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In the case of magnetite/chitosan composites, it can be equal to magnetite.
For the CNT@BaTiO3@PANI composites, it can be seen that three weight loss steps take place over the scanning temperature range from 25°C to 700°C.
Because of the inherent complexity of fiber-reinforced laminated composites, it can be challenging to manufacture composite structures according to their exact design specifications, resulting in unwanted material and geometric uncertainties.
After comparisons with numerical simulation and experimental data for PPS/CaCO3 and SiCpAl composites, it can be seen that our theoretical model can reach a good agreement with available numerical and experimental data.
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Comparing with the calculated results of the matrices and composite, it can be found that the microstructure variations of matrices are more severe than composite's, which is ascribed to the effect of reinforcements' resistance to the surface layers' deformation.
Due to the excellent holding capacity of BC matrix to ionic liquid, as well as good thermal and mechanical properties of BC/BG-BF4 composite it can be promising material for the fabrication of proton conducting membranes for fuel cells operating at elevated temperatures in water free conditions.
The high ratio of N+ also illustrates that nitrogen protons are successfully doped in hybrid composites and it can improve the electrical conductivity.
Dantas et al. [128] reported the synthesis of iron oxides/C composites, and it can be used in the treatment of textile waste water as heterogeneous catalysts in the Fenton reaction.
When used in the design of energy absorbing composite structures, it can reduce the dependence on physical testing.
Although the current design is used here to test carbon composite pipes, it can be easily adapted to other materials.
When designing composite structures it can be valuable to know which load ratio results in the shortest fatigue life.
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