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An even greater increase in strength is achieved by precipitation hardening, in which certain elements (e.g., titanium, niobium, and vanadium) do not stay in solid solution in ferrite during the cooling of steel but instead form finely dispersed, extremely small carbide or nitride crystals, which also effectively restrict the flow of dislocations.
Significant increase of mechanical bonding strength is achieved with AgNP-reinforced GIC.
Results indicate that the maximum lap shear strength is achieved with pinless tools (single material).
A significant increase in mechanical strength is achieved by adding a 50% wollastonite phase.
By applying this method of welding on polyethylene blanks, about 70%% of the base material strength is achieved.
The highest compressive strength is achieved in the ternary admixture with 2.5%/2.5%.
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It is observed that the maximum compressive strength was achieved for specimen containing 5%% GWG microparticles.
The maximum mortar compressive strength was achieved with 50% sand replacement by FNS.
The maximum compressive strength was achieved for the SCC having 60% ASA replacement.
So enhanced tensile strength was achieved, especially for the ATP PMMA2 nanorods with longer PMMA brushes.
The total required strength was achieved by additionally implementing vertical post-tensioning bars and FRP strips.
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