Mixed-pattern cracking in silica during stress corrosion: A reactive molecular dynamics simulation AITranslate
Abstract AITranslate
Highlights • No crack initiation or growth occurred in the quartz under 23% strain without water. • Significant crack growths were observed in the quartz under smaller strains in water. • The crack velocities in are distinctively larger than the experimental value. • The crack growth is primarily induced by the hydrolysis of strained SiO bonds. • Mixed-pattern cracking occurs when the applied strain increases. The mechanism of stress corrosion cracking in silica is poorly understood on the molecular level. We have examined the stress corrosion process of strained α-quartz in liquid water using molecular dynamics simulations with ReaxFF, which is a first-principles-based reactive force field. Over the course of 3000 ps, no crack initiation or crack growth was observed in the quartz structure under 23% strain in a dry environment, while significant crack propagations were observed in the quartz under three different and smaller strains (i.e., 17%, 20%, and 22%) in liquid water. The crack velocities for the 17%, 20%, and 22% strains in liquid water were 7.1 m/s, 3.1 m/s, and 0.57 m/s, respectively, which are all larger than the experimental crack velocity of bulk samples. The strain distributions of crack tips indicated that the crack propagates along the direction of maximum strain, and the strain is released after crack propagation. The crack becomes stable when the strain of the quartz is released and becomes approximately zero. The analysis of the chemical species involved in stress corrosion, the depth of the crack tip, and the atomic snapshots indicate that the crack growth is primarily induced by the hydrolysis of strained SiO bonds located at the crack tip. Mixed-pattern cracking, including stress corrosion cracking and purely stress-induced cracking similar to brittle fracture, occurs when the applied strain increases.
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DOI:https://doi.org/10.1016/j.commatsci.2013.09.045
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Highlights • No crack initiation or growth occurred in the quartz under 23% strain without water. • Significant crack growths were observed in the quartz under smaller strains in water. • The crack velocities in are distinctively larger than the experimental value. • The crack growth is primarily induced by the hydrolysis of strained SiO bonds. • Mixed-pattern cracking occurs when the applied strain increases. The mechanism of stress corrosion cracking in silica is poorly understood on the molecular level. We have examined the stress corrosion process of strained α-quartz in liquid water using molecular dynamics simulations with ReaxFF, which is a first-principles-based reactive force field. Over the course of 3000 ps, no crack initiation or crack growth was observed in the quartz structure under 23% strain in a dry environment, while significant crack propagations were observed in the quartz under three different and smaller strains (i.e., 17%, 20%, and 22%) in liquid water. The crack velocities for the 17%, 20%, and 22% strains in liquid water were 7.1 m/s, 3.1 m/s, and 0.57 m/s, respectively, which are all larger than the experimental crack velocity of bulk samples. The strain distributions of crack tips indicated that the crack propagates along the direction of maximum strain, and the strain is released after crack propagation. The crack becomes stable when the strain of the quartz is released and becomes approximately zero. The analysis of the chemical species involved in stress corrosion, the depth of the crack tip, and the atomic snapshots indicate that the crack growth is primarily induced by the hydrolysis of strained SiO bonds located at the crack tip. Mixed-pattern cracking, including stress corrosion cracking and purely stress-induced cracking similar to brittle fracture, occurs when the applied strain increases.
quote
| GB/T 7714-2015 | [1] YunAn Zhang, Junyong Tao, Xun Chen, et al. Computational Materials Science, 2014(82). DOI:10.1016/j.commatsci.2013.09.045. |
| MLA | [1] YunAn Zhang, et al., Computational Materials Science, no. 82, 2014, https://doi.org/10.1016/j.commatsci.2013.09.045. |
| APA | [1] YunAn Zhang, Junyong Tao, Xun Chen, & Bin Liu. (2014). Computational Materials Science(82). https://doi.org/10.1016/j.commatsci.2013.09.045 |
| IEEE | [1] YunAn Zhang, Junyong Tao, Xun Chen, and Bin Liu, Computational Materials Science, no. 82, 2014, doi: 10.1016/j.commatsci.2013.09.045. |
