Jet engine hot section
Compressor disks, turbine cases, shafts, fasteners. The 540 °C+ operating environment kills everything else.
Nickel superalloy · UNS N07718
Nickel-chromium-iron precipitation-hardening superalloy that holds its strength from cryogenic temperatures up to 700 °C (1300 °F). The standard for jet-engine hot-section parts, gas turbines, and high-pressure energy applications. Hard-won performance — but worth it where it counts.
When to use
Inconel 718 is what you spec when steel would creep, titanium would lose its property profile, and stainless would soften. It’s the dominant alloy for compressor and turbine disks, fasteners, and casings in jet engines — roughly 30% of an F-class gas turbine’s hot-section weight is Inconel 718.
The combination is unique: 1380 MPa UTS at room temperature, ~1275 MPa retained at 540 °C, excellent fatigue and creep resistance, oxidation resistance, and weldability. The trade-off is cost (4–8× stainless) and machining difficulty (12/100 — among the toughest production alloys to cut).
Strengths
Trade-offs
Specs
Typical values for solution-treated and aged (precipitation-hardened) Inconel 718 bar per AMS 5663. Solution-treated only (without aging), UTS is typically ~930 MPa (135 ksi) with far lower yield — almost always aged before use.
Mechanical
| Ultimate tensile strength | 1380 MPa (200 ksi) |
|---|---|
| Yield strength (0.2% offset) | 1035 MPa (150 ksi) |
| Elongation at break | 12% |
| UTS at 540 °C | 1275 MPa (185 ksi) |
| UTS at 650 °C | 1160 MPa (168 ksi) |
| Modulus of elasticity | 200 GPa |
| Hardness | 36 – 44 HRC |
| Stress rupture≥4% elongation, per AMS 5662/5663 | ≥23 h at 649 °C (1200 °F) / 689 MPa (100 ksi) |
Source: Special Metals datasheet; AMS 5663; elevated-temperature UTS from Rolled Alloys typical aged-bar data. Values shown are typical for STA bar; the AMS 5663 acceptance minimum is 1275 MPa (185 ksi).
Physical & thermal
| Density | 8.19 g/cc (0.296 lb/in³) |
|---|---|
| Melting range | 1260 – 1336 °C |
| Specific heat | 0.435 J/g·°C |
| Thermal conductivity | 11.4 W/m·K |
| CTE (20–100 °C) | 13.0 µm/m·°C |
| Electrical resistivity | 1.25 µΩ·m |
| Magnetic | Non-magnetic above ~10 K |
Thermal conductivity is roughly 2× titanium and 1/15 aluminum — heat retention drives the machining challenge.
Composition
| Nickel (Ni) + cobalt | 50.0 – 55.0 |
|---|---|
| Chromium (Cr) | 17.0 – 21.0 |
| Iron (Fe) | balance |
| Niobium (Nb) + tantalum | 4.75 – 5.50 |
| Molybdenum (Mo) | 2.80 – 3.30 |
| Titanium (Ti) | 0.65 – 1.15 |
| Aluminum (Al) | 0.20 – 0.80 |
| Carbon (C) | 0.08 max |
| Cobalt (Co) | 1.00 max |
Niobium drives gamma double-prime precipitation — the slower-aging mechanism that gives 718 its weldability.
Specifications
Machining
Inconel 718 punishes mistakes. Use slow speeds, heavy feeds, sharp edges, and rigid setups. A worn tool work-hardens the surface, which then ruins the next tool — every operator knows the cascade.
Applications
Compressor disks, turbine cases, shafts, fasteners. The 540 °C+ operating environment kills everything else.
Land-based gas turbine wheels, exhaust components, oil & gas downhole tools, rocket engine turbopumps.
LH₂ / LOX rocket components — Inconel keeps ductility at −253 °C where steel goes brittle.
Compare
Lighter alternative
Half the density. Picks up where it can — up to ~316 °C (600 °F) long-term service.
Cheaper alternative
When operating temp stays below 425 °C and corrosion drives the spec.
Cost / weight
For ambient-temp structures where 718's strength is overkill.
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