材料科学
放电等离子烧结
氧化钇稳定氧化锆
立方氧化锆
晶界滑移
晶界
无扩散变换
断裂韧性
可塑性
韧性
陶瓷
冶金
复合材料
马氏体
微观结构
作者
Jaehun Cho,Jin Li,Qiang Li,Jie Ding,Han Wang,Sichuang Xue,Troy B. Holland,A.K. Mukherjee,Haiyan Wang,X. Zhang
标识
DOI:10.1016/j.actamat.2018.05.062
摘要
Abstract Yttria-stabilized zirconia (YSZ) exhibits both enhanced strength and fracture toughness attributed to transformation-induced plasticity. Recent studies show that miniaturization of YSZ to the microscale enhances the effectiveness of stress-induced phase transformation by reducing mismatch stress among incommensurate grains. However, the fundamental understandings on the high temperature micromechanical behaviors of ultrafine grained YSZ remain limited. Here, we report on the high temperature (up to 670 °C) in-situ micromechanical testing of spark plasma sintered YSZ. The mechanical behaviors of YSZ tested below 400 °C are highlighted by large inelastic strain (∼7%) due primarily to phase transformation toughening. Beyond 400 °C, martensitic transformation toughening is gradually superseded by grain boundary sliding triggered by ultrafine grains. The micropillars tested at 670 °C exhibit significantly enhanced plastic flow, arising mainly from dislocation activity along with grain boundary sliding.
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