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A higher flexural Young's modulus indicates a stiffer wire with a greater resistance to deformation.
While most of the results can be interpreted consistently and in agreement with the usual assumptions concerning the effect of (trapped) entanglements, a previously unnoticed, decisively non-linear correlation of the NMR results with the linear-regime modulus indicates a large influence of the substantial crosslinking inhomogeneities on the mechanical behaviour.
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Sample #3 was noticed to have a smallest value of diameter but a highest value of Young's modulus, indicating a possible size effect [24].
As-fabricated VGCNFs had small Weibull modulus indicating a broad flaw population, which was condensed upon heat treatment.
Surprisingly, silk composite film containing only 0.5 wt% of graphene gives the highest Young's modulus of 1.65 GPa (about 5.8 times higher than the pure silk's modulus), indicating a nano-composite to micro-composite transition of silk-graphene structure occurred around this mixing ratio.
The property of bulk modulus indicates how the material resists to an external pressure, which is given by Delta P = - Bfrac{Delta V}{V} (7 where ΔP, ΔV/V and B denote the pressure change, volume strain and bulk modulus, respectively.
A larger Young's modulus indicates that the cell was more difficult to deform, implying lower cell elasticity and greater stiffness.
The low Young's modulus indicates that the material is easier to deform; thus, a lower load may cause greater deformation in an RCA concrete beam than in a conventional concrete beam.
Higher value of Young's modulus indicates larger stiffness.
Higher elastic modulus indicates that the enamel can withstand higher forces per surface unit preventing catastrophic fracture especially at cervical region where thinner enamel layers are located.
Master curve of dynamic modulus indicates SMA with asbuton as stabilizer is relatively stiffer at high temperatures (more than 4.4 °C), but relatively less stiff (less brittle) at low temperatures.
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