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  2. Niobium–titanium - Wikipedia

    en.wikipedia.org/wiki/Niobiumtitanium

    Niobium–titanium (Nb-Ti) is an alloy of niobium and titanium, used industrially as a type II superconductor wire for superconducting magnets, normally as Nb-Ti fibres in an aluminium or copper matrix. Its critical temperature is about 10 kelvins. [1]

  3. Niobium alloy - Wikipedia

    en.wikipedia.org/wiki/Niobium_alloy

    Niobium–tin superconducting wire from the ITER fusion reactor, which is currently under construction.. Niobium-tin and Niobium-titanium are essential alloys for the industrial use of superconductors, since they remain superconducting in high magnetic fields (30 T for Nb 3 Sn, 15 T for NbTi); there are 1200 tons of NbTi in the magnets of the Large Hadron Collider, whilst Nb 3 Sn is used in ...

  4. Superconducting wire - Wikipedia

    en.wikipedia.org/wiki/Superconducting_wire

    Most commonly, conventional superconductors such as niobium–titanium are used, [1] but high-temperature superconductors such as YBCO are entering the market. Superconducting wire's advantages over copper or aluminum include higher maximum current densities and zero power dissipation.

  5. China’s discovery of never-before-seen ore could propel ...

    www.aol.com/china-discovery-never-seen-ore...

    The main source of niobium until now has been from the ore mineral columbite that is extracted widely in Canada, Brazil, Australia and Nigeria, with China obtaining nearly 95 per cent of the ...

  6. Ti-6Al-7Nb - Wikipedia

    en.wikipedia.org/wiki/Ti-6Al-7Nb

    Ti-6Al-7Nb (UNS designation R56700) is an alpha-beta titanium alloy first synthesized in 1977 containing 6% aluminum and 7% niobium. It features high strength and has similar properties as the cytotoxic vanadium containing alloy Ti-6Al-4V. Ti-6Al-7Nb is used as a material for hip prostheses. [1]

  7. Superconducting magnet - Wikipedia

    en.wikipedia.org/wiki/Superconducting_magnet

    The first successful superconducting magnet was built by G.B. Yntema in 1955 using niobium wire and achieved a field of 0.7 T at 4.2 K. [10] Then, in 1961, J.E. Kunzler, E. Buehler, F.S.L. Hsu, and J.H. Wernick made the discovery that a compound of niobium and tin could support critical-supercurrent densities greater than 100,000 amperes per ...

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