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EntityQ5459028· pop 29· linked from 192 articles

Also known as nickel titanium, Nitinol, Nickel Titanium Naval Ordnance Laboratory

metal alloy of nickel and titanium, where the two elements are present in roughly equal atomic percentages

Key facts

Melting point
1,310 °C (2,390 °F)
Density
6.45 g/cm (0.233 lb/cu in)
Electrical resistivity austenite
82 × 10 Ω·cm
Martensite
76 × 10 Ω·cm
Thermal conductivity austenite
0.18 W/cm·K
Coefficient of thermal expansion austeni
11 × 10 /°C
Magnetic permeability
< 1.002
Magnetic susceptibility austenite
3.7 × 10 emu/g
Elastic modulus austenite
75–83 GPa (10.9 × 10 ^ –12.0 × 10 ^ psi)
Yield strength austenite
195–690 MPa (28.3–100.1 ksi)

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Wikidata facts

Image
Nitinol draht.jpg
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chemical formula
Ni₁₄Ti₁₁
Commons category
Nickel titanium
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Article

Nickel titanium, also known as nitinol, is a metal alloy of nickel and titanium, where the two elements are present in roughly equal atomic percentages. Different alloys are named according to the weight percentage of nickel; e.g., nitinol 55 and nitinol 60.

Nitinol alloys exhibit two closely related and unique properties: the shape memory effect and superelasticity (also called pseudoelasticity). Shape memory is the ability of nitinol to undergo deformation at one temperature, stay in its deformed shape when the external force is removed, then recover its original, undeformed shape upon heating above its "transformation temperature". Superelasticity is the ability for the metal to undergo large deformations and immediately return to its undeformed shape upon removal of the external load. Nitinol can undergo elastic deformations 10 to 30 times larger than alternative metals. Whether nitinol behaves with shape memory effect or superelasticity depends on whether it is above its transformation temperature during the action. Nitinol behaves with the shape memory effect when it is colder than its transformation temperature, and superelastically when it is warmer than it.

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