CodingBox Documentation

How optical fibre is made: preforms, drawing, coating, proof test

A telecom fibre is a glass thread 125 µm across, drawn from a preform the size of a baseball bat at tens of metres per second, coated within a fraction of a second and stressed to 1 % strain along its whole length before it is sold. The manufacturing route explains most of the numbers an engineer meets later: why mode field diameter is specified to ±0.4 µm, why splices between vendors lose a little more, why installation strain is capped at a fraction of the proof test, why modern fibre is hydrogen-safe and why 200 µm fibres need different splicer settings. This page follows the process from raw chemicals to the spool and ends with what it means in the field.

Materials

MaterialRole
SiCl₄ (silicon tetrachloride)ultra-pure silica source; oxidised or hydrolysed in a flame or furnace to SiO₂ soot
GeCl₄ → GeO₂raises the refractive index — the core dopant of almost all telecom fibres; slightly increases Rayleigh scattering
Fluorine (SiF₄, C₂F₆, SF₆)lowers the index — depressed claddings, the trench of bend-insensitive G.657 fibre, the cladding of pure-silica-core fibres
POCl₃ → P₂O₅lowers viscosity, used in MCVD claddings; makes glass hydrogen-sensitive — a reason old fibres age badly
Al₂O₃, Er, Yb, Tmactive fibres for amplifiers and lasers, added by solution doping of the porous soot
Cl₂ and Hedrying and consolidation: chlorine removes OH to below 1 ppb (low water peak), helium purges the porous body
UV-curable acrylatesdual coating: a soft primary (modulus ~1 MPa) cushions the glass, a hard secondary (~1 GPa) protects it
Colour inks, ribbon matrixidentification (12 colours) and ribbon assembly

Preform processes

ProcessHow it worksWho uses itStrengths
MCVD (modified chemical vapour deposition, Bell Labs 1974)vapours flow inside a rotating silica tube heated by an external torch; soot deposits layer by layer (cladding, then core); the tube is collapsed into a solid rodmost manufacturers, all specialty fibre makersflexible: erbium-doped, polarization-maintaining, dispersion-compensating fibres; moderate preform size
PCVD (plasma-activated CVD)like MCVD, but a microwave plasma replaces the torch; thousands of very thin layersgraded-index multimode makersprecise index profiles — OM3/OM4/OM5
OVD (outside vapour deposition)soot from a flame is deposited on a rotating target rod, core layers first; the rod is removed, the porous body is dried in Cl₂ and sintered to clear glasslarge-volume single-mode and multimode productionvery low OH, large preforms, core and cladding in one process
VAD (vapour-phase axial deposition)soot grows on the end of a rotating rod that is pulled upward; continuous processlarge-volume single-mode productionvery long preforms, low OH, high throughput
Overcladding (RIC — rod in cylinder; soot overclad; sleeving)the core rod, which carries the whole index profile, is surrounded by cheap synthetic silica — a cylinder fused on during draw, or extra sooteveryonethe expensive doped glass is only a few percent of the volume

A finished preform is 100–200 mm in diameter and 1–3 m long. A 150 mm × 2 m preform draws into roughly 2 500–3 000 km of 125 µm fibre; the largest modern preforms yield more than 5 000 km.

Drawing

StepWhat happensNumbers
Furnacethe preform tip softens in a graphite or zirconia induction furnace1 900–2 100 °C
Neck-down and drawa thread is pulled from the molten tip; speed sets the diameter20–40 m/s (1 200–2 500 m/min), modern towers faster
Diameter controla laser gauge measures the bare fibre and feeds back to the capstan speed125 ± 0.7 µm specified, ±0.1 µm achieved
Coolinghelium-filled tube cools the glass enough to be coateda few hundred °C in less than a metre
Primary coatingsoft acrylate applied through a pressurised die, cured by UV lampsto ~190 µm
Secondary coatinghard acrylate, cured245 ± 10 µm standard; 200 ± 10 µm for high-density cables
Spinningthe fibre is twisted alternately clockwise and counter-clockwise during draw, mixing the birefringence axesPMD coefficient < 0.1 ps/√km instead of 0.5–2 ps/√km on 1980s fibre
Capstan and windingtension-controlled winding on spools25–50 km per spool; towers are 20–40 m tall

Colouring adds an ink layer (or a coloured secondary); ribbons bond 4–12 coloured fibres in a matrix, rollable ribbons bond them intermittently so they can be rolled into a tube.

Proof test and quality assurance

TestMethod (IEC 60793-1-xx)Specification for G.652.D
Proof testevery metre runs through a tension of 0.69 GPa (100 kpsi, ≈ 1 % strain) for ≥ 1 s (part 1-30); submarine and special fibres 1.38 GPaany flaw that would break below that stress breaks here, not in the ground
Geometrycladding diameter, non-circularity, core–cladding concentricity (part 1-20)125 ± 0.7 µm; ≤ 1 %; ≤ 0.6 µm — connector and splice alignment depend on it
Attenuationcutback (part 1-40) at 1310/1550/1625 nm plus a spectral scan; OTDR on every spool for uniformity and point defects≤ 0.35 / 0.21 / 0.23 dB/km typical; point defects ≤ 0.05 dB
Mode field diameterfar-field scan (part 1-45)9.2 ± 0.4 µm at 1310 nm
Cutoff wavelengthpart 1-44cabled cutoff ≤ 1 260 nm
Chromatic dispersionphase-shift (part 1-42)λ₀ = 1 300–1 324 nm, slope ≤ 0.092 ps/(nm²·km)
PMDpart 1-48link design value ≤ 0.20 ps/√km
Macrobend losspart 1-47≤ 0.1 dB for 100 turns at 30 mm radius (1625 nm)
Coatingstrip force 1.3–8.9 N (part 1-32), coating geometry, curlconsistent stripping in the field
Hydrogen ageingIEC 60793-2-50≤ 0.01 dB/km increase after exposure — modern fibre is hydrogen-safe

Every spool ships with a data sheet of measured values. Cable makers keep the mapping spool → cable → fibre number; ask for those fibre data sheets during acceptance — they are the first baseline of your plant (Documentation & labelling).

Special fibres and what is different in making them

FibreManufacturing differenceUse
Bend-insensitive G.657a fluorine-doped trench ring deposited around the core (MCVD/PCVD or OVD)FTTH, high-density panels, 200 µm cables
Graded-index multimode OM3–OM5thousands of layers with a parabolic (α ≈ 2) index profile; differential mode delay measured on every preformshort-reach VCSEL links
Erbium-doped (EDF)porous core soot soaked in Er/Al solution before sintering; short lengths (metres) per amplifierEDFAs
Polarization-maintaining (PANDA, bow-tie)holes drilled in the preform and boron-doped stress rods inserted, or shaped stress regionscoherent transceivers internally, sensors, pump combiners
Dispersion-compensating (DCF)small core with high index step giving large negative dispersionlegacy 10G/40G compensation
Pure-silica-core G.654undoped core, fluorine-doped cladding; large effective area variants (G.654.E)submarine and long-haul coherent: 0.15–0.17 dB/km
Hollow-core (NANF and relatives)stack-and-draw of silica capillaries forming an air core; light travels 1.46 × faster and almost without non-linearitylatency-critical links, research; losses below 0.2 dB/km reported in the 2020s
Multicore4–7 cores in a 125–200 µm cladding, drawn from a stacked preformspace-division multiplexing, submarine systems since the 2020s
Radiation-hardfluorine-doped core and cladding, no germaniumnuclear, space, accelerators
Carbon or metal coatedhermetic carbon layer applied in the draw tower before the acrylateoil and gas, hydrogen-rich and high-temperature environments

Why a network engineer cares

Manufacturing factField consequence
MFD specified to ±0.4 µmsplices between fibres from different vendors or eras can lose 0.02–0.05 dB more; gainers and losers on the OTDR (Splicing & termination)
Proof test at 1 % strainlong-term installed strain is limited to 20 % of proof (0.2 %), installation to 60 % (Reliability & ageing)
Concentricity ≤ 0.6 µmconnector loss is dominated by ferrule and polish, not by the glass
Spinning since the late 1990s100G coherent runs on any fibre made after about 2000; pre-1995 fibre needs a PMD test (Fibre characterization)
Low-OH dryingthe 1383 nm water peak is gone: E-band CWDM and 1625/1650 nm monitoring are usable (Attenuation & windows)
200 µm coatingsmaller cables, but holders, stripper settings and cleaver clamps must match; mixed 200/250 µm splicing needs the right holders
Cabled attenuation > fibre attenuationdesign with the cabled value from the cable data sheet, not the fibre value (Cable construction)
Ribbonsmass fusion splicers, 12 fibres per splice; identification by ribbon position

In CodingBox

A transceiver knows nothing about how the fibre was made, but its rated lengths for SMF, OM3 and OM4 assume fibre made to these tolerances — G.652.D or the stated OM grade. CodingBox shows those length fields; on unusual fibre (G.654, G.653, hollow-core) the rated distances do not apply and the link budget has to be built from the fibre's own data sheet (Check transceiver, Fibre types).