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The sol gel transition behavior of the hydrogels was examined by visual inspection, using the test tube inversion method (Wu et al. 2006).
It was found that the swelling properties and the elastic behavior of the hydrogels drastically change at Tprep=−8 °C.
Swelling behavior of the hydrogels was investigated in aqueous organic solvent mixtures as functions of solvent species and the concentration.
Based on the selected viscoelastic model, a graphical simulation tool is used to analyze the results and to predict the viscoelastic behavior of the hydrogels in specific environment.
The swelling properties of the composite samples were also investigated to study the effect of CaP incorporation on the behavior of the hydrogels.
The swelling and thermal behavior of the hydrogels, as well as their mechanical properties were studied by means of swelling tests, differential scanning calorimetry and tensile experiments.
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The optical behavior of the hydrogel and its composite was studied by diffuse reflectance (Fig. 3).
The degradation behavior of the hydrogel is influenced by hydrogel composition, crosslinking methods and degradation environment.
A hyperelastic constitutive model is selected to best fit the multi-axial behavior of the hydrogel.
We used the corrected model to describe the swelling behavior of the hydrogel and the volume transition temperature.
The thermal behavior of the hydrogel was evaluated using TGA, the swelling behavior of the hydrogel was evaluated in Dulbecco's Modified Eagle's medium (DMEM), and the mechanical properties were determined through dynamic mechanical analysis.
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