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The mechanical analysis indicated that higher tyramine content led to stronger binding.
Dynamic mechanical analysis indicated three distinct glass transitions, corresponding to the glass transitions of EPMA, starch and SMA.
Dynamic mechanical analysis indicated that the atomic mobility of Zr58Nb3Cu16Ni13Al10 bulk metallic glass was reduced by structural relaxation and crystallization.
Dynamic mechanical analysis indicated that PANI as a filler provided mechanical fortification in the rubbery region and increased glass transition temperature (Tg) significantly.
Finally, dynamic mechanical analysis indicated that SBM did not decrease epoxy Tg, while the Tg of CTBN modified epoxy decreased with both increasing concentration and acrylonitrile content.
However, dynamic mechanical analysis indicated that the noncrystalline portions of the Type I blends formed a single phase, whereas the noncrystalline regions of blends with the Type II or Type III copolymer appeared to be phase separated in the solid state.
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Both the microscopy and dynamic mechanical analysis indicate that the blends are immiscible and form two-phase structures.
Dynamic mechanical analysis indicates that the incorporation of CNTs affects the glass transition behaviour by reducing the height of the tan δ peak considerably.
Dynamic mechanical analysis indicates that the coupling agent is very effective to increase the Tg and the storage modulus of the hybrids.
These results together with those obtained from dynamic mechanical analysis indicate that the polymers may be useful in applications where commercial viscous fish oil systems are not usable.
Mechanical analysis indicates that only a small amount of gelator addition can significantly improve the mechanical properties of the obtained nanocomposites, and the maximum value of impact strength and breaking elongation is achieved with 1.0 wt% gelator concentration.
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