材料科学
蠕动
位错
软化
复合材料
变形(气象学)
奥氏体
微观结构
马氏体
应变率
压力(语言学)
可塑性
冶金
语言学
哲学
作者
Qingsong Pan,Kunqing Ding,Song Guo,Ning Lü,N.R. Tao,Ting Zhu,Lei Lu
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2025-04-04
卷期号:388 (6742): 82-88
被引量:1
标识
DOI:10.1126/science.adt6666
摘要
Cyclic creep, or ratcheting, is a severe form of fatigue deformation caused by cumulative unidirectional plastic strain under asymmetrical stress cycling with a nonzero mean stress. It often causes premature failure of structural materials, and enhancing ratcheting resistance is a challenge in materials engineering. We demonstrate superior ratcheting resistance in high-strength austenitic stainless steel with a gradient hierarchy of dislocation cells. The ratcheting rate is two to four orders of magnitude lower than for coarse-grained counterparts. Its resistance results from sustained microstructural refinement through deformation-induced coherent martensitic transformations to hexagonal close-packed nanolayers within stable dislocation cells. The progressively refined microstructure mitigates cyclic softening and suppresses strain localization during stress cycling, thus reducing ratcheting strain. The gradient dislocation architecture represents a promising design for high-strength, ratcheting-resistant materials.
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