For most of a century, an airliner was a machine made of aluminium — hundreds of thousands of sheets, frames and rivets bolted into a metal tube. Then Boeing rolled out the 787 Dreamliner, and the industry’s most fundamental building material changed. Today’s newest airliners are, essentially, made of woven plastic and glue: carbon-fibre reinforced polymer.
It sounds like a downgrade. It is anything but.
Informations clés
| The shift | From riveted aluminium to carbon-fibre reinforced polymer (CFRP) |
| Poids | CFRP is roughly 40% lighter than aluminium for the same volume |
| Fatigue life | About 5-10x that of aluminium |
| Corrosion | Composites do not corrode; aluminium does |
| Boeing 787 | ~50% composite by weight; fuselage built as one-piece barrels |
| Airbus A350 | Clean-sheet composite widebody response to the 787 |
| Payoff | Lower fuel burn, longer service life, higher cabin comfort |
Why plastic beats metal
Carbon-fibre composite is built from filaments of carbon, thinner than a human hair and immensely strong in tension, laid up in a matrix of hardened resin. For an equivalent volume it is around 40% lighter than aluminium, and on an aircraft, weight is money: every kilogram saved is fuel not burned across tens of thousands of flights.

Weight is only the start. Aluminium slowly weakens under the endless pressurise-depressurise cycles of airline flying — metal fatigue is the reason airframes have finite lives. Composites shrug off those cycles far better.
One barrel instead of a thousand panels
Composites also changed how aircraft are built. Rather than riveting together hundreds of aluminium panels, Boeing winds carbon-fibre tape around a giant mould to form each fuselage section as a single, seamless barrel, then bakes it hard in an autoclave. Fewer joints means fewer rivets, fewer fatigue points, and less drag.

Airbus answered the 787 with the A350 XWB, a clean-sheet composite widebody of its own. Between them, the two aircraft settled the argument for long-haul jets.
Not magic — just better, for now
Composites are not perfect. They are expensive to manufacture, harder to inspect for hidden internal damage, and behave very differently from metal in a crash or a lightning strike, demanding new engineering and repair techniques. But the balance sheet is decisive: lighter, longer-lived, corrosion-free structures that let airlines fly further on less fuel, with the bonus of a more humid, comfortable cabin that metal fuselages could never risk.
The next time you fly long-haul, look at the wing flexing gently outside the window. There is a good chance it is not metal at all — and that is exactly why it can bend so far.
Sources: Boeing; Airbus; Simple Flying; CompositesWorld; Qantas.
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