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Moreover, the modified pineapple leaf fiber-reinforced composites exhibited better thermal properties than did other reinforced samples.
Furthermore, the degradation rate of the reinforced samples was just about one-third of those pure MCSCs.
Nanoparticles more uniformly dispersed in the Al2O3 Cu reinforced samples compared with that of the samples reinforced with Al2O3 Al or pure alumina powders.
The experimental results demonstrated that the tensile strength and flexural strengths of modified carbon fiber reinforced composites were 13.8% and 164% higher than original carbon fiber reinforced samples.
A difference in the spatial variation of the carbonation depth was observed between plain and reinforced samples.
But, it has been seen that the best compression and flexural strength was given by the carbon fiber reinforced samples.
The compressive strength of the reinforced samples with about 50% porosity reached 112.47 MPa, which was similar to those of the cortical bones.
The results of the finite element analysis showed a good agreement with the experimental results conducted on the AFRP reinforced samples.
The cracking and the ultimate bending moments of reinforced samples can be analytically predicted using relationships quite close to those used in the design of reinforced concrete beams subjected to combined axial and bending actions.
The effect of bioglass additives on compressive strength and open porosity of the samples was investigated, and the bioactivity and degradability of the obtained reinforced samples were also evaluated.
The optimum amount of bioglass additives was 5 wt.% and the compressive strength of the reinforced samples was approximately 2 times higher as compared to the pure macroporous calcium silicate ceramics (MCSCs).
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