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The glass fabric reinforced composite showed the steepest increase on the impact resistance with increasing laminate thickness.
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Results illustrated that the infiltrating process of molten PC into the CEF-NF is enhanced with increasing laminating temperature and pressure, whereas the network structure of the fabric may be damaged under excessively high laminating parameters, which leads to the deterioration of its EMI shielding performance.
The effect of water ingress can be compensated by increased laminate thickness.
Although good bonding resulted in a higher impact bending stiffness and subsequently a higher perforation threshold, increasing the laminate thickness, or the number of laminates, was found to be more efficient in raising perforation threshold than improving the joining stiffness.
Results also show that laminate configurations can be selected to increase the redome reliability by several orders of magnitude without increasing the laminate thickness a unique feature of structural composites.
The number of shell layers is increased; the laminate doubly curved shell becomes stiffer.
This may be explained by the fact that the number of shell layers is increased, the laminate becomes stiffer.
Based on this preliminary study, results showed that; polymer nanofabric interleaving marginally increased the laminate thickness, by about 2.0%.
Direct growth of aligned CNTs on the surface of advanced fibers in a woven fabric enables enhancement in multifunctional laminate performance, as demonstrated by a 69% increase in interlaminar shear strength and 106 (in-plane) and 108 (through-thickness) increases in laminate-level electrical conductivity.
Tensile, shear and 3-point bend tests were conducted on a woven glass/epoxy laminate at increasing rates of strain.
This research contributes to the approach of maximal material usage by considering the strength increase of a carbon-epoxy laminate with increasing strain rate.
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