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The density of composites increased with increasing dissolution time due to reduction in porosity and formation of more compact composite structure.
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By comparing microstructures of both composites, the carbon fibre geopolymer composite exhibited more compact microstructures even after exposure to elevated temperatures than its counterpart basalt fibre composite, which is consistent with the observed higher compressive strength, lower volumetric shrinkage and mass loss of the former than the latter as discussed earlier.
The microstructure of carbon fibre reinforced geopolymer composite is more compact containing fewer pores/voids than its basalt based counterpart at elevated temperatures.
SEM revealed that the microstructure of the composites with nano-MgO were more compact and homogeneous than that of plain composite because of expansive effect of nano-MgO.
The higher melt viscosity and more compact char layer of PA6 composites further inhibited the volatilization of flammable gases, thus the ignition time of PA6/AlPi/CTP-EP composites was prolonged and the released heat was reduced.
Therefore, the Ni W nanoCeF3 composite coatings had more compact and fine granular morphologies.
In the bulk composite, the structure is more compact due to compression molding and the stacked layers are thicker.
Such composites will result in more compact, lighter and cheaper electronics with higher performance, by avoiding the use of electrical fans, heat sinks and other methods of heat dissipation.
Higher concentration of GO resulted in more compact structure and smaller pore size of the composite scaffolds without decreasing their porosity.
Meanwhile, the nanostructured composite coating had less defects, lower porosity, more compact microstructure and smaller grains as compared to the corresponding conventional coating which was useful to improve the performance of the composite coating.
The structure of the composite fouling after adding SRB becomes more compact.
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