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Three blends containing an epoxy resin and azo-carbazole derivatives (either physically dispersed or chemically bound) were studied.
An inversion of phase continuity was observed when the sulfur concentration was changed from 0.0 to 2.0 parts per hundred parts of resins (phr) in the blends containing an NBR with an acrylonitrile content of 29.5 wt% (NBR-29).
Similar(57)
Nanofibers were prepared from water-extractable melt-blown immiscible polymer blends containing a commercial sulfopolyester (SP) as the sacrificial phase.
Nonlinear growth of polymer spherulites has been repeatedly reported in blends containing a low-molecular weight amorphous polymer.
Furthermore, blends containing a compatibilizer, poly (styrene-co-maleic anhydride) (SMA), were also prepared by melt mixing the components.
Blends containing a fixed (5 wt.% IA) compatibilizer content were tough over a broad range of ABS contents; the optimum toughness occurred near 50 wt.% ABS.
Flory's lattice theory has been applied to the polymer blends containing a thermotropic liquid crystalline polymer (LCP) and flexible chain polymers.
The simulated spinodal curve of ternary polymer blends containing a thermotropic LCP and two flexible chain polymers has been calculated using the lattice theory.
Potentialities of the ETA have been studied on the polyamide polyethylene blends containing a compatibilizer bimodal polyethylene functionalized by maleic anhydride.
The results indicate that the content of collagen on the surface of the blends is higher than expected, and that such enrichment is more evident for the blends containing a lower percentage of collagen.
The blends containing a high portion of EPR-g-MA in the rubber phase were found to be super tough over the whole range of ligament lengths and under all test conditions.
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