CodingBox Documentation

Splicing and termination: fusion, mechanical, pigtails, field connectors

Every permanent joint in a fibre plant is a splice, and every place a module or patch cord plugs in is a termination. Done well they cost 0.03 dB and last decades; done badly they are the reflective, lossy, intermittent events that fill OTDR traces. This page describes the fusion-splicing process step by step, splicer types and their maintenance, mass splicing of ribbons, mechanical splices, the four ways to put a connector on a fibre, the acceptance criteria for each, and the defects to recognise.

Fusion splicing, step by step

StepWhatDetail
1. Preparestrip cable, expose tubes, clean gel with wipes/gel remover; secure cable in tray1.5–2 m of fibre working length in a closure
2. Strip the fibreremove 250 µm (or 900 µm) coating over 30–40 mm with a precision stripperno nicks in the cladding — a nicked fibre breaks at the splice later
3. Cleanwipe bare fibre with lint-free wipe and 99 % isopropyl alcohol, one directiondust on the fibre = bubbles and loss
4. Cleaveprecision cleaver: flat perpendicular endface, angle ≤ 0.5° (≤ 1° acceptable)most splice loss comes from bad cleaves; replace blade positions as specified
5. Loadplace fibres in V-grooves without touching endfaces; close clampskeep endfaces away from anything
6. Alignsplicer aligns cores (core-alignment) or claddings (V-groove), checks cleave angles and endface qualityreject and re-cleave if angle > 1° or endface chipped
7. Pre-fuse and fusearc cleans then melts endfaces; fibres pushed together (overlap ~10 µm)arc power calibrated for altitude/humidity
8. Estimate losssplicer image-processing estimate (±0.02–0.05 dB)not a measurement — confirm with OTDR later
9. Proof test200 g tension pull inside splicercatches weak splices
10. Protectheat-shrink splice sleeve (40 or 60 mm) with steel/ceramic rod, shrink in ovendo not touch until cooled
11. Storelay in splice tray with bend radius ≥ 30 mm, secure sleeve, route fibres without crossing sharplylabel per splice diagram

Splicer types

TypeAlignmentTypical SMF lossSpeedUse
Core alignmentcameras find the cores and move fibres in X/Y0.02 dB typ., ≤ 0.057–15 s splice, 20–30 s heatbackbone, DWDM, anything critical
Active cladding alignmentaligns claddings; relies on core concentricity0.05 dB typ.similarFTTH, access, indoor
Fixed V-groove (passive)fibres sit in grooves, no motors0.05–0.1 dBfastdrop cables, low cost
Ribbon (mass) splicer4/8/12 fibres at once, cladding alignment0.05–0.15 dB per fibre12 fibres in ~15 shigh-count ribbon cables, data-centre trunks
Handheld / drop splicercompact, battery0.05–0.1pole and wall work

Splicer maintenance: electrodes (replace after ~1 000–3 000 arcs or when loss creeps up), arc calibration at each site (altitude, temperature, humidity), V-groove cleaning with a cotton swab and alcohol, cleaver blade rotation and height adjustment, mirror/lens cleaning.

Splicing dissimilar fibres

PairApproach
G.652.D ↔ G.657.Astandard program; ≤ 0.05 dB
G.652 ↔ G.657.B / G.655 / DSFsplicer's dissimilar-fibre or MFD-matching program (longer arc diffuses the core); expect 0.1–0.3 dB; OTDR shows a gainer one way — average both directions
SMF ↔ SMF of different vintage (old high-PMD fibre)normal splice; loss fine, PMD stays
MMF OM3 ↔ OM4fine; OM1 ↔ OM2+ avoid
Bend-insensitive drop fibre to pigtailstandard; verify the splicer detected the fibre type

Types and their parameters: Fibre types.

Mechanical splices

ItemValue
Principlecleaved fibres pushed together in an alignment element with index-matching gel
Loss0.2–0.5 dB
Reflectance−35 … −45 dB (gel dries out over years → worse)
Time1–2 min, no power needed
Useemergency restoration, temporary links, places without a splicer
Rulereplace with fusion during permanent repair (Maintenance & restoration)

Putting a connector on a fibre

MethodLossReflectanceTimeNotes
Pigtail fusion splice (factory connector + splice)0.1–0.3 (connector) + 0.03 (splice)−55 (UPC) / −65 (APC)3–5 minthe standard for panels and closures
Splice-on connector (SOC)0.1–0.2 dB−50 … −603 minshort fibre stub fused in the connector body; good for drops and repairs
Mechanical field-installable connector0.3–0.5 dB−40 … −502 mincleaved fibre meets a factory stub in gel; FTTH indoor, temporary
Epoxy and polish (factory)0.1–0.2−55 / −65pre-terminated cords and cassettes; field polishing is obsolete
Pre-terminated cable assemblyas factory connectorsnone in fieldMPO trunks, plug-and-play; needs exact lengths

Connector geometry and grades: Connectors & fibre types.

Acceptance criteria

JointLoss (SMF)Loss (MMF)ReflectanceVerification
Fusion splice≤ 0.1 dB (typ. ≤ 0.05); redo above 0.3≤ 0.3< −60 dB (none visible)bidirectional OTDR average (Testing)
Ribbon splice≤ 0.15 dB per fibreOTDR
Mechanical splice≤ 0.5 dB≤ 0.5≤ −40 dBOTDR (reflective event)
Pigtail / connector pair≤ 0.5 dB design, ≤ 0.3 typical≤ 0.75UPC ≤ −50, APC ≤ −60LSPM, inspection scope
Field connector≤ 0.5 dB≤ −45LSPM + scope

Defects and their look

DefectSplicer image / OTDRCauseFix
Bubblebright spot at the joint; high lossdirt or bad cleavere-cleave, re-clean
Fat / thin splicebulge or neck at the jointwrong overlap/arc powerrecalibrate arc, check push distance
Core offsetcores misaligned; 0.2+ dBcladding alignment on eccentric fibre; dirty V-grooveclean groove, use core alignment
Bad cleave angletilted endface; splicer warnsworn blade, fibre not seatedrotate/replace blade
Dust in the arcblack specks, high lossdirty environmentclean, shield the splicer
Micro-crack at coating edgebreaks in proof test or laterstripper nickreplace stripper blades, check technique
Reflective splicespike on OTDRmechanical splice, air gap, or fibre not fused (arc failed)redo as fusion
Wet splicegel or water in the trayclosure ingressdry, reseal (Plant faults)

Tools for the job

Fusion splicer with cleaver and stripper, fibre shears, gel remover, 99 % IPA and lint-free wipes, splice sleeves, sleeve oven (in splicer), cable jacket stripper and ring cutter, buffer tube cutter, aramid scissors, splice trays and closures, VFL, OTDR for verification, inspection scope for connectors, sharps container, safety glasses (Safety & handling).

In CodingBox

A splice never shows in the module memory — but its loss shows in the module's Rx power. Recording Rx at commissioning and after every re-splice (with CodingBox on the bench or the switch in service) turns "we re-spliced closure 14" into a number: the link passport before and after (DDM in the app).

Inspecting and cleaning the connectors this page produces — zones, criteria, methods: Endface inspection & cleaning; why mechanical splices and open UPC ends matter for the link — reflectance and return loss: Reflections & return loss.