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Updated: Sep 2, 2025

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Negative Additive Manufacturing of Complex Shaped Boron Carbides
Published on: September 18, 2018
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Cavity nucleation in single-component homogeneous amorphous solids under negative pressure.
B N Galimzyanov1,2, A V Mokshin1,2
1Kazan Federal University, 420008 Kazan, Russia.
Summary
This study reveals cavity formation in amorphous metals is an activation process, similar to crystal nucleation. Researchers developed a novel method to analyze cavity size and shape using molecular dynamics simulations.
Area of Science:
- Materials Science
- Computational Materials Science
- Solid State Physics
Background:
- Cavity formation and growth mechanisms are crucial for understanding material properties.
- Amorphous metallic alloys present unique challenges for studying defect formation.
Purpose of the Study:
- To investigate the homogeneous formation of nanosized cavities in amorphous metallic alloys.
- To characterize the mechanisms governing cavity nucleation and growth.
Main Methods:
- Utilized molecular dynamics simulations to model cavity formation.
- Developed an original method for identifying and sizing cavities using virtual particles.
- Applied mean first-passage time analysis to understand the kinetics of cavity formation.
Main Results:
- Cavity formation in amorphous metallic melts was identified as an activation-type process.
- The process aligns with classical nucleation theory, typically used for first-order phase transitions.
- Calculated key parameters including activation energy, critical size, and nucleation rate for cavities.
Conclusions:
- The findings suggest a unified theoretical framework for understanding both crystal and cavity nucleation in amorphous systems.
- The developed virtual particle method offers a new tool for analyzing nanoscale defects.
- This research provides fundamental insights into the mechanical behavior and stability of amorphous alloys.
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