የRx ኃይል እና የሊንክ በጀት
ቡድናችን በትርጉሙ ላይ እየሠራ ነው። ይህ ጽሑፍ ለጊዜው በአማርኛ አይገኝም፤ ስለዚህ በእንግሊዝኛ ቀርቧል።
Receive power is the one DDM value that is almost always real, and it is the end of a simple equation: what the far end launched minus what the path lost. Read both ends and you have the measured loss of the link; compare it with what the plant should lose and you know whether the fibre, the connectors or the module is the problem — and how much margin is left before the link fails.
The equation
Rx(here) = Tx(far end) − loss(path)
loss(path) = fibre attenuation × length + Σ connectors + Σ splices + Σ passive components
margin = Rx(here) − sensitivity(this receiver)
Both Tx and Rx come from DDM (Parameters); the loss elements come from the plant record or from these typical figures:
| Element | Typical loss | Notes |
|---|---|---|
| SMF at 1310 nm | 0.32–0.35 dB/km | G.652 |
| SMF at 1550 nm | 0.18–0.22 dB/km | — |
| SMF at 1610 nm (CWDM edge) | 0.22–0.25 dB/km | water peak at 1383 nm is 0.3–0.5 dB/km on old fibre |
| MMF at 850 nm | 2.5–3.5 dB/km | OM3/OM4 |
| Connector pair (LC/SC, UPC or APC) | 0.2–0.5 dB (0.75 max per TIA) | dirty: +0.5 … +3 dB or more |
| MPO/MTP pair | 0.35–0.75 dB | polarity and pinning matter more than loss |
| Fusion splice | 0.05–0.1 dB | — |
| Mechanical splice | 0.2–0.5 dB | — |
| CWDM mux + demux (per channel) | 2.5–4 dB total | plus 1–2 dB per pass-through band |
| DWDM mux/demux (AWG) | 3–6 dB per pair | — |
| PON splitter 1:2 / 1:4 / 1:8 | ≈ 3.5 / 7.2 / 10.5 dB | — |
| PON splitter 1:16 / 1:32 / 1:64 | ≈ 13.7 / 17.2 / 20.5 dB | — |
| Inline attenuator | as labelled ±0.5 dB | — |
Detailed budget method for CWDM: Mux/demux & link budget; unit conversions: Units & conversions.
Worked example: 10GBASE-LR, 12 km
- Far-end Tx (DDM): −2.5 dBm
- Expected loss: 12 km × 0.35 = 4.2 dB + 4 connector pairs × 0.4 = 1.6 dB + 6 splices × 0.1 = 0.6 dB → 6.4 dB
- Expected Rx: −2.5 − 6.4 = −8.9 dBm
- Sensitivity (10GBASE-LR, average): about −14.4 dBm → expected margin ≈ 5.5 dB
| Measured Rx | Interpretation |
|---|---|
| −8 … −10 dBm | as designed |
| −12 dBm | 3 dB missing — one dirty or damaged connector, a macro-bend, or a splice; clean and inspect, then OTDR |
| −14 dBm | at the sensitivity limit — link may be up but with errors and flaps |
| −40 dBm | no light — fibre, wrong port, Tx off at the far end (No link checklist) |
| −3 dBm | far end launching more than expected, or a much shorter path than recorded |
Both directions
Measure A→B and B→A. Fibre loss is symmetric to within a few tenths of a dB; a difference larger than the DDM accuracy (±3 dB, in practice > 2 dB) means the asymmetry is at an end, not in the path:
| Observation | Meaning |
|---|---|
| Both directions low by the same amount | shared path: length, splices, a mux, dirty connectors in both fibres |
| One direction low | dirty/damaged connector on that fibre, weak Tx on the sending side, wavelength mismatch for that direction (BiDi/CWDM) |
| One direction dark | broken fibre of the pair, Tx disabled or dead, Tx/Rx crossed |
| Both fine, errors anyway | not a power problem — dispersion, FEC, polarity on parallel optics (VDM & FEC) |
Per-lane on parallel optics: compare the four or eight Rx values with each other before comparing with a specification (Per-lane diagnostics).
Overload: too much light
Every receiver has a maximum input; above it the photodiode or TIA saturates and errors appear even though "the signal is strong". Typical overload points: −1 … 0 dBm for 10G SR/LR PIN receivers, −3 dBm for 1G, −7 … −9 dBm for APD receivers in ZR/DWDM modules, +2 … +4 dBm for PAM4. A long-reach module on a short link needs an attenuator: size it so that Rx lands in the middle of the window (Typical values, Receivers).
Power is not everything: dispersion and penalties
IEEE budgets reserve several dB for penalties — dispersion, reflections, jitter — that do not show up as lost power. For 10GBASE-LR the budget is 9.4 dB of which only 6.2 dB is channel insertion loss; the rest is penalty allocation. So a link can show "3 dB of margin" by Rx power and still be at its limit on a long span at 1550 nm, on CWDM 1610 nm, or on OM1 fibre at 10G. Symptoms are errors and flaps with good levels (Link flapping); the cure is a dispersion-tolerant module (EML, shorter reach, lower rate) rather than more power.
Margin policy
| Margin (Rx − sensitivity) | Verdict |
|---|---|
| > 6 dB | healthy; room for ageing and one dirty connector |
| 3–6 dB | acceptable; monitor and keep a baseline |
| 1–3 dB | marginal; expect flaps on hot days or after any handling |
| < 1 dB | fix now — clean, re-splice, shorten, or change reach class |
Design new links for at least 3 dB of margin after ageing (0.5–1 dB for laser ageing over life, 0.5 dB per future repair splice).
Recording
Record Tx and Rx at both ends at installation — the link passport (Monitoring). Later readings are then deltas, which are immune to the ±3 dB absolute accuracy of DDM (Accuracy & limits).
In CodingBox
The DDM screen shows Tx and Rx with the module's own thresholds and logs them over time; reading both modules of a link on the bench before installation gives the launch powers for the budget above. For a module pulled from a failed link, the logged Rx history shows whether the loss grew slowly (plant) or the module's Tx fell (Tx bias & laser ageing).
Budgets with splitters and class windows: ODN classes & PON budget. Amplified links where noise, not power, is the limit: Amplification & OSNR.
Design-side detail — allowances by standard, penalties, margin policy and four worked budgets: Link budget engineering; measuring the plant loss with LSPM and OTDR instead of inferring it from DDM: Testing and measurement.