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Role of the interphase in the interfacial flow stability in coextrusion of compatible multilayered polymers

机译:相互作用在相容多层聚合物共挤出中的界面流动稳定性中的作用

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The role of interphase triggered from interdiffusion process at neighboring layers on controlling the interfacial flow instability of multilayer coextrusion have been highlighted in this study using a compatible bilayer system. The polymers used are based on poly(methyl methacrylate) (PMMA) and poly(vinylidene fluoride) (PVDF). The interdiffusion kinetics and the rheological and geometrical properties of the generated interphase have been modelized in real experimental conditions of the coextrusion process. Polymer chain orientation in coextrusion process was demonstrated to decelerate the interdiffusion coefficient. Furthermore, the interfacial shear stress was able to promote mixing and homogenizing process at the vicinity of the interface, which favors the development of the interphase. The convective mixing was evidenced by performing a pre-shear mode on PMMA/PVDF multilayer structures. The rheological and morphological properties of the interphase are related to a lot of parameters like contact time, processing temperature, interfacial shear stress and compatibility of the polymers, etc. Some key classical decisive parameters concerning the interfacial instability phenomena such as viscosity ratio, thickness ratio and elasticity ratio, etc. were highlighted during the coextrusion process. These key factors which are significant for the interfacial stability of coextrusion of incompatible multilayered polymers seem not that important for the studied compatible systems. The coextrusion of PMMA/PVDF compatible bilayers appears to be more stable. This would be attributable to the presence of the interphase generated from interdiffusion and favored from convective mixing. The interfacial flow instability of coextrusion can be reduced (or even eliminated) despite of the very high viscosity ratio and elasticity ratio of PMMA versus PVDF, especially at low temperatures. Overall, apart from the classical mechanical parameters, we have demonstrated that the creation of diffuse interphase that favors the homogenization should be taken into consideration as an important factor to remove the interfacial instability properties.
机译:在该研究中,在本研究中突出了使用兼容双层系统在控制多层共挤出的相邻层上的相邻层中的相互作用触发的作用。使用的聚合物基于聚(甲基丙烯酸甲酯)(PMMA)和聚(偏二氟乙烯)(PVDF)。在共挤出过程的实际实验条件下,产生间间间间的相互扩散动力学和流变和几何特性。共挤出过程中的聚合物链取向被证明以减速间隔系数。此外,界面剪切应力能够在界面附近促进混合和均匀化过程,其利用间隔的发展。通过在PMMA / PVDF多层结构上进行预剪切模式,证明了对流混合。间间的流变和形态学性质与大量参数有关,如接触时间,加工温度,界面剪切应力和聚合物的相容性等。一些关于界面不稳定现象的关键经典决定参数,例如粘度比,厚度比在共挤出过程中突出显示弹性比等。这些关键因素对于相互作用的多层聚合物共挤出的界面稳定性显着似乎对所研究的兼容系统来说并不重要。 PMMA / PVDF兼容双层的共挤出似乎更稳定。这将归因于来自相互积分和从对流混合的青睐的间隔的存在。尽管PMMA与PVDF的具有非常高的粘度比和弹性比,但尤其是在低温下,可以减少(或甚至消除)的共挤出的界面流量不稳定性。总的来说,除了经典的机械参数之外,我们已经证明,应考虑到衍生物的漫反相,以考虑到除去界面不稳定性质的重要因素。

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