DWDM network design: line systems, ROADMs, OTN, pluggables
A DWDM network is layered: coloured light on fibre (the line system), a digital wrapper that carries clients and corrects errors (OTN), and the clients themselves (Ethernet, FC, SDH). Where a transceiver plugs in — a transponder shelf or directly into a router as a 400ZR module — decides who owns each layer. This page maps the layers, the building blocks and the design decisions, so that a coloured pluggable can be placed in its context.
Layers
| Layer | Elements | Concerns |
|---|
| Client | Ethernet 10/100/400G, FC, SDH/SONET, video | grey optics between client device and transponder, or none if the client uses a coherent pluggable |
| OTN (ITU-T G.709) | OTU frames wrapping ODU containers, FEC, tandem monitoring | multiplexing, performance monitoring, protection switching |
| Optical channel | transponders / muxponders or coherent pluggables producing ITU-grid wavelengths | modulation format, OSNR, dispersion |
| Line system / OMS | mux/demux, amplifiers, ROADMs, OSC, DCMs | span engineering (Amplification & OSNR) |
| Fibre / OTS | fibre pairs, connectors, splices | loss, dispersion, PMD, OTDR |
Line system building blocks
| Block | Function | Notes |
|---|
| Mux/demux (AWG or TFF) | combine/separate 40–96 channels | fixed channel plan; ITU grid |
| ROADM (reconfigurable OADM) | add/drop or pass any channel under software control; degrees = number of line directions (2 for a ring node, 4–8 for a mesh hub) | WSS (wavelength-selective switch) based; colourless/directionless/contentionless (CDC) variants |
| Amplifiers | booster, inline, pre-amp | Amplification & OSNR |
| OSC — optical supervisory channel | out-of-band management at 1510 or 1625 nm | carries DCN, amplifier control, span loss monitoring |
| DCM | dispersion compensation (direct-detect systems) | absent in all-coherent designs |
| OCM / OPM | per-channel power monitor | commissioning and alarms |
| OLP — optical line protection | 1+1 splitter/switch across two fibre routes | ~50 ms switching |
Grid and capacity
| Grid | Channels in C-band | Per channel | Total | Notes |
|---|
| 100 GHz fixed | 40–48 | 10G / 100G | 0.4–4.8 Tb/s | legacy and simple metro |
| 50 GHz fixed | 80–96 | 10G / 100G / 200G | up to 19 Tb/s | mainstream |
| 75 GHz | ~64 | 400G (60 GBd) | 25 Tb/s | 400ZR/ZR+ channel width |
| Flexgrid (12.5 GHz slots) | variable | 100G–800G+ | 30–40+ Tb/s | super-channels; requires flexgrid ROADMs |
| C + L band | ×2 | — | 60–80 Tb/s | L-band amplifiers |
Coherent transponders trade capacity for reach per wavelength — 400G 16QAM for metro, 300G 8QAM regional, 200G QPSK long haul on the same hardware — so the design picks a format per path (Coherent & long haul).
OTN in brief
| Container | Rate | Typical client |
|---|
| ODU0 / ODU1 / ODU2 / ODU2e | 1.25 / 2.5 / 10.04 / 10.4 Gb/s | GbE / STM-16 / STM-64 / 10GbE |
| ODU3 / ODU4 | 40 / 104 Gb/s | 40GbE / 100GbE |
| ODUflex | n × 1.25 Gb/s | FC, arbitrary |
| OTU2 / OTU4 | 10.7 / 112 Gb/s | line frames with FEC |
| OTUCn / FlexO | n × 100G | 200G–800G coherent line |
OTN adds: FEC (GFEC RS(255,239) ≈ 6.2 dB gain; vendor SD-FEC ≈ 10–11 dB in coherent line cards), performance monitoring per section and path (BIP-8, tandem connection monitoring), multiplexing of many clients into one wavelength (muxponders), and protection (SNCP, ~50 ms). Clients see a transparent pipe; the OTN layer sees every bit error.
Where the pluggable sits
| Architecture | Who terminates OTN / FEC | Optics | Trade-offs |
|---|
| Transponder / muxponder shelf | the DWDM vendor's line card | grey client optics + integrated or CFP2-DCO coherent line side | best reach and monitoring; two boxes, two vendors' management |
| Coherent pluggable in the router (400ZR / ZR+ in QSFP-DD/OSFP) | the module (CFEC/oFEC) with the router as host | one module, no client optics | fewer boxes and Watts; reach limited to metro/regional; monitoring via CMIS VDM; the line system must be open |
| Alien wavelength | any transponder on a third-party line system | as above | requires an open line system that accepts foreign channels and a power-management contract |
| Passive DWDM with fixed/tunable 10G SFP+ | none (client FEC only) | tunable DWDM SFP+ direct into switches, passive mux, maybe one EDFA | cheapest for 10G × 40 over ≤ 80 km; no OTN monitoring (Tunable transceivers) |
Protection and resilience
| Mechanism | Layer | Switch time | Notes |
|---|
| OLP 1+1 | optical | ~50 ms | duplicate fibre route; halves capacity |
| OTN SNCP | OTN | ~50 ms | per ODU; needs OTN termination |
| ROADM restoration | optical control plane | seconds–minutes | re-routes wavelengths after failures |
| Client-layer (LAG, IP FRR, FC multipath) | client | ms–s | often sufficient with pluggable coherent |
Design decisions checklist
- Traffic matrix and growth → channel count, grid, C or C+L.
- Topology: point-to-point, ring, mesh → ROADM degrees per node.
- Per-path OSNR and non-linear budget → format and reach class per wavelength.
- Pluggable coherent vs transponders per site, and open line system requirements.
- OTN: needed for sub-wavelength multiplexing, hard SLAs, tandem monitoring? Otherwise client-layer protection may suffice.
- Monitoring: OSC, OCM, per-channel pre-FEC BER, alarm thresholds (Monitoring).
- Commissioning baseline: per-channel power, OSNR, BER; store with module identities.
In CodingBox
Coherent and DWDM pluggables enter this network as modules with an identity, a channel setting and VDM/DDM. CodingBox reads and codes their identity (tunable maps, channel grids), and shows the module-side monitors that the line system cannot see — laser frequency error, Tx/Rx power, pre-FEC BER — on DDM and Check transceiver.