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The compatibility between components in the blends has a certain correspondence with the weakening of PCL crystallization ability in the blends.
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These blends have a narrow window of processability.
Wet milled API blends had a much improved flow function (ffc > 10) compared with the jet milled API blends.
SEM study revealed that all the DDM-cured ER/SAN blends have a two-phase structure.
A commercial diesel was chosen as a reference fuel with 0% oxygen and five other oxygenated blends having a range of 6.02 14.2% oxygen were prepared.
Whereas, a co-continuous three-phase morphology was formed in the blends having a composition of 40/30/30.
In general, biobinder blends have a higher viscosity than that of the unmodified binder at temperatures higher than 60 °C.
Tensile properties of high temperature crystallized blends with a spherulitic morphology have been compared with those of the thermal quenched blends having a periodic modulated crystalline structure.
All blend compositions display lower electrical percolation thresholds compared to the neat matrix, with a minimum at 0.5 wt% MWCNTs for blends having a co-continuous blend morphology.
These blends have a single glass transition indicating that these blends are able to form a miscible phase due to the formation of hydrogen bonds between the hydroxyl group of MC and the carboxyl group of PAA.
In the blends having a droplet-in-matrix type of morphology, the particle sizes were significantly reduced (by a factor of more than 10).
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