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Braided composites are highly valuable engineering structures.
The CelluNF/HAp composites are highly porous materials with micro-, meso-, and macro-pores.
High ductility and increased strength of SiCp/Al composites are highly desirable for their applications in complicated components.
It is suggested that such freestanding flexible CNFs/CNTs/MnO2 hierarchical composites are highly promising for high-performance flexible supercapacitors.
Furthermore, the overall tensile and flexural properties of natural fibre-reinforced polymer hybrid composites are highly dependent on the aspect ratio, moisture absorption.
In particular, 3D woven-fiber composites are highly resistant to delamination compared with laminated 2D woven-fiber composites and have been adopted in various advanced products.
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The fracture behaviour of ceramic matrix composites is highly influenced by frictional conditions in the interface.
However, the properties of HA composites is highly dependent on the particle size and morphology of the HA filler.
Measurements show that the thermal conductivity increase of the composites is highly dependent on the MWCNT pretreatment process.
While the technology for the production of these composites is highly advanced, modeling techniques to predict material behaviour in building applications are severely lacking.
The GF grains in the composites were highly oriented with the Lotgering factor >98%, and a 3D continuous ceramic skeleton was formed when the AlN content increased to 20 wt%.
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