纳米压痕
位错
材料科学
缩进
应力松弛
压力(语言学)
放松(心理学)
位错蠕变
指数
可塑性
复合材料
机械
凝聚态物理
蠕动
物理
哲学
语言学
心理学
社会心理学
作者
Tzu-Yi Chang,Gavin Vandenbroeder,D. Frazer,Dewen Yushu,Stephanie Pitts,Tianyi Chen
出处
期刊:Crystals
[Multidisciplinary Digital Publishing Institute]
日期:2024-07-26
卷期号:14 (8): 680-680
被引量:4
标识
DOI:10.3390/cryst14080680
摘要
This work reports a new methodology using indentation stress relaxation to characterize the dislocation velocity–stress exponent. Through the indentation stress relaxation process, the dislocation structure builds up at the rate governed by dislocation velocity, which is a function of the externally applied stress. The relationship between the dislocation velocity and stress can thus be derived from the indentation stress relaxation data of the stress as a function of time. In this study, instrumented nanoindentation stress relaxation experiments were performed on pure aluminum samples, following three different initial displacement rates of 100, 400, and 800 nm/s. Based on the scaling properties of dislocation kinetics, the data were interpreted to derive a dislocation velocity–stress exponent of 2.5 ± 0.5 for room-temperature aluminum. Crystal plasticity finite-element simulations were performed to illustrate the sensitivity of the proposed nanoindentation stress relaxation methodology to the dislocation velocity–stress exponent value.
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