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The elasticity modulus increases with the moisture content increasing.
The initial shear modulus increases with increasing initial minor principal stress for the isotropic and anisotropic consolidated specimens.
It is noted that the calculated lattice constant decreases, while the bulk modulus increases with the increase of V content.
Mechanical tests show that the elastic modulus increases with increasing crosslinking density of P EA-HEA) scaffolds.
Furthermore, when the scaffold with hydrogel is tested it can be seen that the modulus increases with increasing hydrogel density.
Young's modulus increases with increasing SG concentration with a maximum 180% increase in the SG5 sample.
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The compressive strength and modulus increase with the foam density.
The hydrogel creep modulus increased with follow-up time.
It was also found that the viscosity and the elastic modulus increased with inhibitor concentration.
The experimental results show that the compressive strength and the elastic modulus increase with an increase in the strain rate.
For both series of carbon fibers, the Young's modulus increased with heat treatment temperature increasing.
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