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We will also discuss the various nanomaterial design parameters critical to achieve maximum mechanical reinforcement along with various cyto- and biocompatibility issues associated with nanomaterial-reinforced polymeric 3D-tissue engineering scaffolds.
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Carbon nanotubes (CNTs) have been widely used as mechanical reinforcement agents of composites.
Dynamic mechanical thermal analysis indicated mechanical reinforcement within the hybrid composites.
Mechanical reinforcement is effective only in shallow depths, where the most root biomass exists.
S. Chatterjee et al. [4] studied the mechanical reinforcement in a widely used epoxy matrix with the addition of GnPs and various mixture ratios of MWCNTs with GnPs.
No obvious broadening of the cracks was detected after the 500 cycles, supporting the mechanical reinforcement of the incorporated CNTs in the composites.
It was proven both experimentally and clinically that such wires stimulate new endosteal bone formation and provide mechanical reinforcement and a faster period of treatment [34, 51].
Among light elements that absorb thermal neutrons, 6Li and 10B appear as potential spacecraft structural materials which serve both for mechanical reinforcement and radiation protection.
In addition, to further improve the mechanical robustness of the hydrogel network, composite hybrid hydrogels provide an additional mechanical reinforcement.
Thereby it can act as a mechanical reinforcement or a scaffold for signaling molecules, or both.
Altogether, this suggests that CMFs act as a brace around the indenting regions providing mechanical reinforcement of those regions.
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