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Mechanical testing revealed higher properties of coated CaP layers compared to a plain N6 mat.
Compressive mechanical testing revealed that the coating process did not have any detrimental effect on the mechanical properties of the scaffolds.
Static and dynamic mechanical testing revealed static tensile modules of 1.95 ± 0.55 MPa and a dynamic tensile storage modulus of 314 ± 50 kPa.
Results from mechanical testing revealed that while the moduli of the nanocomposites increased with increasing clay loadings, both strength and elongation decreased.
However, physical characterization using differential scanning calorimetry (DSC) and mechanical testing revealed that the ceramic in the mats produced with MC + DMF were more uniformly dispersed than the ceramic in the mats produced with MC alone.
Results from mechanical testing revealed that modulus and strength improved up to 6 wt.% clay loading while elongation and toughness of nanocomposites increased with the addition of 2 wt.% clay content in the matrix.
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Experimental results of mechanical testing reveal the strength of the SiC/Cu joints and its integrity.
Passive mechanical tests revealed enhanced tissue strength after both freezing and vitrification.
Material characterization and mechanical test revealed that implant porosity and mechanical strength can be modulated by adjusting pore-unit parameters.
Room temperature mechanical tests revealed ultimate compressive strengths exceeding 770 MPa, large plastic strains (>20%) and a remarkable strain hardening.
Mechanical test revealed that the nanocomposite exhibited significantly increased strength and retained malleability as compared to pure Mg.
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