Theoretical and Numerical Studies on Viscoelastic Effect in Phase Separation of Polymeric Systems

T. Taniguchi
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Abstract

Viscoelastic effects on phase separations in polymeric systems are investigated by a numerical method using a two fluid model. In the viscoelastic phase separation, the coupling of solvent diffusion and stress stored in polymeric materials strongly influences the dynamics, morphology of phase separated pattern. In our model we take into account the coupling and explain unusual phase separation phenomena observed experimentally in polymer solution systems. In our simulations, we reproduced the network pattern of polymer rich phase which is a minority phase and found that the coarsening of the network pattern is very slow. In order to clarify the origin of slowing down of coarsening dynamics of network pattern of polymer rich phase,we investigated the dynamics of an initially elongated droplet.We found that the flow field induced by the surface tension of droplet is suppressed by the stress produced by the induced flow field.
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聚合物体系相分离中粘弹性效应的理论与数值研究
采用双流体模型,采用数值方法研究了聚合物体系中粘弹性对相分离的影响。在粘弹性相分离过程中,溶剂扩散和高分子材料中储存的应力的耦合作用强烈地影响了相分离图的动力学和形貌。在我们的模型中,我们考虑了耦合并解释了在聚合物溶液系统中实验观察到的不寻常的相分离现象。在我们的模拟中,我们再现了富聚合物相的网络模式,这是少数相,发现网络模式的粗化非常缓慢。为了弄清富聚合物相网络模式粗化动力学减缓的原因,我们研究了初始拉长液滴的动力学。结果表明,液滴表面张力诱导的流场被诱导流场产生的应力所抑制。
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