Synergistic strengthening of additively manufactured NiTi shape memory alloys via amorphous/lamellar and core/shell dual structures
作者:Huwen Ma, Yanchun Zhao, Yu Su, Junhui Luo, Jia‐Cheng Xiang, Tengfei Zheng, Shao‐Yu Chai, Feng Li, Peter K. Liaw, Yuan Wu · 发表于:Rare Metals · 年份:2025 · DOI:10.1007/s12598-025-03556-9 · 被引用次数:5 · 研究领域:Shape Memory Alloy Transformations、Creativity in Education and Neuroscience
Abstract NiTi shape memory alloys (SMAs), fabricated by selective laser melting (SLM), demonstrate exceptional mechanical responses under both millimeter and micron‐scale compression. The micro‐pillars exhibit compressive strengths exceeding 5 GPa without localized failure, while macroscopic compression tests reveal fracture strengths above 3.2 GPa with plastic deformation exceeding 40%. Notably, the stress–strain curves show an abrupt increase following martensitic yield. To elucidate these phenomena, nanoscale observations were conducted on samples after initial plastic deformation stages (compressed to 16% train followed by unloading). Amorphization was observed, leading to the formation of alternating amorphous/B2 phases lamellae and amorphous shell/B2 core structures. Molecular dynamics (MD) simulations were employed to model ideal lamellar and core/shell structures, investigating mechanical behavior, phase transformations, and the evolution of shear bands. Results indicated that in the core/shell model, strength increased with decrease in B2 phase particle/layer thickness, while in the lamellar model, strength initially increased before decreasing, indicating a strength limit. Both models exhibited strengths surpassing 8 GPa, attributed to phase transformation strengthening, dislocation strengthening, and percolation effects of the amorphous phase. Quantitative analysis of shear transformation zones (STZs) in the amorphous phase through shear strain measurements showed ...