Study on failure mechanism of Cu-Polyethylene-Cu sandwich structure by molecular dynamics simulation
Changyu Meng, Lijuan Liao, Chenguang Huang

TL;DR
This study uses molecular dynamics simulations to analyze the microscopic failure mechanisms of Cu-Polyethylene-Cu sandwich structures under tensile stress, revealing energy transfer, damage initiation, and the influence of thickness on strength.
Contribution
It provides detailed insights into the failure process at the molecular level and explores the thickness dependence of the structure's mechanical properties.
Findings
Dihedral angles influence damage progression.
Energy transport correlates with stress-strain inflections.
Thickness inversely affects yield strength.
Abstract
The tensile failure mechanism of Cu-Polyethylene-Cu (CPC) sandwich structure was clarified by molecular dynamics (MD) simulations subjected to a uniaxial tensile loading at microscopic scale. The sensitivity analysis of parameters such as model size, relaxation time for equilibrium and initial velocity distribution was carried out to verify the rationality of modeling. The evolutions of stress-strain relationship and each potential energy component were provided to describe the failure process of the structure. The peak of non-bond energy shows a delay compared to the yield point in stress-strain curve, which coincides with the local maximum point of the trans-fraction curve of dihedral angles. After that, an inflexion appeared in the trans-fraction curve indicates an energy transport process, which corresponds with the slope change of the stress-strain curve. It is assumed that the…
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Taxonomy
TopicsHigh-Velocity Impact and Material Behavior · Metal Forming Simulation Techniques · Mechanical Behavior of Composites
