Effect of carbon fiber surface modification on the flexural mechanical properties of carbon fiber reinforced polyetheretherketone biocomposites
Abstract
Carbon fiber (CF) reinforced polyetheretherketone (PEEK) is one of the most promising orthopedic implant biomaterials. In this paper, CF reinforced PEEK biocomposites were fabricated by hot press molding technology. The influence of the CF surface modification on the flexural mechanical properties of CF/PEEK biocomposites was investigated. Studies on the flexural mechanical properties of CF/PEEK biocomposites revealed that the flexural stress-strain behavior of the biocomposites possessed linear elastic characteristics. The fracture mechanism of the biocomposites was predominated by brittle rupture. Both flexural strength and modulus of the biocomposites obviously increased with the rise of CF content. The influence degree of different CF modification on the flexural properties of CF/PEEK biocomposites increased with the rise of CF content. Moreover, the CF modified by concentrated HNO3 is beneficial for the flexural strength of the CF/PEEK biocomposites improvement. Conversely, CF modified by KH-560 coupling agent played an adverse influence on the flexural strength of the biocomposites.
Acknowledgments
The authors gratefully acknowledge the financial support from the National Natural Science Foundation of China (No. 51175004).
References
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©2015 by De Gruyter
Artikel in diesem Heft
- Frontmatter
- Review
- Aided manufacturing techniques and applications in optics and manipulation for ionic polymer-metal composites as soft sensors and actuators
- Original articles
- Synthesis and properties of high temperature resistant and salt tolerant filtrate reducer N,N-dimethylacrylamide 2-acrylamido-2-methyl-1-propyl dimethyl diallyl ammonium chloride N-vinylpyrrolidone quadripolymer
- Preparation and characterization of non-isocyanate polyurethanes based on 2-hydroxy-6-naphthalenesulfonic acid as a monomer of the rigid phase
- Preparation of poly(aspartic acid) superabsorbent hydrogels by solvent-free processes
- Effect of carbon fiber surface modification on the flexural mechanical properties of carbon fiber reinforced polyetheretherketone biocomposites
- Analysis of the tensile properties of natural fiber and particulate reinforced polymer composites using a statistical approach
- Study on the deformation behavior of polyamide under the backward extrusion process
- High photoelectric PPV/PVA/Ag composite nanofibers by co-electrospinning
- Enhanced delivery of diclofenac diethylamine loaded Eudragit RL 100® transdermal system against inflammation
- Fabrication of hollow fiber microfiltration membrane from PVDF/DBP/DBS system via thermally induced phase separation process
Artikel in diesem Heft
- Frontmatter
- Review
- Aided manufacturing techniques and applications in optics and manipulation for ionic polymer-metal composites as soft sensors and actuators
- Original articles
- Synthesis and properties of high temperature resistant and salt tolerant filtrate reducer N,N-dimethylacrylamide 2-acrylamido-2-methyl-1-propyl dimethyl diallyl ammonium chloride N-vinylpyrrolidone quadripolymer
- Preparation and characterization of non-isocyanate polyurethanes based on 2-hydroxy-6-naphthalenesulfonic acid as a monomer of the rigid phase
- Preparation of poly(aspartic acid) superabsorbent hydrogels by solvent-free processes
- Effect of carbon fiber surface modification on the flexural mechanical properties of carbon fiber reinforced polyetheretherketone biocomposites
- Analysis of the tensile properties of natural fiber and particulate reinforced polymer composites using a statistical approach
- Study on the deformation behavior of polyamide under the backward extrusion process
- High photoelectric PPV/PVA/Ag composite nanofibers by co-electrospinning
- Enhanced delivery of diclofenac diethylamine loaded Eudragit RL 100® transdermal system against inflammation
- Fabrication of hollow fiber microfiltration membrane from PVDF/DBP/DBS system via thermally induced phase separation process