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Strong ductile and thermally stable Cu-based metal-intermetallic nanostructured composites

机译:坚固韧性好且热稳定的铜基金属-金属间纳米结构复合材料

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摘要

Bulk metallic glasses (BMGs) and nanocrystalline metals (NMs) have been extensively investigated due to their superior strengths and elastic limits. Despite these excellent mechanical properties, low ductility at room temperature and poor microstructural stability at elevated temperatures often limit their practical applications. Thus, there is a need for a metallic material system that can overcome these performance limits of BMGs and NMs. Here, we present novel Cu-based metal-intermetallic nanostructured composites (MINCs), which exhibit high ultimate compressive strengths (over 2 GPa), high compressive failure strain (over 20%), and superior microstructural stability even at temperatures above the glass transition temperature of Cu-based BMGs. Rapid solidification produces a unique ultra-fine microstructure that contains a large volume fraction of Cu5Zr superlattice intermetallic compound; this contributes to the high strength and superior thermal stability. Mechanical and microstructural characterizations reveal that substantial accumulation of phase boundary sliding at metal/intermetallic interfaces accounts for the extensive ductility observed.
机译:块状金属玻璃(BMG)和纳米晶体金属(NM)由于其优越的强度和弹性极限而被广泛研究。尽管具有这些优异的机械性能,但室温下的延展性低以及高温下的微结构稳定性差,常常限制了它们的实际应用。因此,需要一种能够克服BMG和NM的这些性能极限的金属材料系统。在这里,我们提出了新颖的基于铜的金属间金属纳米结构复合材料(MINCs),即使在高于玻璃化转变温度的条件下,它们也具有很高的极限抗压强度(超过2 GPa),很高的压缩破坏应变(超过20%)和优异的微观结构稳定性。铜基BMG的温度。快速凝固产生了独特的超细微结构,其中包含大量的Cu5Zr超晶格金属间化合物。这有助于高强度和出色的热稳定性。力学和微观结构表征表明,在金属/金属间界面处的相界滑动的大量积累解释了所观察到的广泛延展性。

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