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Post-mortem analyses of deformed samples were also carried out by transmission electron microscopy to explain the mechanical properties.
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The impact fracture surfaces are examined using scanning electron microscopy (SEM) to explain the impact strength results.
Image analysis and confocal microscopy were used to explain the underlying reasons for this variation.
Our model, based on Electrodynamic Force Microscopy (EdFM), allows us to explain the negative phase inversion while scanning metallic materials.
Scanning Electron Microscopy (SEM) observation is used to explain the role and contribution of influential factors on strength development.
Results of optical microscopy, SEM and XRD are used to explain the observed enhancement in yield strength and tensile strength.
Scanning electron microscopy (SEM) (Fig. 3a c) helps to explain the surface structure of the powder consisting of the fine particles of irregular shape and size on external surface of BPD-1, BPD-2 and BPD-3.
Moreover, macrostructure (high-definition photography and borehole imaging) and microstructure (scanning electron microscopy, SEM) were carried out to help to explain the mechanism.
A mechanism is proposed to explain these phenomena based on the optical microscopy and TEM observations.
Further atomic force microscopy (AFM) analysis of the surface properties of the substrates to explain this phenomenon brought interesting results.
The authors tried to explain this phenomenon by using scanning electron microscopy images, as the enamel surface appeared uneven in the whitened groups.
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