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Uniaxial tensile tests were performed to study the effects of weak interface on the effective modulus of hybrid composite.
The main aim of this work is to study the effective elastic modulus of hybrid composites through micromechanical modeling.
A simple mathematical formula was developed for calculating the flexural modulus of hybrid composites, given the moduli of full carbon and full glass composites, and the hybrid ratio.
The present results showed that the flexural strength and modulus of hybrid composite laminates were strongly dependent on the sequence of fiber reinforcement.
It was interestingly observed that the predicted values by the LAA and the experimental results for the elastic modulus of hybrid particle/short-fiber/polymer composites were consistently higher than those predicted by the RoHM, suggesting that the modulus of hybrid particle/short-fiber/polymer composites shows a positive hybrid effect.
The results showed that the average pore size, porosity, swelling rate and elasticity modulus of hybrid scaffolds with good biocompatibility were 118.25 ± 19.51 μm, 82.60 ± 2.34%, 361.28 ± 0.47% and 61.2 ± 0.16 kPa, respectively.
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Class II hybrids synthesised with CME showed compressive strength similar to 70S30C glass stabilised to 700 °C and the presence of Ca in the hybrid improved the modulus of the hybrid two-fold, indicating CME is a promising calcium source for hybrid synthesis.
It was observed that the tensile strength and modulus values of hybrid composites gave a value between tensile strength and modulus values of only fiber reinforced composites and only particle reinforced composites.
Storage modulus of treated hybrid composites displayed highest storage and loss modulus as in comparison of untreated hybrid composites.
Then, the elastic modulus of the hybrid composite was evaluated from that of the two single systems using the RoHM.
The effect of two types; sequential mode and mixed mode of filler additions on the effective elastic modulus of the hybrid composite are studied.
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Justyna Jupowicz-Kozak
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