Using Genetic Algorithm for Investigating the Performance of Carbon-Basalt / Polyester Hybrids Composite Materials

2020 ◽  
Vol 13 ◽  
Author(s):  
Mohammed Belkheir ◽  
Bendouma Doumi ◽  
Allel Mokaddem ◽  
Ahmed Boutaous

Background:: The composite materials are more efficient and more resistant compared to so-called traditional materials. The application of continuous and variable forces modifies the properties of the materials, and generates the formation of cracks which lead to the rupture of structures. Objective:: The objective of this work is to study the reliability and the origin of the resistance of each fiber-matrix interface of the two hybrid composite materials studied. Methods:: In this study, the genetic algorithm is based on Weibull's probabilistic approach to calculate the damage to the interface and also on the Cox model to find and initialize the different values used in simulation model. Results:: The results obtained, by genetic modeling, have showed that the hybrid Carbon High Modulus (HM) / Basalt / Polyester composite is the most resistant to the mechanical stresses applied comparing with that of Carbon High Strength (HS) / Basalt / Polyester, these results were confirmed by the level of damage to the interface found for the two materials studied, and that the interface shear damage of the hybrid Carbon HM / Basalt / Polyester composite is much lower by 13% compared to that of Carbon HS / Basalt / Polyester. Conclusion:: The calculations are in good agreement with the analytical results of Cox, where he demonstrated that the Young's modulus of the fibers has an important influence on the shear strength of the fiber / matrix interface of composite materials.

Author(s):  
Mokhtaria Ould Kada ◽  
Allel Mokaddem ◽  
Bendouma Doumi ◽  
Mohamed Berber ◽  
Lahouari Temimi ◽  
...  

Background: In this paper, we have studied the improvement of the physical and chemical properties of the fiber-matrix interface of a Biocomposite based on the copolymer polylactic acid (PLA). Methodology: We have developed an analytical model using a genetic approach to locate the interface damage under the effect of mechanical stress, temperature and humidity. Our simulation is based on Weibull's probabilistic approach and the law of water diffusion in polymer matrix, the diffusion is generated by Fick's law. Results: Our results show that the interface of Biocomposite (Starch-PLA) is the most resistant to the different constraints applied and that the physical and chemical properties of this material are much more improved compared to other materials studied by the same genetic model. Conclusion: Our calculations coincide perfectly with the conclusions of Antoine et al. who determined that natural fibers improve the physical properties of composite materials.


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