液态五元z<sub>57</sub>Cu<sub>20</sub>Al<sub>10</sub>Ni<sub>8</sub>Ti<sub>5</sub>合金

None Xu Shan-Sen, None Chang Jian, None Zhai Bin, None Zhu Xiannian, None Wei Bing-Bo
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摘要

液体五元的大量过冷和快速凝固Zr<sub>57</sub> cu>20</sub> al>10</sub> ni>8</sub>Ti<sub>5</sub>采用电磁悬浮(EML)技术制备合金。通过分子动力学(MD)模拟揭示了非晶态凝固机理。在EML实验中观察到,无容器凝固合金具有核壳结构,主要为非晶相成为核心和结晶ZrCu、Zr<sub>2</sub>Cu和Zr<sub>8</sub>Cu<形成壳层的相。非晶芯组织体积分数随着过冷度的增加而增加,在最大实验过冷度为300 K时达到81.3%,表明非晶完全凝固所需的临界过冷度为334 K。TEM分析表明,合金组织主要由Zr<sub>8</sub>Cu<sub>5</sub>而当液体过冷接近该阈值时,ZrCu相和Zr<sub>2</sub>Cu相受到抑制。一旦达到临界过冷,非晶凝固就会取代Zr<sub>8</sub>Cu<sub>5</sub>阶段。此外,在晶壳中发现了少量的非晶相和少量的z<sub>8</sub>Cu<sub>5</sub>在非晶核中检测到纳米团簇。MD模拟进一步验证了合金液达到临界过冷度时,壳内非晶相的形成是由微偏析引起的溶质过冷引起的,而芯内的纳米团簇则主要是由高度过冷的液相内部的微热波动效应引起的。
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Microscopic structure evolution and amorphous solidification mechanism of liquid quinary Zr<sub>57</sub>Cu<sub>20</sub>Al<sub>10</sub>Ni<sub>8</sub>Ti<sub>5</sub> Alloy
The substantial undercooling and rapid solidification of liquid quinary Zr57Cu20Al10Ni8Ti5 alloy are achieved by electromagnetic levitation (EML) technique. The amorphous solidification mechanism is revealed with molecular dynamics (MD) simulation. It is observed in EML experiment that the containerlessly solidified alloy is characterized by a core-shell structure, with mainly amorphous phase becoming the core and crystalline ZrCu, Zr2Cu and Zr8Cu5 phases forming the shell. The volume fraction of amorphous core structure increases with undercooling and attains a value up to 81.3% at the maximum experimental undercooling of 300 K, which indicates that the critical undercooling required for complete amorphous solidification is 334 K. TEM analyses show that the alloy microstructure is mainly composed of Zr8Cu5 phase, whereas the ZrCu phase and Zr2Cu phase are suppressed when liquid undercooling approaches this threshold. Once the critical undercooling is reached, amorphous solidification prevails over the crystallization of Zr8Cu5 phase. In addition, a small quantity of amorphous phases are found in the crystalline shell and a little trace of Zr8Cu5 nano-cluster is detected among the amorphous core. It is further verified by MD simulation that the formation of amorphous phase in the shell is caused by the microsegregation-induced solutal undercooling when liquid alloy attains the critical undercooling, while the nano-clusters within the core is mainly ascribed to the micro-thermal fluctuation effect inside highly undercooled liquid phase.
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