用瞬态热流凝固的多组分合金 Al33wt%Cu1wt%Ni-1.2wt%Ta 的热特性和微观结构特性分析

Wellington Bruno Silva de Jesus, Vinicius Lima da Silva, Héricles Ruiliman Oliveira de Souza, Thiago Antônio Paixão de Sousa Costa, Otavio Fernandes Lima Da Rocha, Luiz Gabriel da Silva Nascimento Nascimento, Maria Adrina Paixão De Souza Da Silva
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引用次数: 0

摘要

现代工业对具有特殊性能的材料的需求不断增长,这就要求对金属凝固过程有更深入的了解。本研究调查了一种新型多组分合金 Al33wt%Cu1wt%Ni-1.2wt%Ta 的热和微观结构特征。这种合金由铝、铜、镍和钽组成,与传统合金相比,具有更高的机械强度、热稳定性和耐腐蚀性,适合各种应用。利用瞬态热流技术,对凝固后的合金进行了热表征和微观结构分析。热图谱显示了沿铸锭的不同生长和冷却速率,影响了从柱状晶粒到等轴晶粒的宏观结构转变。微观结构检查发现了复杂的演变过程,最初是细化的树枝状间距,随后形成了金属间相,如 Al3Ta、α-Al 和 Al2Cu。研究还提出了关于形成菱形金属间化合物(如 Ni3Ta 和 Ta(Cu,Al)2)的假设,这些金属间化合物被消耗后在边缘形成 Al7Cu4Ni。二次树枝状间距分析支持了这一假设,并显示出与生长规律的相关性。研究结果为凝固行为和微结构演变提供了宝贵的见解,有助于优化参数和提高合金的性能,以满足特定应用的需要。然而,研究还存在局限性,包括需要进一步研究探索机械和热性能,并验证工业潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal and Microstructural Characterization of the Multicomponent Alloy Al33wt%Cu1wt%Ni-1.2wt%Ta Solidified with Transient Heat Flow
The demand for materials with specific properties continues to grow in modern industry, necessitating a deeper understanding of metal solidification processes. This study investigates the thermal and microstructural characteristics of a novel multicomponent alloy, Al33wt%Cu1wt%Ni-1.2wt%Ta, which has not been previously reported in the literature. This alloy, comprising aluminum, copper, nickel and tantalum, exhibits superior mechanical strength, thermal stability and corrosion resistance compared to conventional alloys, making it suitable for various applications. Utilizing transient heat flow techniques, thermal characterization and microstructural analysis were performed on the alloy after solidification. Thermal mapping revealed variable growth and cooling rates along the ingot, influencing macrostructural transitions from columnar to equiaxed grains. Microstructural examination uncovered a complex evolution, with refined dendritic spacings initially, followed by the formation of intermetallic phases such as Al3Ta, α-Al and Al2Cu. The study also proposed a hypothesis on the formation of diamond-shaped intermetallics like Ni3Ta and Ta(Cu,Al)2, which were consumed to form Al7Cu4Ni at the edges. Secondary dendritic spacing analysis supported this hypothesis, showing correlation with growth laws. The findings provide valuable insights into solidification behavior and microstructural evolution, aiding in parameter optimization and enhancing the alloy’s properties for specific applications. However, limitations include the need for further research to explore mechanical and thermal properties and validate industrial potential.
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