Molecular Dynamics Simulation of Porous Layer-enhanced Dislocation Emission and Crack Propagation in

来源 :Journal of Materials Science & Technology | 被引量 : 0次 | 上传用户:dwddKTV
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The internal stress induced by a porous layer or passive layer can assist the applied stress to promote dislocation emission and crack propagation, e.g. when the pipeline steel is buried in the soil containing water, resulting in stress corrosion cracking (SCC). Molecular dynamics (MD) simulation is performed to study the process of dislocation emission and crack propagation in a slab of Fe crystal with and without a porous layer on the surface of the crack. The results show that when there is a porous layer on the surface of the crack, the tensile stress induced by the porous layer can superimpose on the external applied stress and then assist the applied stress to initiate crack tip dislocation emission under lowered stress intensity KI, or stress. To respond to the corrosion accelerated dislocation emission and motion, the crack begins to propagate under lowered stress intensity KI, resulting in SCC. The internal stress induced by a porous layer or passive layer can assist the applied stress to promote dislocation emission and crack propagation, eg when the pipeline steel is buried in the soil containing water, resulting in stress corrosion cracking (SCC). ) simulation is performed to study the process of dislocation emission and crack propagation in a slab of Fe crystal with and without a porous layer on the surface of the crack. The results show that when there is a porous layer on the surface of the crack, the tensile stress induced by the porous layer can be superimpose on the externally applied stress and then assist the applied stress to relieve the tensile stress intensity KI, or stress. To respond to the corrosion accelerated dislocation emission and motion, the crack begins to propagate under lowered stress intensity KI, resulting in SCC.
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