Optical WDM Transmission Network
US-2016329966-A1 · Nov 10, 2016 · US
US9800342B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9800342-B2 |
| Application number | US-201615091611-A |
| Country | US |
| Kind code | B2 |
| Filing date | Apr 6, 2016 |
| Priority date | May 6, 2015 |
| Publication date | Oct 24, 2017 |
| Grant date | Oct 24, 2017 |
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The invention relates to an optical WDM transmission network including at least one optical line terminal, a remote node and a plurality of optical network units. The at least one optical line terminal is connected to the optical remote node via an optical WDM path. Each optical network unit is connected to the optical remote node via an optical distribution path.
Opening claim text (preview).
The invention claimed is: 1. An optical WDM transmission network comprising at least one optical line terminal, a remote node and a plurality of optical network units, wherein (a) the at least one optical line terminal is connected to the optical remote node via an optical WDM path, (b) each optical network unit is connected to the optical remote node via an optical distribution path, (c) the optical remote node comprising a cyclic N×N arrayed waveguide grating has connection ports for connecting the at least one optical line terminal and the plurality of optical network units to the optical remote node, the cyclic N×N arrayed waveguide grating having wavelength-depending routing properties being configured in such a way that bidirectional hub links via the optical remote node between the at least one optical line terminal and each of the optical network units can be established and being further configured in such a way that direct bidirectional star links via the optical remote node between one or more selected optical network unit and at least one of the other optical network unit can be established, the wavelength-dependent routing properties of the cyclic N×N arrayed waveguide grating being essentially identical in a first optical band, a second optical band, and a third optical band, the first, second and third optical band having no overlap, (d) wherein, for establishing the hub links, the at least one optical line terminal creates optical downstream channel signals at first wavelengths lying in the first optical band and each of selected one or more optical network units creates an optical upstream channel signal at a dedicated second wavelength lying in the second optical band and wherein, for establishing the direct star links, each of selected one or more optical network units creates an optical star link channel signal at a dedicated third wavelength lying in the third optical band, (e) each of the selected optical network units further comprising a first optical band filter device comprising a common port and a first band port and a second band port, a first optical receiver connected to the first band port and a second optical receiver coupled to the second band port, the first optical receiver being adapted to receive an optical downstream channel signal lying in the first optical band for establishing a hub link and the second optical receiver adapted to receive an optical channel signal lying in the third optical band for establishing a direct star link, (f) wherein the optical band filter device is configured to route an optical channel signal supplied to the common port and lying in the first optical band to the first band port and to route an optical channel signal supplied to the common port and lying in the third optical band to the second band port, (g) wherein the optical line terminal and each optical network unit have a connection port comprising a separate output port and a separate input port, wherein the output port of the optical line terminal and each output port of an optical network unit are connected to a dedicated front port of the cyclic N×N arrayed waveguide grating and wherein the input port of the optical line terminal and each input port of an optical network unit are connected to a dedicated back port of the cyclic N×N arrayed waveguide grating by a separate optical path. 2. The optical WDM transmission network according to claim 1 , wherein selected one or more of all optical network units comprise a first optical transmitter adapted to create the respective optical upstream channel signal for establishing the hub link at a dedicated wavelength lying in the second optical band, and that selected one or more of all optical network units comprise a second optical transmitter adapted to create an optical star link channel signal for establishing a direct star link at a dedicated wavelength lying in the third band, the optical upstream and star link channel signals created by the first and the at least one second transmitters being supplied to a connection port of the optical network unit. 3. The optical WDM transmission network according to claim 2 , wherein (a) each of the selected optical networks units further comprises a second optical band filter device comprising a common port and a first band port and a second band port, the first optical transmitter connected to the first band port and a second optical transmitter coupled to the second band port, the first optical transmitter being adapted to create an optical upstream channel signal at a channel wavelength lying in the second optical band for establishing a hub link and the second optical transmitter adapted to create an optical channel signal at a channel wavelength lying in the third optical band for establishing a direct star link, (b) wherein the second optical band filter device is configured to route the optical upstream channel signal created by the first optical transmitter and supplied to the first band port to the common port and to route the optical star link channel signal created by the second optical transmitter and supplied to the second band port to the common port. 4. The optical WDM transmission network according to claim 2 , wherein the second optical transmitter is a tunable optical source, the tunable optical source being able to create an optical star link channel signal having any desired wavelength within the third optical band. 5. An optical WDM transmission network comprising at least one optical line terminal, a remote node and a plurality of optical network units, wherein (a) the at least one optical line terminal is connected to the optical remote node via an optical WDM path, (b) each optical network unit is connected to the optical remote node via an optical distribution path, (c) the optical remote node comprising a cyclic N×N arrayed waveguide grating has connection ports for connecting the at least one optical line terminal and the plurality of optical network units to the optical remote node, the cyclic N×N arrayed waveguide grating having wavelength-depending routing properties being configured in such a way that bidirectional hub links via the optical remote node between the at least one optical line terminal and each of the optical network units can be established and being further configured in such a way that direct bidirectional star links via the optical remote node between one or more selected optical network unit and at least one of the other optical network unit can be established, the wavelength-dependent routing properties of the cyclic N×N arrayed waveguide grating being essentially identical in a first optical band, a second optical band, and a third optical band, the first, second and third optical band having no overlap, (d) wherein, for establishing the hub links, the at least one optical line terminal creates optical downstream channel signals at first wavelengths lying in the first optical band and each of selected one or more optical network units creates an optical upstream channel signal at a dedicated second wavelength lying in the second optical band and wherein, for establishing the direct star links, each of selected one or more optical network units creates an optical star link channel signal at a dedicated third wavelength lying in the third optical band, (e) each of the selected optical network units further comprising a first optical band filter device comprising a common port and a first band port and a second band port, a first optical receiver connected to the first band port and a second optical receiver coupled to the second band port, the first optical receiver being adapted to receive an optical downstream channel signal lying in the first optical band for establishing a hub link and the second optical receiver adapted to receive an optical channel signal l
using one wavelength per ONU · CPC title
Electricity · mapped topic
Star-type networks {or tree-type networks} · CPC title
Allocation of downstream wavelengths for upstream transmission · CPC title
Wavelength-division multiplex systems · CPC title
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