论文标题
聚合物溶液冷冻过程中的平面界面不稳定性:扩散控制吗?
The planar interface instability during freezing of a polymer solution: Diffusion-controlled or not?
论文作者
论文摘要
从许多方面,尤其是复杂的模式形成,已经对聚合物溶液的冻结进行了广泛的研究。据信细胞/树突小结构是扩散诱导的M-S不稳定性的类型。然而,聚合物作为水中的杂质的存在与小离子的存在显着不同。由于一些挑战,缺乏对聚合物溶液定向冻结的定量瞬态研究。我们第一次观察到聚合物溶液的单向冻结期间的平面不稳定性行为以及具有操纵冰取向的典型离子溶液,以及它们的S/L界面形态的模式形成是瞬态平面不稳定性过程中时间的函数,并与彼此相比揭示了瞬态平面不稳定性过程。通过实时观察发现,聚合物溶液表现出全球不稳定性模式,而不是平面不稳定性期间离子溶液中常见的局部不稳定性模式。 W-L模型用于定量解决离子/聚合物溶液溶质后坐力的变化。并且发现W-L模型只能再现离子溶液的溶质后坐力,而不是聚合物溶液,这表明聚合物溶液冻结后的复杂物理。该论文提供了聚合物溶液和离子溶液之间定向冻结过程的壮观对比,并被认为可以从描述聚合物溶液的冻结行为的理论方法来促进相关研究。
Freezing of polymer solutions has been extensively investigated from many aspects, especially the complex pattern formation. The cell/dendrite micro-structures are believed to be in the type of diffusion-induced M-S instability. However, the presence of polymer as an impurity in water is significantly different from that of small ions. The quantitative transient investigation on directional freezing of polymer solutions remains lack due to some challenges. For the first time, we observed the planar instability behaviors during unidirectional freezing of a polymer solution together with a typical ionic solution with manipulated ice orientation, and their pattern formation of S/L interface morphology as a function of time in the transient planar instability process has been revealed and compared to each other. It is found with real-time observation that the polymer solution exhibits a global instability mode instead of a local instability mode that is common in ionic solution during planar instability. W-L model was applied to quantitatively address the variation of solute recoil of ionic/polymer solution. And it is found that the W-L model can only reproduce the solute recoil of ionic solution instead of polymer solution, which indicates the complex physics behind freezing of a polymer solution. The paper provides a spectacular contrast of directional freezing process between polymer solution and ionic solution and is believed to promote relevant investigations in terms of the theoretical approach to describing the freezing behavior of polymer solution.