°.
16. The T-OADM according to claim 14, wherein an optical path length between a position of a beam spot formed by the beam on the optical filter and a position of a beam spot formed by the beam on the reflective surface of the reflector is less than or equal to 80 mm.
17. The T-OADM according to claim 14, wherein the reflective surface of the reflector is disposed perpendicular to the optical filter.
18. The T-OADM according to claim 17, further comprising: a dual-fiber collimator, and a first prism, wherein the dual-fiber collimator and the first prism are located between the first port and the optical filter located between the reflection port and the reflector, and wherein the input beam is incident onto the optical filter sequentially through the dual-fiber collimator and the first prism, and the reflected beam emergent from the reflector is incident onto the reflection port sequentially through the first prism and the dual-fiber collimator, wherein the input beam incident onto the optical filter is parallel to the reflected beam emergent from the reflector.
19. The T-OADM according to claim 14, further comprising: a second prism located between the optical filter and the transmission port configured to reduce a displacement of the transmitted beam; and a third prism located between the reflector and the reflection port configured to reduce a displacement of the reflected beam.
20. The T-OADM according to claim 14, wherein the optical filter is a band-pass optical filter or a band-stop optical filter, wherein when the optical filter is a band-pass optical filter, the optical filter splits the incident beam into the transmitted beam comprising a first wavelength and the reflected beam comprising at least one wavelength, wherein the first wavelength is selected by the optical filter when the beam is emitted to the optical filter at the first incident angle; or when the optical filter is a band-stop optical filter, the optical filter splits the incident beam into the reflected beam comprising a first wavelength and the transmitted beam comprising at least one wavelength, wherein the first wavelength is selected by the optical filter when the beam is emitted to the optical filter at the first incident angle.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0254] The following describes technical solutions of this application with reference to accompanying drawings.
[0255] First, related concepts and technologies in embodiments of this application are briefly described.
[0256] 1. Wavelength division multiplexing (WDM): is a technology that converges optical carrier signals (carrying various information) of two or more wavelengths at a transmit end through a multiplexer and couples the signals to a same optical fiber of an optical line for transmission.
[0257] 2. Micro-electromechanical system (MEMS): may construct complex mechanical structures in a small space, and a system size is measured in microns. The MEMS has been used in airbag sensors (accelerometers), pressure sensors, displays, adaptive light devices, scanners, printers, and data memories. A typical MEMS device consists of electronic circuits and mechanical devices.
[0258] 3. MEMS micro-mirror: is an optical device that integrates a micro-mirror and a MEMS driver by using a MEMS technology. The MEMS driver may change a deflection direction of the micro-mirror, and further change an emergent angle of a beam incident onto the micro-mirror.
[0259] 4. Liquid crystal on silicon (LCOS): is a very small matrix liquid crystal display device based on a reflection mode. The matrix is fabricated on a silicon chip by using a complementary metal oxide semiconductor (CMOS) technology. The LCOS may be used as a beam adjustment apparatus (or device).
[0260]
[0261] COMS drive electrodes are at the bottom of the LCOS, and each electrode represents a pixel. The LCOS shown in
[0262] 5. Beam polarization beam splitting (beam combining) device includes a polarization beam splitting (beam combining) crystal and a half-wave plate. The polarization beam splitting (beam combining) crystal is, for example, a neodymium-doped yttrium vanadate (YVO4) crystal or a polarization beam splitting prism such as a PBS crystal. This is not limited.
[0263] 6. Optical filter: may be of a band-pass type or a band-stop type, and has strong transmission (or reflection) effect on light within a wavelength range; and light within a wavelength range other than the wavelength range has reflection (or transmission) effect and has a filtering characteristic. The T-OADM apparatus can be implemented as a filter device. As an optical filter device, a dielectric thin film filter can be constructed by combining dielectric thin films with different refractive indexes and different thicknesses according to an embodiment.
[0264] A band-pass optical filter is used as an example. A filtering center wavelength of the optical filter is related to an incident angle θ at which a beam is incident onto the optical filter. The following formula (1) is met.
λ=λ.sub.0√{square root over (1−a sin θ.sup.2)} (1)
where λ.sub.0 is the filtering center wavelength of the optical filter corresponding to a case in which the beam is perpendicularly incident, λ is the filtering center wavelength of the optical filter corresponding to a case in which the incident angle is θ, and α is a fixed-value parameter. Herein, the filtering center wavelength is a center wavelength of the transmitted beam.
[0265]
[0266] In some embodiments, the optical filter optically filters incident light in a particular wavelength range and in a particular polarization state. Therefore, before the optical filter filters the beam, one beam may be polarized and split by using the beam polarization beam splitting device to obtain a polarized beam; and after the optical filter filters the beam, the beam may be polarized and combined by using the beam polarization beam combining device.
[0267] According to the foregoing relationship between the filtering center wavelength and the incident angle, it can be learned that the incident angle needs to be dynamically changed, so as to dynamically adjust the filtering center wavelength of the optical filter. The incident angle can be changed in two ways: One is to fixedly dispose the filter, and dynamically change the angle of the incident beam, so as to change the filtering center wavelength; and the other is to keep the incident beam unchanged, and use the rotating component to deflect the optical filter to change the incident angle of the incident light, so as to change the filtering center wavelength of the optical filter.
[0268] 7. OADM: is a device that implements adding/dropping and multiplexing of tributary signals in the optical domain. The device drops optical signals that need to be dropped locally in an optical channel and adds local optical signals to be sent to a user of another node. The device enables an optical network to have superior features such as flexibility, selectivity, and transparency, while improving reliability of the network, reducing node costs, and improving operation efficiency of the network. The T-OADM can dynamically change a wavelength of a dropped or added signal according to a requirement.
[0269] The OADM is mainly used in a WDM network system.
[0270] In a T-OADM apparatus, an optical filter may be disposed to change an incident angle at which an incident beam is incident onto the optical filter, to dynamically adjust a filtering center wavelength of the optical filter, thereby dynamically adjusting wavelengths of signals that need to be added to or dropped from the T-OADM apparatus.
[0271] In some embodiments, the optical filter may be fastened, and an incident angle at which an incident beam is incident onto the optical filter may be changed by using a beam adjustment apparatus (or a beam adjustment apparatus in combination with another apparatus or device), so that wavelengths of a transmitted beam and a reflected beam that are emergent from the optical filter can be dynamically adjusted. In an existing solution in which a transmitted beam and a reflected beam are coupled to corresponding ports, the transmitted beam and the reflected beam may be respectively reflected by a universal retroreflector apparatus, and reflected back to corresponding ports by using the thin film filter. As a result, a structure of this type of OADM apparatus is complex.
[0272] Based on this, an embodiment of this application provides an OADM apparatus. In the OADM apparatus, a beam adjustment apparatus changes an incident angle a which an incident beam is incident onto an optical filter. After the optical filter splits the incident beam into a transmitted beam and a reflected beam, the beam adjustment apparatus may further adjust a transmission direction of the transmitted beam emergent from the optical filter and a transmission direction of the reflected beam emergent from the optical filter, so that the transmitted beam and the reflected beam are output to corresponding ports.
[0273] In the following embodiments, an example in which the optical filter is a band-pass optical filter is used for description. It may be understood that the filters in the following embodiments may alternatively be band-stop optical filters. This is not limited in embodiments of this application.
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[0275] The first port 610 is configured to input an input beam including at least two wavelengths.
[0276] The first beam adjustment apparatus 620 is configured to adjust a transmission direction of an input beam based on a first signal dropped (or added) by the T-OADM, so that the input beam is incident onto the first optical filter 630 at a first incident angle, where the first incident angle corresponds to a wavelength of the first signal.
[0277] Herein, the first beam adjustment apparatus 620 may dynamically adjust the transmission direction of the input beam based on a wavelength of a signal that needs to be dropped (or added) by the T-OADM apparatus 600, so as to adjust a magnitude of the first incident angle. For example, the wavelength of the signal that needs to be dropped (or added) and the first incident angle meet the foregoing formula (1).
[0278] The first optical filter 630 is configured to receive the beam that is incident at the first incident angle, and split the incident beam into a first transmitted beam including a first wavelength and a first reflected beam including at least one wavelength. The first wavelength is a wavelength of a beam selected by the first optical filter 630 when the beam is incident onto the first optical filter 630 at the first incident angle. Correspondingly, the first wavelength is a wavelength corresponding to a signal that needs to be dropped (or added) by the T-OAMD apparatus 600.
[0279] Herein, the first optical filter 630 may be fixedly disposed. In this case, a value of the first incident angle may be dynamically adjusted by using the first beam adjustment apparatus 620, so that the T-OADM apparatus 600 drops (or adds) a signal of the first wavelength.
[0280] The second beam adjustment apparatus 640 is configured to adjust a transmission direction of the first transmitted beam based on the first incident angle.
[0281] The second port 650 is configured to output the first transmitted beam.
[0282] The first beam adjustment apparatus 620 is further configured to adjust a transmission direction of the first reflected beam based on the first incident angle.
[0283] The third port 660 is configured to output the first reflected beam.
[0284] For example, in this application, the output transmitted beam may include all or a part of the output transmitted beams. This is not limited. The output reflected beam may include all or a part of the output reflected beams. This is not limited.
[0285] In some embodiments, the first beam adjustment apparatus 620 may be configured to adjust the transmission direction of the first reflected beam, so that the first reflected beam is output to the third port 660. In this case, the third port 660 is configured to output the first reflected beam.
[0286] In some other embodiments, when the OADM apparatus 600 further includes a second optical filter, the first beam adjustment apparatus 620 may be further configured to adjust the transmission direction of the first reflected beam, so that the first reflected beam is output to the second optical filter. In this case, the second optical filter may further perform optical filtering on the first reflected beam; and correspondingly, the third port 660 is configured to output a part of beams in the first reflected beam.
[0287] Therefore, in an embodiment of the application, the beam adjustment apparatus adjusts, based on the first signal that needs to be dropped (or added) by the T-OADM, the first incident angle at which the incident beam is incident onto the optical filter; and after the optical filter splits the incident beam into the transmitted beam and the reflected beam, the beam adjustment apparatus further adjusts, based on the first incident angle, the transmission direction of the transmitted beam emergent from the optical filter, and adjusts, based on the first incident angle, the transmission direction of the reflected beam emergent from the optical filter, so that the transmitted beam and the reflected beam are output to corresponding ports, thereby implementing a flexible and controllable T-OADM apparatus.
[0288] In some optional embodiments, the T-OADM apparatus 600 may further include a control unit. The control unit may be configured to:
[0289] receive an instruction, where the instruction indicates a wavelength of a first signal that needs to be dropped (or added) by the T-OADM apparatus. The control unit may be further configured to determine, based on the first wavelength, a first deflection angle of the first beam adjustment apparatus for the input beam, a second deflection angle of the second beam adjustment apparatus for the first transmitted beam, and a third deflection angle of the first beam adjustment apparatus for the first reflected beam.
[0290] Then, the control unit may be configured to: control, based on the first deflection angle, the first beam adjustment apparatus to adjust the transmission direction of the input beam; control, based on the second deflection angle, the second beam adjustment apparatus to adjust the transmission direction of the first transmitted beam; and control, based on the third deflection angle, the first beam adjustment apparatus to adjust the transmission direction of the first reflected beam.
[0291] Therefore, in an embodiment of the application, the control unit can receive the wavelength of the first signal that needs to be dropped (or added) by the T-OADM apparatus, and control, based on the wavelength of the first signal, a deflection angle of each beam adjustment apparatus for a beam, so that the wavelength of the signal that is dropped or added by the T-OADM apparatus can be flexibly controlled according to an actual requirement, thereby implementing a more flexible and controllable T-OADM apparatus.
[0292] In an embodiment, the control unit may be preconfigured to store a plurality of wavelengths of signals that can be dropped or added by the T-OADM apparatus, and deflection angles that are of the beam adjustment apparatus for the incident beam, the transmitted beam, and the reflected beam and that correspond to each wavelength. When obtaining the wavelength of the signal that needs to be dropped or added by the T-OADM apparatus, the control unit may determine, based on the preconfiguration, deflection angles that are of the beam adjustment apparatus for the incident beam, the transmitted beam, and the reflected beam and that correspond to the wavelength.
[0293] In an embodiment, the control unit may prestore a correspondence between a wavelength of a signal that can be dropped or added by the T-OADM apparatus and deflection angles of the beam adjustment apparatus for the incident beam, the transmitted beam, and the reflected beam. When obtaining the wavelength of the signal that needs to be dropped or added by the T-OADM apparatus, the control unit may determine, based on the correspondence, the angles by which the beam adjustment apparatus deflects the incident beam, the transmitted beam, and the reflected beam and that correspond to the wavelength.
[0294] In some embodiments, the first beam adjustment apparatus 620 may include an incident beam adjustment apparatus and a reflected beam adjustment apparatus. The incident beam adjustment apparatus is configured to adjust a transmission direction of an input beam, so that the input beam is incident onto the first optical filter 630 at the first incident angle; and the reflected beam adjustment apparatus is configured to adjust a transmission direction of the first reflected beam. In this way, an optical path can be set more flexibly.
[0295] For example, the incident beam adjustment apparatus and the reflected beam adjustment apparatus each may be a MEMS micro-mirror or an LCOS. This is not limited in an embodiment of the application.
[0296] In some other embodiments, the first beam adjustment apparatus 620 may include a dual-reflective-surface MEMS micro-mirror. One reflective-surface micro-mirror in the dual-reflective-surface MEMS micro-mirror is configured to adjust the transmission direction of the input beam, so that the input beam is incident onto the first optical filter 630 at the foregoing first incident angle. The other reflective-surface micro-mirror in the dual-reflective-surface MEMS micro-mirror is configured to adjust a transmission direction of the first reflected beam, so that the reflected beam is coupled to a corresponding port.
[0297] In an embodiment, deflection directions of the two reflective-surface micro-mirrors in the foregoing dual-reflective-surface MEMS micro-mirror are the same. In this case, the deflection directions of the two reflective-surface micro-mirrors may be controlled by using one MEMS driver.
[0298] In some embodiments, the second beam adjustment apparatus 640 may be implemented by a MEMS micro-mirror or an LCOS. This is not limited in an embodiment of the application.
[0299] In some embodiments, the first port 610 may be further connected to a fiber collimator, and is configured to collimate a beam emergent from the first port 610. However, this embodiment of this application is not limited thereto.
[0300] In some embodiments, the second port 650 is further configured to input an input beam of the first wavelength; and the input beam is transmitted through the first optical filter 630, and is output to the first port 610. In this case, the first port 610 is further configured to output the beam transmitted by the first optical filter 630.
[0301] In some embodiments, the third port 660 is further configured to input a beam output from another port; and the beam is reflected by the first optical filter 630 and output to the first port 610. In this case, the first port 610 is further configured to output the beam reflected by the first optical filter 630.
[0302] In an embodiment of the application, the first port 610 may be used as both an input port and an output port, and therefore may be referred to as an input/output port 610. The second port 650 may be used as both an input port and an output port, and therefore may also be referred to as a first transmission input/output port 650. The third port 660 may be used as both an input port and an output port, and therefore may also be referred to as a first reflection input/output port 660. This is not limited in this application. The following describes the T-OADM apparatus by using an example in which the first port 610 is the input/output port 610, the second port 650 is the first transmission input/output port 650, and the third port is the first reflection input/output port.
[0303] For example, when a signal of the first wavelength is added to the OADM apparatus 600, an input beam of the first wavelength may be input through the first transmission input/output port 650, and the input beam is incident onto the first optical filter 630 through the second beam adjustment apparatus 640, and is incident onto the first beam adjustment apparatus 620 by the first optical filter 630 through transparent transmission, and further reflected to the input/output port 610 by the first beam adjustment apparatus, so as to implement adding of the signal of the first wavelength.
[0304] The other port may be a reflection input/output port of another OADM apparatus, that is, another reflection input/output port. The beam output from the reflection input/output port should be transparently transmitted without being affected. In an embodiment, a beam output by the another reflection input/output port may be input to the first reflection input/output port 660. The beam input to the first reflection input/output port 660 is incident onto the first optical filter 630 through the first beam adjustment apparatus 620, then reflected to the first beam adjustment apparatus 620 by using the first optical filter 630, and then reflected to the input/output port by the first beam adjustment apparatus 620, so as to implement transparent transmission of the beam output from the another reflection input/output port.
[0305] Correspondingly, the beam output from the first reflection input/output port 660 may also be input to the another reflection input/output port, so as to implement transparent transmission of the beam output from the first reflection input/output port 660.
[0306] The following describes eight T-OADM apparatuses provided in embodiments of this application with reference to
[0307] It should be noted that, in
[0308] In the T-OADM apparatuses in
[0309] In
[0310] It should be noted that, in an actual T-OADM apparatus, an intersection point between an optical axis and a device or an apparatus includes not only a position at which the optical axis accurately intersects the device or the apparatus, but also an area whose center is a position at which the optical axis accurately intersects the device or the apparatus, that is, a position slightly deviated from the intersection point by a distance. This is not limited in this application.
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[0312] In
[0313] It should be noted that, in an actual T-OADM apparatus, disposing a device or an apparatus at a focus of a lens includes not only accurately disposing the device or the apparatus at the focus of the lens, but also disposing the device or the apparatus near the focus of the lens, that is, a position slightly deviated from the focus by a distance. This is not limited in this application. In addition, disposing the center of the device or the apparatus on the optical axis includes not only accurately disposing the center of the device or the apparatus on the optical axis, but also disposing the center of the device or the apparatus near the optical axis, that is, a position slightly deviated from the optical axis by a distance. This is not limited in this application.
[0314] In some possible implementations, a focal length of the lens 1 in
[0315] In some other possible implementations, the focal length of the lens 1 in
[0316] Refer to
[0317] After the first transmitted light is incident onto the MEMS2 micro-mirror 640, the MEMS2 micro-mirror 640 adjusts an angle of the first transmitted light (that is, adjusts a transmission direction of the first transmitted light), so that the first transmitted light passes through the polarization beam combining device 683 for polarization recovery, and is coupled to the first transmission input/output port 650. The first transmission input/output port 650 outputs the first transmitted light, so as to implement dropping of a signal.
[0318] After the first reflected light is incident onto the MEMS3 micro-mirror 622, the MEMS3 micro-mirror 622 adjusts an angle of the first reflected light (that is, adjusts a transmission direction of the first transmitted light), so that the first reflected light passes through the polarization beam combining device 682 for polarization recovery, and then the first reflected light is coupled to the first reflection input/output port 660. The first reflection input/output port 660 outputs the first reflected light, to implement transparent transmission of a signal.
[0319] Correspondingly, so as to implement signal adding, a transparently transmitted signal emergent from the reflection input/output port may be input from the first reflection input/output port 660, and a signal that needs to be added is coupled to the first transmission input/output 650 for input. The transparently transmitted signal can be reflected to the first optical filter 630 by using the MEMS3 micro-mirror 622, then reflected to the first optical apparatus 671 by using the first optical filter 630, and then coupled to the input/output port 610 by using the MEMS1 micro-mirror 621, so that the signal is added to the WDM network. The added signal can be reflected to the first optical filter 630 through the MEMS2 micro-mirror 640, then transmitted to the first optical apparatus 671 through the first optical filter 630, and then coupled to the input/output port 610 through the MEMS2 micro-mirror 621, so that the signal is added to the WDM network.
[0320] In the T-OADM apparatus shown in
[0321] In some embodiments, the T-OADM apparatus may further include a control unit, configured to control deflection directions and deflection angles of the MEMS1 micro-mirror 621, the MEMS2 micro-mirror 640, and the MEMS3 micro-mirror 622.
[0322] In an embodiment, the control unit may be preconfigured to store a plurality of wavelengths of signals that can be dropped or added by the T-OADM apparatus, and deflection angles of the MEMS1 micro-mirror 621, the MEMS2 micro-mirror 640, and the MEMS3 micro-mirror 622 that correspond to each wavelength. For example, a wavelength and a deflection angle of each MEMS micro-mirror corresponding to each wavelength may be stored in a table form. When receiving an instruction for adjusting a wavelength of a signal dropped or added by the T-OADM apparatus, the control unit may look up a table to obtain a deflection angle required by each MEMS micro-mirror.
[0323] In an embodiment, the control unit may prestore a mapping relationship between a wavelength and an adjustment angle of each MEMS micro-mirror. When receiving an instruction for adjusting a wavelength of a signal dropped or added by the T-OADM apparatus, the control unit may determine, based on the wavelength of the signal that needs to be dropped or added and the stored mapping relationship, a deflection angle required by each MEMS micro-mirror.
[0324] After obtaining the deflection angle of each MEMS micro-mirror, the control unit may set the reflector of each of the three MEMS micro-mirrors to an angle, to control the T-OADM apparatus to drop or add a signal of a wavelength.
[0325] For example, after determining an adjustment manner (for example, a deflection angle) of each MEMS micro-mirror, the control unit may send a control signal to a driver of each MEMS micro-mirror. The driver of the MEMS micro-mirror may adjust the MEMS micro-mirror to a corresponding angle based on the control information. The following describes an example of an adjustment manner of each MEMS micro-mirror.
[0326] Still refer to
[0327]
[0328] When a wavelength of a signal that needs to be dropped or added by the T-OADM apparatus is adjusted from the wavelength λ1 to the wavelength λ2, that is, the filtering center wavelength of the first optical filter 630 needs to be adjusted from the wavelength λ1 to the wavelength λ2, it may be deduced (for example, deduced according to the foregoing formula (1) or
[0329]
[0330] That is, after the MEMS1 micro-mirror 621 is further rotated counterclockwise by λα/2, the included angle between the beam emergent from the MEMS1 micro-mirror 621 and the optical axis 1 is λα. The input beam passes through the lens 1 and the lens 2, and the incident angle at which the input beam is incident onto the first optical filter 630 is (α+Δα). In this case, the wavelength of the beam transmitted from the first optical filter 630 is λ2, so that the filtering center wavelength of the first optical filter 630 can be adjusted.
[0331] Still refer to
[0332] An included angle between the reflected beam emergent from the first optical filter 630 and the optical axis 2 is Δα. In this case, a deflection angle of the MEMS3 micro-mirror 622 may be further adjusted. That is, on the basis that the included angle between the original input beam and the normal line of the MEMS3 micro-mirror 622 is β, the MEMS2 micro-mirror 622 rotates by λα/2 in the counterclockwise direction (the dashed line of the MEMS3 micro-mirror 622 in the figure is a schematic diagram before rotation, and the solid line is a schematic diagram after rotation), so that an included angle between the normal line of the MEMS3 micro-mirror 622 and the optical axis 2 is (β+Δα/2), so as to couple the reflected beam to the first reflection input/output port 660.
[0333] It should be noted that, in a case in which focal lengths of the lens 1 and the lens 2 in the optical 4f system in
[0334] It should be further noted that the foregoing adjustment manner of the MEMS micro-mirror is described based on the optical structure in
[0335] It may be understood that, when the beam adjustment apparatus in the T-OADM apparatus is an LCOS, for example, when an LCOS1 adjusts the transmission direction of the incident beam, an LCOS2 adjusts the transmission direction of the transmitted beam, and an LCOS3 adjusts the transmission direction of the reflected beam, the control unit may be preconfigured to store a plurality of wavelengths of signals that can be dropped or added by the T-OADM apparatus, and values of voltages that are applied to the LCOS1, the LCOS2, and the LCOS3 and that correspond to each wavelength (for example, stored in a table form), or to store a mapping relationship between a signal wavelength that can be dropped or added by the T-OADM apparatus and values of voltages applied to the LCOS1, the LCOS2, and the LCOS3. In this way, after obtaining the voltage value applied to each LCOS, the control unit may apply voltages of values to the three LCOSs, so as to control the T-OADM apparatus to drop or add a signal of a wavelength.
[0336]
[0337] Centers of the MEMS1 micro-mirror 621, the lens 1, and the MEMS2 micro-mirror 640 are all disposed on the optical axis 1. Further, the MEMS1 micro-mirror 621 is located at a 2× focal length on a first side (a front side) of the lens 1, the MEMS2 micro-mirror 640 is located at a 2× focal length that is on a second side (a rear side) of the lens 1 and that is on a transmission optical path of the first optical filter 630 (that is, the 2× focal length on the rear side of the lens 1), and the MEMS3 micro-mirror 622 is located at a 2× focal length that is of the lens 1 and that is on a reflection optical path (the optical path is a folded optical path) of the first optical filter 630.
[0338] It should be noted that, in an actual T-OADM apparatus, disposing a device or an apparatus at a 2× focal length of a lens includes not only accurately disposing the device or the apparatus at the 2× focal length of the lens, but also disposing the device or the apparatus near the 2× focal length of the lens, that is, a position slightly deviated from the 2× focal length by a distance. This is not limited in this application.
[0339] Refer to
[0340] In an embodiment, for a process of filtering the input beam by using the first optical filter, coupling the first transmitted beam to the first transmission input/output port, and coupling the first reflected beam to the first reflection input/output port, refer to the description in
[0341] In the T-OADM apparatus shown in
[0342] In
[0343] In
[0344]
[0345] In an embodiment, as shown in
[0346] In
[0347] Further, the MEMS1 micro-mirror 621 is disposed at a front focus of the lens 1, and the MEMS2 micro-mirror 640 may be located at a rear focus of the lens 2. In addition, the MEMS1 micro-mirror 621 is located at a front focus of an optical path (that is, a folded optical path) reflected by the first optical filter 630 of the lens 3, and the MEMS3 micro-mirror 622 is located at a rear focus of the lens 4.
[0348] In some possible implementations, a focal length of the lens 1 in
[0349] In some other possible implementations, the focal length of the lens 1 in
[0350] In some possible implementations, a focal length of the lens 3 in
[0351] In some other possible implementations, the focal length of the lens 3 in
[0352] Refer to
[0353]
[0354] In
[0355] Further, the MEMS1 micro-mirror 621 is disposed at a 2× focal length on a first side (a front side) of the lens 1, and the MEMS2 micro-mirror 640 may be located at a 2× focal length on a second side (a rear side) of the lens 1, the MEMS1 micro-mirror 621 is located a 2× focal length of the folded optical path reflected by the first optical filter 630 of the lens 2, and the MEMS3 micro-mirror 622 is located a 2× focal length on the rear side of the lens 2. In this way, an included angle between the beam emergent from the MEMS1 micro-mirror 621 and the optical axis 1 is the same as an included angle between the beam emergent from the lens 1 and the optical axis 1, and an included angle between the beam emergent from the MEMS1 micro-mirror 621 and the optical axis 1 is the same as an included angle between the beam emergent from the lens 2 and the optical axis 2.
[0356] Refer to
[0357] It should be noted that, in
[0358] In the T-OADM apparatus shown in
[0359] In this way, deflection of the MEMS1 micro-mirror 621 can be adjusted to control a magnitude of the first incident angle at which the input beam is incident onto the first optical filter, so that a wavelength of a signal dropped or added by the T-OADM apparatus can be controlled. In addition, beams that are emergent from the MEMS1 micro-mirror 621 in different directions are converged by using the second optical apparatus and the third optical apparatus, so that a structure of the T-OADM apparatus can be more compact, and a volume of the T-OADM apparatus can be reduced.
[0360] In
[0361] In
[0362]
[0363] In an embodiment, as shown in
[0364] In
[0365] Further, the MEMS1 micro-mirror 621 is disposed at a front focus of the lens 1, the first optical filter 630 is located at a rear focus of the lens 2 and at a front focus of the lens 3, the MEMS2 micro-mirror 640 may be located at a rear focus of the lens 4, the first optical filter 630 is located at a front focus of the lens 5, and the MEMS3 micro-mirror 622 is located at a rear focus of the lens 6.
[0366] In some possible implementations, in
[0367] Refer to
[0368]
[0369] In
[0370] Further, the MEMS1 micro-mirror 621 is located at a 2× focal length on a first side (a front side) of the lens 1, and the first optical filter 630 is located at a 2× focal length on a second side (a rear side) of the lens 1 and at a 2× focal length on a first side (a front side) of the lens 2, the MEMS2 micro-mirror 640 may be located at a 2× focal length on a second side (a rear side) of the lens 2, the first optical filter 630 may be located at a 2× focal length on a first side (a front side) of the lens 3, and the MEMS3 micro-mirror 622 may be located at a 2× focal length on a rear side of the lens 2. In this way, an included angle between the beam incident onto the lens 1 and the optical axis 1 is the same as an included angle between the beam emergent from the lens 1 and the optical axis 1, an included angle between the beam incident onto the lens 2 and the optical axis 1 is the same as an included angle between the beam emergent from the lens 2 and the optical axis 1, and an included angle between the beam incident onto the lens 3 and the optical axis 1 is the same as an included angle between the beam emergent from the lens 3 and the optical axis 1.
[0371] Refer to
[0372] It should be noted that, in
[0373] In the T-OADM apparatus shown in
[0374]
[0375] As shown in
[0376] In
[0377] Refer to
[0378] Similar to
[0379]
[0380] The dual-reflective-surface MEMS micro-mirror may include two reflective surfaces and one MEMS driver, where the MEMS driver may control the two reflective surfaces to perform the same deflection simultaneously.
[0381] Similar to
[0382] In
[0383] Therefore, in an embodiment of the application, when a deflection angle of the first optical filter is kept unchanged, an incident angle at which an input beam is incident onto the first optical filter may be dynamically changed by using a beam adjustment apparatus (for example, a MEMS micro-mirror or an LCOS), to change a filtering center wavelength of the first optical filter; and a beam transmitted by the first optical filter and a beam reflected by the first optical filter are adjusted by using a beam adjustment apparatus (for example, a MEMS micro-mirror or an LCOS), so that the beams are coupled to corresponding ports, so as to implement dynamic adjustment of a wavelength of a signal dropped or added by the T-OADM apparatus. In an embodiment of the application, wavelengths of signals added and dropped by the T-OADM apparatus can be dynamically adjusted, wavelength-level service switching is supported, a network structure is flexible, and operation and maintenance are simple, which facilitates intelligent control of an optical network.
[0384] In addition, in an embodiment of the application, a beam adjustment apparatus (for example, a MEMS micro-mirror or an LCOS) may further adjust a degree of coupling of a beam to a transmission input/output port, so that strength of an emergent transmitted beam can be adjusted, that is, strength of a signal dropped by the T-OADM apparatus can be adjusted.
[0385] In the T-OADM apparatuses shown in
[0386]
[0387] For the input/output port 610, the first beam adjustment apparatus 620, the first optical filter 630, the second beam adjustment apparatus 640, the first transmission input/output port 650, and the first reflection input/output port 660, refer to the description in
[0388] In
[0389] In some embodiments, when the first beam adjustment apparatus 620 includes an incident beam adjustment apparatus and a reflected beam adjustment apparatus, the reflected beam adjustment apparatus adjusts the transmission direction of the first reflected beam.
[0390] Herein, the first beam adjustment apparatus 620 may dynamically adjust a magnitude of the second incident angle based on a wavelength of a second signal that needs to be dropped (or added) by the T-OADM apparatus 1500. For example, the wavelength of the signal that needs to be dropped (or added) and the second incident angle meet the foregoing formula (1).
[0391] The second optical filter 1510 is configured to receive the beam that is incident at the second incident angle, and split the beam incident onto the second optical filter 1510 into a second transmitted beam including a second wavelength and a second reflected beam including at least one wavelength. The second wavelength is a wavelength of a beam that is transmitted through the second optical filter 1510 when the beam is incident onto the second optical filter 1510 at the second incident angle. Herein, the second reflected light may be considered as some of beams in the first reflected light.
[0392] Herein, the second optical filter 1510 may be fixedly disposed. In this case, the magnitude of the second incident angle may be dynamically adjusted by using the first beam adjustment apparatus 620, so that the T-OADM apparatus 1500 can drop (or add) a signal of a second wavelength while dropping (or adding) a signal of the first wavelength.
[0393] The third beam adjustment apparatus 1520 is configured to adjust a transmission direction of the second transmitted beam, so that the second transmitted beam is output to the second transmission input/output port 1540.
[0394] The second transmission input/output port 1540 is configured to output the second transmitted beam.
[0395] The fourth beam adjustment apparatus 1530 is configured to adjust a transmission direction of the second reflected beam.
[0396] The first reflection input/output port 660 is configured to output the second reflected beam.
[0397] In some embodiments, the fourth beam adjustment apparatus 1530 may be configured to adjust a transmission direction of the second reflected beam, so that the second reflected beam is output to the first reflection input/output port 660. In this case, the first reflection input/output port 660 is configured to output the second reflected beam.
[0398] In some other embodiments, when the OADM apparatus 600 further includes a third optical filter, the fourth beam adjustment apparatus 1530 may be further configured to adjust a transmission direction of the second reflected beam, so that the second reflected beam is output to the third optical filter. In this case, the third optical filter may further perform optical filtering on the second reflected beam; and correspondingly, the first reflection input/output port 660 is configured to output some of beams in the second reflected beam.
[0399] Therefore, in an embodiment of the application, the beam adjustment apparatus may be used to change the transmission direction of the first reflected beam emergent from the first optical filter, so that the first reflected beam is incident onto the second optical filter. Further, the beam adjustment apparatus may be used to change an incident angle at which the beam is incident onto the second optical filter, and adjust transmission directions of the transmitted beam and the reflected beam of the second wavelength that are emergent from the second optical filter, so that the transmitted beam and the reflected beam emergent from the optical filter are output to corresponding ports. In this way, the T-OADM apparatus can drop (or add) a signal of the second wavelength while dropping (or adding) a signal of the first wavelength.
[0400] For example, the third beam adjustment apparatus 1520 and the fourth beam adjustment apparatus 1530 each may be a MEMS micro-mirror or an LCOS. This is not limited in an embodiment of the application.
[0401] In some embodiments, the second transmission input/output port 1540 is further configured to input an input beam of the second wavelength; and the input beam is transmitted by using the second optical filter 1510, and is output to the input/output port 610. In this case, the input/output port 610 is further configured to output the beam transmitted by the second optical filter 1510. Therefore, in an embodiment of the application, a signal of the second wavelength can be added.
[0402] The following describes three T-OADM apparatuses provided in embodiments of this application with reference to
[0403] It should be noted that, in
[0404] In the T-OADM apparatus in
[0405]
[0406] In an embodiment, for locations of the MEMS3 micro-mirror 622, the MEMS micro-mirror 1610, the optical apparatus 1620, the MEMS4 micro-mirror 1520, and the MEMS5 micro-mirror 1530, refer to the foregoing descriptions about the MEMS1 micro-mirror, the first optical apparatus 671, the MEMS2 micro-mirror 640, and the MEMS3 micro-mirror 622. Details are not described herein again.
[0407] It should be understood that, in
[0408]
[0409] In an embodiment, as shown in
[0410] In an embodiment, as shown in
[0411]
[0412] For example, the optical apparatuses 1820 and 1830 each may be an optical 4f system, where the optical apparatus 1820 may include a lens 5 (denoted as f5) and a lens 6 (denoted as f6), and the optical apparatus 1830 may include a lens 7 (denoted f7) and a lens 8 (denoted f8).
[0413] In an embodiment, the T-OADM apparatus in
[0414] In an embodiment, for locations of the MEMS3 micro-mirror 622, the second optical filter 1510, the optical apparatus 1820, the MEMS4 micro-mirror 1520, the optical apparatus 1830, and the MEMS5 micro-mirror 1530, refer to the descriptions about the MEMS1 micro-mirror, the first optical filter 630, the first optical apparatus 671, the MEMS2 micro-mirror 640, the second optical apparatus 674, and the MEMS3 micro-mirror 622. Details are not described herein again.
[0415] It should be understood that, in
[0416] Similar to
[0417] It should be noted that, in
[0418] Therefore, in an embodiment of the application, when the deflection angles of the first optical filter and the second optical filter are kept unchanged, an incident angle at which an input beam is incident onto the first optical filter and/or the second optical filter may be dynamically changed by using a beam adjustment apparatus (for example, a MEMS micro-mirror or an LCOS), to change a filtering center wavelength of the first optical filter and/or the second optical filter. Further, the beam adjustment apparatus (for example, a MEMS micro-mirror or an LCOS) is used to adjust the beam that is transmitted by the first optical filter and the beam that is transmitted and reflected by the second optical filter, so that the beam is coupled to a corresponding port, and to adjust the beam reflected by the first optical filter, so that the reflected beam is incident onto the second optical filter. In this way, the T-OADM apparatus can drop or add signals of different wavelengths, and the different wavelengths can be dynamically adjusted. In an embodiment of the application, wavelengths of signals added and dropped by the T-OADM apparatus can be dynamically adjusted, wavelength-level service switching is supported, a network structure is flexible, and operation and maintenance are simple, which facilitates intelligent control of an optical network.
[0419] In addition, in an embodiment of the application, a beam adjustment apparatus (for example, a MEMS micro-mirror or an LCOS) may also be used to adjust degrees of coupling of different transmitted beams to corresponding transmission input/output ports, so that strength of all transmitted beams can be consistent, so as to ensure consistent strength of signals of a plurality of different wavelengths dropped by the T-OADM apparatus, thereby ensuring strength flatness of optical signals of different wavelengths that are dropped locally.
[0420] In some embodiments, the input beam (that is, the beam incident onto the optical filter) may be kept unchanged, and the incident angle at which the incident beam is incident onto the optical filter may be changed by dynamically changing the deflection angle of the optical filter, so that wavelengths of the transmitted beam and the reflected beam that are emergent through the optical filter can be dynamically adjusted, and then a wavelength of a beam that is dropped or added by the T-OADM apparatus can be dynamically adjusted.
[0421]
[0422] Based on this, an embodiment of this application provides a T-OADM apparatus. In the T-OADM apparatus, an optical filter may maintain a fixed included angle from a reflector; the rotating component drives deflection of the optical filter to change an incident angle at which an incident beam is incident onto the optical filter; and a corresponding reflector deflects with the deflection of the optical filter, so as to couple a reflected beam emergent from the optical filter to a reflection input/output port.
[0423]
[0424] The rotating component 2020 is connected to both the optical filter 2030 and the reflector 2040, the optical filter 2030 is connected to the reflector 2040, and there is a fixed included angle between the optical filter 2030 and a reflective surface of the reflector 2040.
[0425] The input/output port 2050 is configured to input an input beam including at least two wavelengths.
[0426] The rotating component 2020 is configured to rotate to adjust tilt angles of the optical filter 2030 and the reflector 2040, so that the input beam is incident onto the optical filter 2030 at a first incident angle.
[0427] Herein, the rotating component 2020 may dynamically adjust deflection (that is, a tilt angle) of the optical filter 2030 based on a wavelength of a signal that needs to be dropped (or added) by the T-OADM apparatus 2000, to adjust a magnitude of the first incident angle. For example, the wavelength of the signal that needs to be dropped (or added) and the first incident angle meet the foregoing formula (1).
[0428] The optical filter 2030 is configured to receive a beam that is incident at the first incident angle, and split the incident beam into a transmitted beam including a first wavelength and a reflected beam including at least one wavelength, where the first wavelength is the wavelength of the beam passing through the optical filter 2030 when the beam is incident onto the optical filter 2030 at the first incident angle. Herein, the first wavelength is a wavelength corresponding to a signal that needs to be dropped (or added) by the T-OAMD apparatus 2000.
[0429] The reflector 2040 is configured to reflect the reflected beam, so that the reflected beam is output to the reflection input/output port.
[0430] The transmission input/output port 2050 is configured to output the transmitted beam.
[0431] The first reflection input/output port 2060 is configured to output the reflected beam.
[0432] Therefore, in an embodiment of the application, the optical filter and the reflector are disposed to be connected to the rotating component, a fixed angle is maintained between the optical filter and the rotating component, and the rotating component rotates to change the tilt angle of the optical filter, so as to change an incident angle at which an incident beam is incident onto the optical filter. In addition, after the optical filter splits the incident beam into the transmitted beam and the reflected beam, the emergent reflected beam is further reflected to the reflection input/output port by using the reflector that has a fixed angle with the optical filter. In an embodiment of the application, a fixed angle is set between the optical filter and the reflector, so that the reflected beam can be coupled to the reflection input/output port by using the reflector. Therefore, complexity of the T-OADM apparatus can be reduced in an embodiment of the application.
[0433] In some embodiments, the T-OADM apparatus may further include a control unit, configured to control, based on a wavelength of a signal that needs to be dropped (or added) by the T-OADM apparatus 2000, the rotating component to rotate, so as to adjust a first incident angle at which a beam is incident onto the first optical filter. In this way, a wavelength of a signal that needs to be dropped (or added) by the T-OADM apparatus is adjusted.
[0434] For example, the control unit may be configured to receive an instruction, where the instruction indicates a wavelength of the first signal dropped (or added) by the T-OADM.
[0435] The control unit may further determine a rotation angle of the rotating component based on the first wavelength, and control, based on the rotation angle, the rotating component to rotate.
[0436] In an embodiment, the control unit may be preconfigured to store a plurality of wavelengths of signals that can be dropped or added by the T-OADM apparatus, and a rotation angle that is of a rotating component and that corresponds to each wavelength. When obtaining the wavelength of the signal that needs to be dropped or added by the T-OADM apparatus, the control unit may determine, based on the preconfiguration, the rotation angle that is of the rotating component and that corresponds to the wavelength.
[0437] In an embodiment, the control unit may send a control signal to the driver of the rotating component, to control the rotating component to rotate.
[0438] For example, the rotating component may be a motor or a MEMS rotating component. This is not limited in this embodiment of this application.
[0439] In some embodiments, the transmission input/output port 2050 is further configured to input an input beam of a first wavelength; and the input beam is transmitted through the optical filter 2030, and is output to the input/output port 2010. In this case, the input/output port 2010 is further configured to output the beam transmitted through the optical filter 2030. In this way, the signal of the first wavelength can be added.
[0440] In some embodiments, the reflection input/output port 2060 is further configured to input a beam output from the second reflection input/output port; and the beam is reflected by the reflector 2040 and the optical filter 2030 and output to the input/output port 2010. In this case, the input/output port 2010 is further configured to output a beam reflected by the optical filter 2030.
[0441] Herein, the second reflection input/output port may be a reflection input/output port of another OADM apparatus. As mentioned above, the beam output from the second reflection input/output port should be transparently transmitted without being affected. In an embodiment, the beam output by the second reflection input/output port may be input to the reflection input/output port 2060, and the beam input to the reflection input/output port 2060 is reflected to the input/output port by using the reflector 2040 and the optical filter 2030, so as to implement transparent transmission of the beam output from the second reflection input/output port.
[0442] Correspondingly, the beam output from the reflection input/output port 2060 may also be input to another reflection input/output port (for example, a third reflection input/output port), so as to implement transparent transmission of the beam output from the reflection input/output port 2060.
[0443] With reference to
[0444] It should be noted that, in
[0445]
[0446] Refer to
[0447]
[0448] Still refer to
[0449]
[0450] It should be noted that, in an actual T-OADM apparatus, disposing the optical filter 2030 and the reflective surface of the reflector 2040 perpendicular to each other not only includes disposing the two strictly perpendicular to each other, that is, an angle between the two is accurately set to 90°, but also includes disposing the two almost perpendicular to each other, that is, the angle between the two is set to be close to 90° or slightly greater than 90°. This is not limited in this application.
[0451] Refer to
[0452] For example, the first prism 2320 may be a roof prism. This is not limited in this application.
[0453] Different from the T-OADM apparatus in
[0454] In the T-OADM apparatus shown in
[0455] In some embodiments, a second prism may be disposed between the optical filter 2030 and the transmission input/output port. When the optical filter is deflected, a transmitted beam is displaced to a certain extent. In this case, the second prism can be used to reduce a displacement of the transmitted beam, so as to reduce impact of the displacement on coupling of the transmitted beam to a corresponding port.
[0456] In some embodiments, a third prism may be disposed between the reflector 2040 and the reflection input/output port. When the optical filter and the reflector are deflected, the reflected beam is displaced to a certain extent. In this case, the third prism can be used to reduce a displacement of the reflected beam, so as to reduce impact of the displacement on coupling of the reflected beam to a corresponding port.
[0457]
[0458] An embodiment of this application further provides a T-OADM apparatus, including an input/output port, a driving component, an optical filter, a transmission input/output port, and a reflection input/output port. The optical filter includes at least two regions having different filter bandwidths. The driving component is connected to an optical filter, and is configured to drive the optical filter to move, so that an input beam is incident onto a first region in the at least two regions of the optical filter, and further, the optical filter receives an incident beam through the first region, and splits the incident beam into a transmitted beam including a signal of a first wavelength and a reflected beam including at least one wavelength by using the first region. The first wavelength is a wavelength of a beam that is transmitted through the optical filter when the beam is incident onto the first region at a first incident angle.
[0459] In an embodiment, the T-OADM may further include a control unit, where the control unit is configured to control the driving component to move, so that a beam is incident onto different regions of the first optical filter, so as to adjust a wavelength of a signal that needs to be dropped (or added) by the T-OADM apparatus.
[0460]
[0461] In some optional embodiments, the optical filter in the foregoing embodiments may alternatively be replaced with the optical filter that includes regions of different filter bandwidths. Correspondingly, the foregoing embodiments may further include a driving component connected to the optical filter, and the driving component can be used to change the position at which the beam is incident onto the optical filter, so that the filtering center wavelength of the optical filter is dynamically adjusted.
[0462] An embodiment of this application further provides a T-OADM apparatus. As shown in
[0463] The input/output port 2610 is configured to input an input beam including at least two wavelengths.
[0464] The first beam adjustment apparatus 2620 is configured to adjust a transmission direction of the input beam, so that the input beam is incident onto the optical filter 2630 at a first incident angle.
[0465] The optical filter 2630 is configured to receive a beam that is incident at the first incident angle, and split the incident beam into a transmitted beam including a first wavelength and a reflected beam including at least one wavelength, where the first wavelength is the wavelength of the beam passing through the optical filter 2630 when the beam is incident onto the optical filter 2630 at the first incident angle.
[0466] The second beam adjustment apparatus 2640 is configured to adjust a transmission direction of the transmitted beam, so that the transmitted beam is output to the transmission input/output port 2650 through the optical filter 2630 and the first beam adjustment apparatus 2620.
[0467] The transmission input/output port 2650 is configured to output the transmitted beam.
[0468] The third beam adjustment apparatus 2660 is configured to adjust a transmission direction of the reflected beam, so that the reflected beam is output to the reflection input/output port 2670 through the optical filter 2630 and the first beam adjustment apparatus 2620.
[0469] The reflection input/output port 2670 is configured to output the reflected beam.
[0470] For example, for the first beam adjustment apparatus 2620, refer to the foregoing description about the incident beam adjustment apparatus; and for the optical filter 2630, refer to the description about the first optical filter in
[0471] Therefore, in an embodiment of the application, the first beam adjustment apparatus changes the incident angle of the incident beam to the optical filter; after the optical filter splits the incident beam into the transmitted beam and the reflected beam, the second beam adjustment apparatus reflects the transmitted beam emergent from the optical filter to the optical filter; then the first beam adjustment apparatus outputs the transmitted beam to the transmission input/output port; then the third beam adjustment apparatus reflects the reflected beam emergent from the optical filter to the optical filter; and then the first beam adjustment apparatus outputs the reflected beam to the reflection input/output port.
[0472] In some embodiments, the T-OADM apparatus may further include a control unit to control the first beam adjustment apparatus to adjust a deflection direction and a deflection angle of the incident beam, to adjust the first incident angle at which the beam is incident onto a first optical filter, so as to adjust the wavelength of the signal that needs to be dropped (or added) by the T-OADM apparatus.
[0473] In an embodiment, for a manner in which the control unit controls the first beam adjustment apparatus, refer to the foregoing related description. Details are not described herein again.
[0474] In some embodiments, the transmission input/output port 2650 is further configured to input an input beam of a first wavelength; and the input beam is transmitted through the optical filter 2630, and is output to the input/output port 2610. The input/output port 2610 is further configured to output a beam transmitted through the optical filter, so as to add a signal of the first wavelength.
[0475] In some embodiments, the reflection input/output port 2670 is further configured to input a beam, where the beam is reflected by the optical filter 2630 and output to the input/output port 2610. The input/output port 2610 is further configured to output a beam reflected by the optical filter 2630, so as to implement transparent transmission of a signal.
[0476] The following describes two T-OADM apparatuses provided in embodiments of this application with reference to
[0477] It should be noted that, in
[0478] In the T-OADM apparatuses in
[0479]
[0480] In
[0481] Still refer to
[0482] The lens 3 is disposed in the yz plane of the space rectangular coordinate system xyz; the optical filter 2630 is parallel to the z axis and has an included angle with the yz plane; and the reflector 2641 is parallel to the y axis in the space rectangular coordinate system xyz and has an included angle α.sub.1 with the yz plane.
[0483] The lens 4 is disposed in the y′z′ plane of the space rectangular coordinate system x′y′z′; the optical filter 2630 is parallel to the z′ axis and has an included angle with the y′z′ plane; and the reflector 2661 is parallel to the y′ axis in the space rectangular coordinate system x′y′z and has an included angle α.sub.2 with the y′z′ plane.
[0484] The lens 3 is configured to collimate a transmitted beam emergent from the optical filter 2630, so that the transmitted beam is incident onto the reflector 2641 along an optical axis 1 (that is, the x-axis direction). The reflector 2641 is configured to reflect the transmitted beam to the transmission input/output port 2650 through the lens 3, the optical filter 2630, and the MEMS micro-mirror 2620 and at a first lateral offset h.sub.1 in the z-axis direction.
where f.sub.1 represents a focal length of the lens 3.
[0485] The lens 4 is configured to collimate a reflected beam emergent from the optical filter 2630, so that the reflected beam is incident onto the second reflector 2661 along the optical axis 2 (that is, in the x′-axis direction). The reflector 2661 is configured to reflect the reflected beam to the reflection input/output port through the lens 4, the optical filter 2630, and the MEMS micro-mirror 2620 and at a second lateral offset h.sub.2 in the z-axis direction.
where f2 represents a focal length of the lens 4.
[0486] For example, in
[0487] Refer to
[0488] In
[0489] In some other embodiments, the optical 4f system in
[0490] In the T-OADM apparatuses shown in
[0491]
[0492] For example, in
[0493] Therefore, in an embodiment of the application, the beam adjustment apparatus (for example, a lens and a reflector disposed at a focus of the lens) may be used to reflect the beam transmitted through the optical filter, so that the beam is output to the transmission input/output port through the optical filter and at a lateral offset, and the beam is reflected by the optical filter. In this way, the beam is output to the reflection input/output port through the optical filter and at a lateral offset, and the transmitted beam and the reflected beam are coupled to corresponding ports, thereby implementing dynamic adjustment of a wavelength of a signal dropped or added by the T-OADM apparatus. In an embodiment of the application, wavelengths of signals added and dropped by the T-OADM apparatus can be dynamically adjusted, wavelength-level service switching is supported, a network structure is flexible, and operation and maintenance are simple, which facilitates intelligent control of an optical network.
[0494] In some optional embodiments, the optical filter in the T-OADM apparatus in
[0495] An embodiment of this application further provides a T-OADM apparatus. As shown in
[0496] The input/output port 2910 is configured to input an input beam including at least two wavelengths.
[0497] The rotating component 2920 is connected to the optical filter 2930, and is configured to rotate to adjust a tilt angle of the optical filter 2930, so that the input beam is incident onto the optical filter 2930 at a first incident angle.
[0498] The optical filter 2930 is configured to receive a beam that is incident at the first incident angle, and split the incident beam into a transmitted beam including a first wavelength and a reflected beam including at least one wavelength, where the first wavelength is the wavelength of the beam passing through the optical filter 2930 when the beam is incident onto the optical filter 2930 at the first incident angle.
[0499] Herein, the rotating component 2920 may dynamically adjust deflection (that is, a tilt angle) of the optical filter 2930 based on a wavelength of a signal that needs to be dropped (or added) by the T-OADM apparatus 2900, to adjust a magnitude of the first incident angle. For example, the wavelength of the signal that needs to be dropped (or added) and the first incident angle meet the foregoing formula (1).
[0500] The beam adjustment apparatus 2950 is configured to adjust a transmission direction of a reflected beam, so that the reflected beam is output to the reflection input/output port through the optical filter 2930.
[0501] The transmission input/output port 2940 is configured to output the transmitted beam.
[0502] The reflection input/output port 2960 is configured to output the reflected beam.
[0503] Therefore, in an embodiment of the application, the rotating component rotates to change the tilt angle of the optical filter, so as to change the incident angle of the incident beam to the optical filter. In addition, after the optical filter splits the incident beam into the transmitted beam and the reflected beam, the emergent reflected beam is reflected by the beam adjustment apparatus, and is transmitted to the reflection input/output port through the optical filter 2930.
[0504] In some embodiments, the T-OADM apparatus may further include a control unit to control the rotating component to rotate, to adjust the first incident angle at which the beam is incident onto the first optical filter, so as to adjust the wavelength of the signal that needs to be dropped (or added) by the T-OADM apparatus.
[0505] In an embodiment, for a manner in which the control unit controls the rotating component to rotate, refer to the foregoing related description. Details are not described herein again.
[0506] In some embodiments, the transmission input/output port 2940 is further configured to input an input beam of a first wavelength; and the input beam is transmitted through the optical filter 2930, and is output to the input/output port 2610. The input/output port 2910 is further configured to output a beam transmitted through the optical filter, so as to add a signal of the first wavelength.
[0507] In some embodiments, the reflection input/output port 2960 is further configured to input a beam, where the beam is reflected by the optical filter 2930 and output to the input/output port 2910. The input/output port 2910 is further configured to output a beam reflected by the optical filter, so as to implement transparent transmission of a signal.
[0508] The following describes three T-OADM apparatuses provided in embodiments of this application with reference to
[0509] It should be noted that, in
[0510] In the T-OADM apparatuses in
[0511]
[0512] In
[0513] Refer to
[0514]
[0515]
[0516] The lens 1 is disposed in the y′z′ plane of the space rectangular coordinate system x′y′z′; the optical filter 2930 is parallel to the z′ axis and has an included angle with the y′z′ plane; and the reflector 2951 is parallel to the y′ axis in the space rectangular coordinate system x′y′z and has an included angle α.sub.3 with the y′z′ plane.
[0517] The lens 1 is configured to collimate a reflected beam emergent from the optical filter 2930, so that the reflected beam is incident onto the second reflector 2951 along the optical axis 2 (that is, in the x′-axis direction). The reflector 2951 is configured to reflect the reflected beam to the reflection input/output port through the lens 1 and the optical filter 2930 and at a third lateral offset h.sub.3 in the z-axis direction.
where f.sub.3 represents a focal length of the lens 1.
[0518] Refer to
[0519] Therefore, in an embodiment of the application, the rotating component rotates to change the tilt angle of the optical filter, so as to change the incident angle of the incident beam to the optical filter. In addition, after the optical filter splits the incident beam into the transmitted beam and the reflected beam, the beam reflected by the optical filter is reflected, so that the beam is output to the reflection input/output port through the optical filter and at a lateral shift, so as to couple the transmitted beam and the reflected beam to corresponding ports, thereby implementing dynamic adjustment of a wavelength of a signal dropped or added by the T-OADM apparatus. In an embodiment of the application, wavelengths of signals added and dropped by the T-OADM apparatus can be dynamically adjusted, wavelength-level service switching is supported, a network structure is flexible, and operation and maintenance are simple, which facilitates intelligent control of an optical network.
[0520]
[0521] In
[0522] A transmitted beam emergent from the optical filter 2930 may continue to propagate along an incident direction of the beam to the optical filter 2930, and is output to a polarization beam combining device 3020 to implement polarization beam combining, and then is output to a transmission output port 2940, so as to download signals.
[0523]
[0524] In some optional embodiments, the MEMS micro-mirror 2952 may alternatively be replaced with an LCOS. This is not limited in embodiments of this application.
[0525] In some optional embodiments, the optical filter in the T-OADM apparatus in
[0526] Therefore, in an embodiment of the application, the rotating component rotates to change the tilt angle of the optical filter, so as to change the incident angle of the incident beam to the optical filter. In addition, after the optical filter splits the incident beam into the transmitted beam and the reflected beam, the beam reflected by the optical filter is reflected, so that the beam is transmitted to a circulator through the optical filter, and then transmitted to a reflection input/output port by using the circulator, so as to couple the transmitted beam and the reflected beam to corresponding ports, thereby implementing dynamic adjustment of a wavelength of a signal dropped or added by the T-OADM apparatus. In an embodiment of the application, wavelengths of signals added and dropped by the T-OADM apparatus can be dynamically adjusted, wavelength-level service switching is supported, a network structure is flexible, and operation and maintenance are simple, which facilitates intelligent control of an optical network.
[0527] It should be noted that, in the T-OADM apparatus shown above, an example in which the optical filter is a band-pass optical filter is used for description. It may be understood that, in an embodiment of the application, a band-stop optical filter may also be used to select a wavelength of a signal that needs to be dropped or added by the T-OADM apparatus.
[0528] When the optical filter is a band-pass optical filter, the optical filter may split an incident beam into a transmitted beam including a first wavelength and a reflected beam including at least one wavelength, where the first wavelength is a wavelength of a beam selected by the optical filter when the beam is incident onto the optical filter at the first incident angle. Correspondingly, the signal output by the transmission input/output port is a signal dropped by the T-OADM apparatus, and the signal output by the reflection input/output port is a signal transparently transmitted by the T-OADM apparatus.
[0529] When the optical filter is a band-stop optical filter, the optical filter may split an incident beam into a reflected beam including a first wavelength and a transmitted beam including at least one wavelength, where the first wavelength is a wavelength of a beam selected by the optical filter when the beam is incident onto the optical filter at the first incident angle. Correspondingly, the signal output by the reflection input/output port is a signal dropped by the T-OADM apparatus, and the signal output by the transmission input/output port is a signal transparently transmitted by the T-OADM apparatus.
[0530] It should be understood that
[0531]
[0532] The input/output port is configured to input an input beam including at least two wavelengths.
[0533] The first optical filter is configured to: receive a beam that is incident at the first incident angle, and split the incident beam into a first transmitted beam and a first reflected beam, where a wavelength of a beam included in the first transmitted beam is different from a wavelength of a beam included in the first reflected beam.
[0534] The second port is configured to output the first transmitted beam.
[0535] The third port is configured to output the first reflected beam.
[0536] For example, the T-OADM apparatus may be any T-OADM apparatus described in
[0537] The method 3300 is performed by a control unit, and includes the following operations.
[0538] 3310. Receive an instruction, where the instruction indicates a wavelength of a first signal dropped by the T-OADM.
[0539] 3320. Determine, based on the wavelength of the first signal, a first deflection angle of the first beam adjustment apparatus for an input beam, a second deflection angle of the second beam adjustment apparatus for the first transmitted beam, and a third deflection angle of the first beam adjustment apparatus for the first reflected beam.
[0540] 3330. Control, based on the first deflection angle, the first beam adjustment apparatus to adjust a transmission direction of the input beam, so that the input beam is incident onto the first optical filter at a first incident angle, where the first incident angle corresponds to the wavelength of the first signal.
[0541] 3340. Control, based on the second deflection angle, the second beam adjustment apparatus to adjust a transmission direction of the first transmitted beam, so that the first transmitted beam is output to the second port.
[0542] 3350. Control, based on the third deflection angle, the first beam adjustment apparatus to adjust a transmission direction of the first reflected beam, so that the first reflected beam is output to the third port.
[0543] Therefore, in an embodiment of the application, the wavelength of the first signal that needs to be dropped (or added) by the T-OADM apparatus is received, and a deflection angle of a beam of each beam adjustment apparatus is controlled based on the wavelength of the first signal, so that the wavelength of the signal that is dropped or added by the T-OADM apparatus can be flexibly controlled according to an actual requirement, thereby implementing a more flexible and controllable T-OADM apparatus.
[0544] For example, the control unit may separately send a control signal to the first beam adjustment apparatus and the second beam adjustment apparatus, so that the first beam adjustment apparatus and the second beam adjustment apparatus may separately adjust a transmission direction of a beam based on the control signal.
[0545] In an embodiment, a plurality of wavelengths of signals that can be dropped or added by the T-OADM apparatus can be preconfigured, and deflection angles that are of the beam adjustment apparatus for the incident beam, the transmitted beam, and the reflected beam and that correspond to each wavelength may be preconfigured. When an instruction of a wavelength of a signal that needs to be dropped or added by the T-OADM apparatus is obtained, deflection angles that are of the beam adjustment apparatus for the incident beam, the transmitted beam, and the reflected beam and that correspond to the wavelength may be determined based on the preconfiguration.
[0546] In an embodiment, a correspondence between a wavelength of a signal that can be dropped or added by the T-OADM apparatus and deflection angles of the incident beam, the transmitted beam, and the reflected beam may be prestored. When the instruction of the wavelength of the signal that needs to be dropped or added by the T-OADM apparatus is obtained, deflection angles that are of the beam adjustment apparatus for the incident beam, the transmitted beam, and the reflected beam and that correspond to the wavelength may be determined based on the correspondence.
[0547] Embodiments in this application may be used independently, or may be used jointly. This is not limited herein.
[0548] It should be understood that numbers such as “first”, “second”, and “third” in embodiments of this application are merely for differentiation for ease of description, and are not intended to limit the scope of embodiments of this application. For example, different beam adjustment apparatuses, different ports, different wavelengths, and the like are distinguished.
[0549] It should be understood that sequence numbers of the foregoing processes do not mean execution sequences in various embodiments of this application. The execution sequences of the processes should be determined based on functions and internal logic of the processes, and should not be construed as any limitation on the implementation processes of embodiments of this application.
[0550] It should also be understood that the term “and/or” describes an association relationship for describing associated objects and represents that three relationships may exist. For example, A and/or B may represent the following three cases: Only A exists, both A and B exist, and only B exists. The character “/” usually indicates an “or” relationship between associated objects. The term “at least one” means one or more. The term “at least one of A and B”, similar to the term “A and/or B”, describes an association relationship between the associated objects and represents that three relationships may exist. For example, at least one of A and B may represent the following three cases: Only A exists, both A and B exist, and only B exists.
[0551] One of ordinary skilled in the art may be aware that, in combination with the examples described in embodiments disclosed in this specification, units and algorithm operations may be implemented by electronic hardware or a combination of computer software and electronic hardware. Whether the functions are implemented by hardware or software depends on applications and design constraints of the technical solutions. One of ordinary skilled in the art may use different methods to implement the described functions for applications, but it should not be considered that the implementation goes beyond the scope of this application.
[0552] One of ordinary skilled in the art can clearly understand that for convenience and conciseness of description, for working processes of the foregoing described system, apparatus and unit, reference can be made to the corresponding processes in the foregoing method embodiments, and details are not described herein.
[0553] In several embodiments provided in this application, it should be understood that the disclosed system, apparatus, and method may be implemented in another manner. For example, the described apparatus embodiment is merely an example. For example, the unit division is merely logical function division and may be other division in actual implementation. For example, a plurality of units or components may be combined or integrated into another system, or some features may be ignored or not performed. In addition, the displayed or discussed mutual couplings or direct couplings or communication connections may be implemented by using some interfaces. The indirect couplings or communication connections between the apparatuses or units may be implemented in electronic, mechanical, or other forms.
[0554] The units described as separate parts may or may not be physically separate, and parts displayed as units may or may not be physical units, and may be located in one position, or may be distributed on a plurality of network units. Some or all of the units may be selected based on actual requirements to achieve the objectives of the solutions of embodiments.
[0555] In addition, functional units in embodiments of this application may be integrated into one processing unit, or each of the units may exist alone physically, or two or more units are integrated into one unit.
[0556] The foregoing descriptions are merely implementations of this application, but are not intended to limit the protection scope of this application. Any variation or replacement readily figured out by one of ordinary skilled in the art within the technical scope disclosed in this application shall fall within the protection scope of this application. Therefore, the protection scope of this application shall be subject to the protection scope of the claims.