| Literature DB >> 27976740 |
Guan-Rong Huang1,2, J C Huang1, W Y Tsai1.
Abstract
In crystalline metals at small scales, the dislocation density will be increased by stochastic events of dislocation network, leading to a universal power law for various material structures. In this work, we develop a model obeyed by a probability distribution of dislocation density to describe the dislocation formation in terms of a chain reaction. The leading order terms of steady-state of probability distribution gives physical and quantitative insight to the scaling exponent n values in the power law of sample size effect. This approach is found to be consistent with experimental n values in a wide range.Entities:
Year: 2016 PMID: 27976740 PMCID: PMC5157047 DOI: 10.1038/srep39242
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The mechanism of dislocation formation driven by the plastic events plus thermally-activated diffusion process on single crystal metals at small scales.
Figure 2(a) The steady-state PD predicted by Eq. (6) for α < 1 with β = 10. (b) The steady-state PD predicted by Eq. (6) for α > 1 with β = 10 and the unit of y-axis is 10−2.
Figure 3The comparison between experimental results and n values predicted inEq. (9), where and are used.
The data points were extracted from experiments in refs 1,2,8, 9, 10,16,37, 38, 39 with different single crystal metals listed.