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Aluminum Lithium (AlLi) Alloy |
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Aluminum Linthanum (AlLi) Alloy Composition --- AlLi 94/6 Al-Li 92/8 Al-Li 90/10 Al-Li 85/15 Al-Li80/20 wt% Shape --- Broken ingot, Ingot, Board Ingot, Irregular lump Ingot size: custom-made
Package --- inner with vacuum, outside with wooden case |
Base information Aluminium–lithium alloys (Al-Li) are a series of alloys of aluminium and lithium, often also including copper and zirconium. Since lithium is the least dense elemental metal these alloys are significantly less dense than aluminium. Commercial Al–Li alloys contain up to 2.45% by weight of lithium. Alloying with lithium reduces structural mass by three effects: Displacement—a lithium atom is lighter than an aluminium atom; each lithium atom then displaces one aluminium atom from the crystal lattice while maintaining the lattice structure. Every 1% by weight of lithium added to aluminium reduces the density of the resulting alloy by 3% and increases the stiffness by 5%.This effect works up to the solubility limit of lithium in aluminium, which is 4.2%. Al–Li alloys are primarily of interest to the aerospace industry due to the weight advantage they provide. They are currently used in a few commercial jetliner airframes, the fuel and oxidizer tanks in the SpaceX Falcon 9 launch vehicle, and the AgustaWestland EH101 helicopter. The third and final version of the US Space Shuttle's external tank was principally made of Al–Li. In addition, Al–Li alloys are also used on both the Atlas V and Delta IV EELV rockets, and before its cancellation were to be used by NASA for Constellation program, primarily, on its Ares I and Ares V rockets, as well as the Orion spacecraft. Al-Li alloys are generally joined by friction stir welding. Some Al–Li alloys, such as Weldalite 049, can be welded conventionally; however, this property comes at the price of density; Weldalite 049 has about the same density as 2024 aluminium and 5% higher elastic modulus. |
