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Apart from the noted polymorphism behavior, miscibility in the blend also shows great influence on the spherulite morphology of PHT crystallized at 100 °C, in which the dendritic morphology corresponding to the β-crystal of PHT changes to the ring-banded in the blend with higher than 50 wt% PHepT.
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After annealing, the obvious interfacial crystallization was still obtained in the blend with high crosslink degree.
Raheman and Ghadge [17] studied the performance of a Ricardo EG engine using biofuel and its blend with high-speed diesel fuel at varying compression ratio, injection timing, and engine load.
In the case of the uncompatibilized blend with high dispersed-phase content, interconnections among inclusions of the dispersed phase were responsible for the failure of the Palierne model.
It is believed that the microheterogeneity of the blend with high CR content, as in 7030 CR/ENR-50 CR/ENR-50ue to the furarisesion of the ENR chain indueed by HCl liberatod from CR during high theperature moulding.
From these experimental results, it has been clarified that intermolecular hydrogen-bond interactions (CO⋯H N) between the PG β-sheet) and PG β-sheett) and formed and thus the PLV β-sheetd with high miscibility is formed.
Comonomer blends with higher hydrophilicity leads to a hybrid layer more prone to degradation [2, 3].
The blends with higher percentage of BEF were most affected by the conditions of storage.
Similarly, rheological analysis revealed APE-PAA blends with higher viscosity and shear stress values (9 × 105 mPa/180 Pa).
However, EVA-asphalt particles distributed inhomogeneously in the blends with higher EVA loadings.
The isotropic SmA transition is clearly affected in the blends with higher contents in iPP.
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