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DESIGN OF NANOCRYSTALLINE MATERIALS FOR STRUCTURAL APPLICATIONS

机译:结构应用的纳米材料设计

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摘要

The unique and desirable behavior of nanocrystalline materials (NCMs) is singularly attributed to the large number of grain boundaries relative to their coarse grain material (CGM) counterparts, which translates into a significant fraction of atoms (up to 50%) located in interfacial regions. Thus, the atomic structure and properties of the grain boundaries are of extreme importance in dictating the macroscopic physical and mechanical properties of NCMs. However, one of the biggest challenges is to produce durable nanostructures that will not lose their properties during service.rnHardness, strength, fracture toughness, creep and fatigue experiments have been conducted to assess the properties of nanostructured Cu and their durability under temperature and stress. Molecular dynamics studies have been used to investigate how segregated dopant atoms affect the energetics of grain boundaries and their implications on grain growth in nanocrystalline metals by our group.
机译:纳米晶材料(NCM)的独特且理想的性能归因于相对于其粗晶粒材料(CGM)对应物而言大量的晶界,这转化为位于界面区域中的很大一部分原子(最高50%) 。因此,晶界的原子结构和性质在决定NCM的宏观物理和机械性质方面极为重要。然而,最大的挑战之一是生产在使用过程中不会失去其性能的耐用纳米结构。进行了硬度,强度,断裂韧性,蠕变和疲劳实验,以评估纳米结构Cu的性能及其在温度和应力下的耐久性。分子动力学研究已被用来研究偏析的掺杂原子如何影响晶界的能级及其对纳米晶金属晶粒生长的影响。

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