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In addition, the microstructure of both surface and fracture is characterized by decrease in pore size with decreasing the initial particle size.
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The micromorphology characteristics of specimen surface and fracture surface were observed.
The side surface and fracture surface of the tensile-tested specimens were observed using scanning electron microscopy (SEM).
Figures 2 and 3 represent the microstructure of surface and fracture of composites studied.
The lyophilized sample scaffolds were characterized for their surface and fracture sections observation.
Figure 7 represents the microstructure of surface and fracture of composites studied.
The fatigue fracture mechanisms of these specimens with and without LSP are studied by surface integrity and fracture surface testing.
Once broken, the strips were inspected at their surfaces and fracture sites by SEM.
Three kinds of fracture surfaces were observed: even fracture surfaces, even fracture surfaces with step-terraces and fracture surfaces composed of the even fracture surface and the curved one.
a Epoxy surface as prepared, b epoxy fracture surface and c PE fracture surface after tensile lap shear test using epoxy with a connected-globule structure.
These measurements constrain the evolution of fracture structure, and the change in permeability that resulted from stress- and temperature-dependent dissolution at both propping asperities and fracture void surfaces.
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