Optical add/drop device and assembly, and communications network node
11675133 · 2023-06-13
Assignee
Inventors
- Sergio Mosti (Genoa, IT)
- Sergio Lanzone (Genoa, IT)
- Marco Assale (Genoa, IT)
- Claudio D'Incà (Genoa, IT)
- Alberto Deho (Genoa, IT)
Cpc classification
G02B6/29365
PHYSICS
G02B6/4215
PHYSICS
H04J14/021
ELECTRICITY
International classification
H04B10/00
ELECTRICITY
Abstract
An optical add/drop device (100) comprising: a common port (102); an add port (106); a first wavelength selective optical filter (110) configured to: receive an optical signal at an add wavelength from the add port and transmit said optical signal at the add wavelength towards the common port; and receive optical signals from the common port and reflect optical signals not at the add wavelength; a second wavelength selective optical filter (114) configured to receive said optical signals from the common port reflected by the first wavelength selective optical filter and transmit an optical signal at a drop wavelength, different to the add wavelength; a drop port (116); and an optical waveguide (118) configured receive said optical signal at the drop wavelength transmitted by the second wavelength selective optical filter and route said optical signal to the drop port.
Claims
1. An optical add/drop device comprising: a common port; an add port; a first wavelength selective optical filter configured to: receive an optical signal at an add wavelength from the add port and transmit said optical signal at the add wavelength towards the common port; and receive optical signals from the common port and reflect optical signals not at the add wavelength; a second wavelength selective optical filter configured to receive said optical signals from the common port reflected by the first wavelength selective optical filter and transmit an optical signal at a drop wavelength, different to the add wavelength, the optical signal being from among said optical signals received from the common port and reflected by the first wavelength selective optical filter; a drop port; an optical waveguide configured to receive said optical signal at the drop wavelength transmitted by the second wavelength selective optical filter and route said optical signal to the drop port; and an express port, wherein the second wavelength selective filter is additionally configured to: receive said optical signals from the common port reflected by the first wavelength selective optical filter and reflect optical signals not at the drop wavelength towards the express port; receive optical signals from the express port and reflect optical signals not at the drop wavelength; wherein the first wavelength selective filter is additionally configured to receive said optical signals from the express port reflected by the second wavelength selective filter and reflect said optical signals towards the common port.
2. The optical add/drop device according to claim 1, wherein the optical signals propagate in free space between the common port and the first wavelength selective filter and between the first wavelength selective filter and the second wavelength selective filter.
3. The optical add/drop device according to claim 1, wherein the optical signals propagate in free space between the express port and the second wavelength selective filter and between the first wavelength selective filter and the second wavelength selective filter.
4. The optical add/drop device according to claim 1, wherein the optical waveguide has a curved path from the second wavelength selective optical filter to the drop port.
5. The optical add/drop device according to claim 1, wherein the optical waveguide comprises an optical fibre mounted in an optical ferule having a curved bore.
6. The optical add/drop device according to claim 1, wherein the first wavelength selective filter is configured to transmit a first wavelength channel of a wavelength grid of the communications network and reflect all other wavelength channels of said wavelength grid and the second wavelength selective filter is configured to transmit a second wavelength channel of said wavelength grid, different to the first wavelength channel, and reflect all other wavelength channels of said wavelength grid.
7. The optical add/drop device according to claim 1, wherein at least one of the first wavelength selective filter and the second wavelength selective filter comprises an optical thin film filter comprising a multi dielectric periodic structure.
8. The optical add/drop device according to claim 1, further comprising a mirror configured to reflect all wavelength channels received from the first wavelength selective filter towards the second wavelength selective filter and to reflect all wavelength channels received from the second wavelength selective filter towards the first wavelength selective filter.
9. The optical add/drop device according to claim 1, wherein the add port and the drop port comprise small form factor optical fibre connectors configured to be pluggable directly into complementary connector sockets on an optical transceiver module.
10. The optical add/drop assembly comprising: the optical add/drop device according to claim 1; and an optical transceiver module comprising an output port and an input port, wherein the optical transceiver module is configured to transmit an optical signal at the add wavelength from the output port and to receive an optical signal at the drop wavelength at the input port, and wherein the add port of the optical add/drop device is connected to the output port of the optical transceiver module and the drop port of the optical add/drop device is connected to the input port of the optical transceiver module.
11. The optical add/drop assembly according to claim 10, comprising a plurality of optical transceiver modules and a plurality of optical add/drop devices each connected to a respective one of the optical transceiver modules, wherein each said optical transceiver module-optical add/drop device pair is configured to operate at a respective one of a plurality of add wavelengths and a respective one of a plurality of drop wavelengths, and wherein the optical add/drop devices are connected in series with the common port and the express port of adjacent pairs of the optical add/drop devices being connected.
12. The optical add/drop assembly according to claim 10 wherein the add port and the drop port comprise small form factor optical fibre connectors configured to be pluggable directly into complementary connector sockets on the optical transceiver module and wherein the output port and the input port of said optical transceiver module comprise optical connector sockets configured to receive small form factor optical fibre connectors and wherein the add port and drop port small form factor optical fibre connectors of a said optical add/drop device are directly plugged into the output port and input port optical connector sockets of a said optical transceiver module.
13. A communications network node comprising the optical add/drop assembly according to claim 10.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) The same reference numbers will used for corresponding features in different embodiments.
(5) Referring to
(6) The first wavelength selective optical filter 110 is configured to receive an optical signal, at an add wavelength, from the add port 106 and transmit this optical signal towards the common port 102. A first collimator lens 108 is provided between the add port and the first wavelength selective optical filter and a second collimator lens 104 is provided at the common port 102.
(7) The first wavelength selective optical filter 110 is also configured to receive optical signals from the common port and reflect received optical signals that are not at the add wavelength. In this embodiment, the optical signals received from the common port are reflected towards a full mirror 112, which is configured to reflect optical signals at all wavelengths towards the second wavelength selective optical filter. The full mirror 112 is not an essential feature, other arrangements of the ports 102, 106, 116 may be used which do not require use of a mirror to direct the optical signals towards the second wavelength selective optical filter. For example, the drop port 116 may be on a same end as the common port 102 or may be on a side. Use of the full mirror 112 advantageously enables the add port 106 and the drop port to be on a same side of the device 130.
(8) The second wavelength selective optical filter 114 is configured to receive the optical signals from the common port, as reflected by the first wavelength selective optical filter 110 and the mirror 112, and to transmit a received optical signal that is at a drop wavelength. The drop wavelength is different to the add wavelength. The add wavelength and the drop wavelength are preselected for the optical add/drop device but it will be understood that different pairs of add and drop wavelengths can be selected for different optical add/drop devices.
(9) The optical waveguide 118 is configured receive the optical signal at the drop wavelength, as transmitted by the second wavelength selective optical filter, and route the optical signal at the drop wavelength to the drop port 116.
(10) In an embodiment, the optical signals propagate in free space between the common port 102 and the first wavelength selective optical filter 110 and between the first wavelength selective filter, the mirror 112 and the second wavelength selective optical filter 114.
(11) In an embodiment, the first and second wavelength selective optical filters are multi dielectric periodic structures configured to transmit an optical signal if its wavelength is aligned with a periodicity of the structure, and to reflect optical signals at all other wavelengths. This optical filter implementation with a multi-dielectric structure is known as thin film filter technology, TFF.
(12) In an embodiment, the first wavelength selective optical filter 110 is configured to transmit a first wavelength channel of a wavelength grid of the communications network and to reflect all other wavelength channels of the wavelength grid. The second wavelength selective optical filter 114 is configured to transmit a second wavelength channel of the wavelength grid and reflect all other wavelength channels of the wavelength grid. The second wavelength channel is different to the first wavelength channel.
(13) Referring to
(14) The mirror 112 is configured to reflect optical signals at all wavelengths received from the first wavelength selective optical filter towards the second wavelength selective optical filter and to reflect optical signals at all wavelengths received from the second wavelength selective optical filter towards the first wavelength selective optical filter.
(15) In this embodiment, the second wavelength selective filter 114 is additionally configured to receive the optical signals from the common port, as reflected by the first wavelength selective optical filter 110 and the mirror 112, and to reflect optical signals not at the drop wavelength towards the express port. The second wavelength selective filter 114 is also configured to receive optical signals from the express port and reflect optical signals not at the drop wavelength towards the mirror.
(16) The first wavelength selective filter 110 is additionally configured to receive the optical signals from the express port, as reflected by the second wavelength selective filter and the mirror, and to reflect these optical signals towards the common port 102.
(17) The optical add/drop device 200 is therefore configured to transparently route ‘by-pass’ optical channels, i.e. optical signals not at the add wavelength or the drop wavelength, from the express port to the common port, or from the common port to the express port. The optical waveguide 204 has a curved path from the second wavelength selective optical filter 114 to the drop port 116. In this embodiment, the optical waveguide comprises an optical fibre 204 mounted in the curved bore of a curved optical ferule 206.
(18) In an embodiment, the optical signals propagate in free space between the express port 202 and the second wavelength selective filter 114, and between the first wavelength selective filter 110, the mirror 112, and the second wavelength selective filter.
(19) In an embodiment, the add port 106 and the drop port 116 comprise small form factor optical fibre connectors, such as LC connectors, configured to be pluggable directly into complementary connector sockets on an optical transceiver module, such as SFP, SFP+, QSFP, QSFP+, QSFP28, QSFP_DD, OSFP, CFP, CFP2, CFP4, and CFP8 standard optical transceivers.
(20) The common port 102 and the express port 202 may comprise complementary optical connector sockets configured to receive small form factor optical fibre connectors, such as LC connectors, so that the common port and the express port are compatible with LC simplex fibre patchcords or LC duplex fibre patchcords.
(21) Currently available passive optical add/drop filters are provided as a box, external to the node, able to receive in input a single fiber in SFW mode and add/drop N×wavelengths from a received aggregated optical signal. The dropped wavelengths are connected to the optical transceiver modules, e.g. DWDM or CWDM SFP, within the node by means of patch-cords between the external box and the transceiver modules.
(22) The currently available passive optical add/drop filters typically have dimensions of in the range of 250/350 mm×200/300 mm×100/120 mm. They are conceived for network scenarios where a number of wavelengths are added/dropped per site. With the present components available on the market, the network designer is forced to use anyway the external box, designed to add/drop a higher number of λs, even where a few, or a single wavelength has to be added/dropped per node.
(23) The optical add/drop device 100, 200 of the above embodiments is advantageously optimized for network scenarios where a single wavelength channel has to be added/dropped at a node. As a result of its structure, the optical add/drop device 100, 200 of the above embodiments can have very compact dimensions, of around 90 mm×15 mm×10 mm. The optical add/drop device 100, 200 of the above embodiments therefore provides a compact optical add/drop solution, optimized for the adding/dropping a single wavelength channel from an aggregated signal transported over a fiber in SFW mode.
(24) Referring to
(25)
(26)
(27) Referring to
(28) It will be appreciated that an optical add/drop device 100 may alternatively be used when the optical add/drop assembly is used as a terminal.
(29) The optical transceiver module 310 comprises an output port and an input port. The add port 106 of the optical add/drop device is connected to the output port of the optical transceiver module and the drop port 116 of the optical add/drop device is connected to the input port of the optical transceiver module. In this example, the drop port and the add port of the optical add/drop module comprise optical connectors configured to be directly plugged into complementary input port and output port connector sockets of the optical transceiver module.
(30) In an embodiment, the add port 106 and the drop port 116 comprise small form factor optical fibre connectors, such as LC connectors, configured to be pluggable directly into complementary input port and output port connector sockets on the optical transceiver module.
(31) The common port 102 and the express port 202 comprise complementary optical connector sockets configured to receive small form factor optical fibre connectors, such as LC connectors, so that the common port and the express port are compatible with LC simplex fibre patchcords or LC duplex fibre patchcords.
(32) The optical transceiver module is configured to transmit an optical signal at the add wavelength from the output port and to receive an optical signal at the drop wavelength at the input port. The optical transceiver module may, for example, be a DWDM small form-factor pluggable, SFP, transceiver module or a CWDM SFP transceiver module. The optical transceiver may also be an SFP+, Quad SFP, QSFP+, QSFP28, QSFP double density, Octal SFP, C form-factor pluggable, CFP, CFP2, CFP4, or CFP8 optical transceiver module.
(33)
(34) Referring to
(35) Each optical add/drop device 200 is connected to a respective optical transceiver module. Each resulting optical transceiver module-optical add/drop device pair is configured to operate at a respective one of a plurality of add wavelengths and a respective one of a plurality of drop wavelengths.
(36) The optical add/drop devices are connected in series with the common port 102 and the express port 202 of adjacent pairs of the optical add/drop devices being connected together. In this example of three optical add/drop devices 200a, 200b, 200c, the common port 102 of the first optical add/drop device 200a is connected to the express port 202 of the second optical add/drop device 200b by a first optical cable 322a, and the common port 102 of the second optical add/drop device 200b is connected to the express port 202 of the third optical add/drop device 200c by a second optical cable 322b. The optical add/drop devices 200 are therefore connected in a daisy-chain type configuration, enabling the optical add/drop assembly 320 to add three optical channel wavelengths and to drop three optical channel wavelengths.
(37) The ‘daisy-chain’ configuration advantageously avoids the need to use an external box type passive optical add/drop filter even in scenarios where a few wavelengths have to be added/dropped in the same node. The optical add/drop assembly therefore simplifies the design of a network based on SFW technique, avoiding the need of external boxes, saving space, costs and simplifying the installation.
(38) An embodiment of the invention provides a communications network node 400 as illustrated in
(39) An embodiment of the invention provides a communications network node 410 as illustrated in
(40) An embodiment of the invention provides a communications network node 420 as illustrated in
(41) In this embodiment, the optical add/drop assembly comprises a plurality N of optical add/drop devices 200a-200n, and a corresponding plurality N of optical transceiver modules 310.