2007Cailiao yanjiu xuebaoRequires access

The formation mechanism of anomalous eutectic in highly undercooled Ni-Sn eutectic alloy

Zhou Yaohe

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Abstract

Applying glass flux combined with cyclical superheating, high undercooling were achieved in Ni-32.5%Sn eutectic alloy melt. The anomalous eutectic was observed in the as-solidified microstructure. The volume fraction of the anomalous eutectic increases with undercooling, and when undercooling was exceeding a critical value, the as-solidified microstructure was totally occupied by anomalous eutectic. In terms of competitive nucleation and growth betweenα(Ni) and Ni3Sn, and remelting ofα(Ni) dendrites, the forming mechanism of anomalous eutectic was interpreted. Subjected to high undercooling, rapid primary solidification leads to the growth of primary dendrites, thus resulting in rapid recalescence and subsequent remelting of the primary dendrites. Then secondary phase is solidified from the remained liquid, and surrounds the primary dendrites fragments, so the anomalous eutectic is formed.

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Applying glass flux combined with cyclical superheating, high undercooling were achieved in Ni-32.5%Sn eutectic alloy melt. The anomalous eutectic was observed in the as-solidified microstructure. The volume fraction of the anomalous eutectic increases with undercooling, and when undercooling was exceeding a critical value, the as-solidified microstructure was totally occupied by anomalous eutectic. In terms of competitive nucleation and growth betweenα(Ni) and Ni3Sn, and remelting ofα(Ni) dendrites, the forming mechanism of anomalous eutectic was interpreted. Subjected to high undercooling, rapid primary solidification leads to the growth of primary dendrites, thus resulting in rapid recalescence and subsequent remelting of the primary dendrites. Then secondary phase is solidified from the remained liquid, and surrounds the primary dendrites fragments, so the anomalous eutectic is formed.

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Available abstract

Applying glass flux combined with cyclical superheating, high undercooling were achieved in Ni-32.5%Sn eutectic alloy melt. The anomalous eutectic was observed in the as-solidified microstructure. The volume fraction of the anomalous eutectic increases with undercooling, and when undercooling was exceeding a critical value, the as-solidified microstructure was totally occupied by anomalous eutectic. In terms of competitive nucleation and growth betweenα(Ni) and Ni3Sn, and remelting ofα(Ni) dendrites, the forming mechanism of anomalous eutectic was interpreted. Subjected to high undercooling, rapid primary solidification leads to the growth of primary dendrites, thus resulting in rapid recalescence and subsequent remelting of the primary dendrites. Then secondary phase is solidified from the remained liquid, and surrounds the primary dendrites fragments, so the anomalous eutectic is formed.

Key concepts: Eutectic system, Supercooling, Recalescence, Materials science, Nucleation, Microstructure, Alloy, Superheating

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