材料科学
层错能
微观结构
高熵合金
亚稳态
堆积
合金
叠加断层
动能
延展性(地球科学)
化学物理
复合材料
位错
经典力学
物理
蠕动
量子力学
核磁共振
作者
Wenjun Lu,Christian H. Liebscher,Gerhard Dehm,Dierk Raabe,Zhiming Li
标识
DOI:10.1002/adma.201804727
摘要
Abstract Microstructural length‐scale refinement is among the most efficient approaches to strengthen metallic materials. Conventional methods for refining microstructures generally involve grain size reduction via heavy cold working, compromising the material's ductility. Here, a fundamentally new approach that allows load‐driven formation and permanent refinement of a hierarchical nanolaminate structure in a novel high‐entropy alloy containing multiple principal elements is reported. This is achieved by triggering both, dynamic forward transformation from a faced‐centered‐cubic γ matrix into a hexagonal‐close‐packed ε nanolaminate structure and the dynamic reverse transformation from ε into γ. This new mechanism is referred to as the “bidirectional transformation induced plasticity” (B‐TRIP) effect, which is enabled through a near‐zero yet positive stacking fault energy of γ. Modulation of directionality in the transformation is triggered by local dissipative heating and local micromechanical fields. The simple thermodynamic and kinetic foundations for the B‐TRIP effect render this approach generally suited for designing metastable strong and ductile bulk materials with hierarchical nanolaminate substructures.
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