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Secondly, the effect of defects configuration on the effective thermal conductivity has been discussed systematically based on the strict mathematical calculation combined with finite element simulation.
Additionally, based on the effective medium theory and the simulation results, the effect of defects on the thermal conductivity of graphene/epoxy nanocomposites was investigated concerning different graphene filler sizes and volume fractions.
In this case after capping with Al2O3 films, the reduction of average D it and the increase of negative charges weaken the trap effect of defects and reduce the interface recombination to improve the effective minority carrier lifetime.
Simulating the effect of defects plays a key role.
Lastly, the effect of defects was also investigated.
Effect of defects such as achromatism, anamorphose and boundary diffraction are characterised.
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First, the effect of defect size on the tensile stress concentration was analyzed.
A theoretical model is proposed to predict the effect of defect on the compressive stiffness and ultimate strength of pyramidal truss core sandwich panel.
It is found that the effect of defect orientation on the electroelastic fields around a void and at the crack tip is rather subtle.
Leuders et al also analyzed the effect of defect location on the fatigue strength in their research.
For studying the effect of defect density on the strength improvement effect of nanostructures, three different glass compositions (fused silica, aluminosilicate, and borosilicate glasses) were selected.
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