Framställning och utvärdering av nanokompositer innehållande polyamid-12 och nanokristallin cellulosa
Hämtar...
Publicerad
Typ
Examensarbete på kandidatnivå
Bachelor Thesis
Bachelor Thesis
Modellbyggare
Tidskriftstitel
ISSN
Volymtitel
Utgivare
Sammanfattning
The global production and consumption of plastic has increased significantly in recent
decades, resulting in major environmental challenges related to the use of fossil-based raw
materials. One potential approach to reducing this dependence is the incorporation of
bio-based materials into existing polymer systems. In this study crystalline nanocellulose
(CNC), a bio-based material, was investigated as a reinforcing agent in polymer compo
sites.
CNC was produced and chemically modified on the surface to improve its compatibility
with hydrophobic polymers, since CNC is hydrophilic. Two different azetidinium salts we
re used for the modification: 6-6-Az and 8-8-Az. The modified solutions were then dried to
enable compounding with polyamide-12 (PA-12) through extrusion. The properties of the
resulting composites were evaluated with respect to mechanical properties and thermal
stability.
The results regarding the mechanical properties generally showed that stiffness and strength
increased with increasing CNC weight fraction, while elasticity decreased. Compared with
PA-12, all composites displayed improved stiffness and strength, although their elasticity
was reduced. The results regarding the thermal stability showed that the modified compo
sites, with 2 weight percentage, had a slightly lower degradation temperature than PA-12.
Although modified CNC showed improved thermal stability compared to unmodified.
To conclude, the results demonstrate that chemically modified CNC can successfully be
used as reinforcing agents in PA-12 composites. The modifications resulted in only minor
changes in the thermal stability of the material, with both modifications showing similar
effects. When comparing the two modifications, no definitive conclusions could be drawn
regarding their influence on the overall material properties. However, clear trends were
observed with respect to CNC content: increasing CNC weight percentage led to increa
sed stiffness and decreased elasticity of the composites. These findings indicate that the
material properties can be tailored through adjustment of CNC content, thereby enabling
potential application in a range of different fields.
