期刊
JOURNAL OF ALLOYS AND COMPOUNDS
卷 947, 期 -, 页码 -出版社
ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2023.169650
关键词
CoCrFeNiCu; Dendritic structure; Hugoniot; Spall damage; Microstructure
Plate impact experiments were conducted on a dendritic dual face-center cubic phase high-entropy alloy CoCrFeNiCu, revealing different deformation behaviors and damage modes in Cu-lean and Cu-rich regions under shock compression. The dependence of spall strength on peak shock stress was found to be abnormal due to strain localization and thermal softening in the Cu-rich regions.
Plate impact experiments are conducted on a dendritic dual face-center cubic phase high-entropy alloy (HEA) CoCrFeNiCu, consisting of Cu-lean dendritic (DR) and Cu-rich interdendritic regions (ID). Free surface velocity histories are obtained along with microstructure characterizations. The Hugoniot equation of state and spall strength at different shock stresses are determined. Dislocation slip is the main deformation mode for CoCrFeNiCu HEA, and the dislocation density of the Cu-rich interdendritic regions increases more sig-nificantly during shock compression. Both ductile and brittle damage modes are observed. With increasing impact velocity, the Cu-rich interdendritic regions with severe strain localizations and more defects provide more damage nucleation sites. The spall strength increases firstly, reaches its maximum at a peak shock stress of 5.8 GPa, and then decreases. Molecular dynamics simulations reveal that the abnormal dependence of spall strength on peak shock stress is a result of strain localization and thermal softening in the Cu-rich regions.(c) 2023 Elsevier B.V. All rights reserved.
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