Dynamic characteristics of nanoindentation using atomistic simulation
β Scribed by Te-Hua Fang; Wen-Yang Chang; Jian-Jin Huang
- Publisher
- Elsevier Science
- Year
- 2009
- Tongue
- English
- Weight
- 944 KB
- Volume
- 57
- Category
- Article
- ISSN
- 1359-6454
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β¦ Synopsis
Atomistic simulations are used to investigate how the nanoindentation mechanism influences dislocation nucleation under molecular dynamic behavior on the aluminum (0 0 1) surface. The characteristics of molecular dynamics in terms of various nucleation criteria are explored, including various molecular models, a multi-step load/unload cycle, deformation mechanism of atoms, tilt angle of the indenter, and slip vectors. Simulation results show that both the plastic energy and the adhesive force increase with increasing nanoindentation depths. The maximum forces for all indentation depths decrease with increasing multi-step load/unload cycle time. Dislocation nucleation, gliding, and interaction occur along Shockley partials on (1 1 1) slip planes. The indentation force applied along the normal direction, a tilt angle of 0Β°, is smaller than the force component that acts on the surface atoms. The corresponding slip vector of the atoms in the (1 1 1) plane has low-energy sessile stair-rod dislocations in the pyramid of intrinsic stacking faults.
π SIMILAR VOLUMES
Three-dimensional molecular dynamics (MD) simulation is used to investigate the atomistic mechanism of nanoindentation process under different indentation loads, temperatures and loading rates. Diamond and gold were selected as the hard and soft materials. The results showed that when the loads and
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