Percolation Implications in the Rheology of Polymer Crystallization.

IF 1.9 Q2 CRYSTALLOGRAPHY Polymer Crystallization Pub Date : 2021-01-01 DOI:10.1002/pcr2.10162
Anthony P Kotula, Kalman B Migler
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Abstract

The rheology of polymer crystallization is an old problem that often defies explanation due to the complex interrelationships between crystallization and flow properties. Although separate measurements of rheology and crystallinity can give some information on their relationship, it is only through simultaneous measurements that ideas on the rheology of polymer crystallization can be tested and developed. This Perspective details recent experimental developments in simultaneous crystallinity and rheology measurements as well as continuum modeling efforts for the case of quiescent and isothermal crystallization. Experimental results reveal that the rheology is dominated initially by growth of individual spherulites that evolve into spherulitic superstructures that eventually span the measurement geometry. A generalized effective medium model based on this concept of percolation can explain both the growth of the viscoelastic modulus during crystallization and the changes in the relaxation spectrum of the crystallizing polymer, including a critical gel response at percolation. The success of the combined measurement techniques and percolation concepts motivate research to extend the semicrystalline polymer materials space where these methods are applied as well as further develop novel techniques to gain additional insight into the evolution of structure and relaxation dynamics during crystallization.

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聚合物结晶流变学中的渗透影响。
聚合物结晶的流变学是一个老问题,由于结晶和流动特性之间存在复杂的相互关系,因此常常无法解释。虽然对流变性和结晶度的单独测量可以提供一些有关它们之间关系的信息,但只有通过同时测量才能检验和发展有关聚合物结晶流变学的观点。本视角详细介绍了同时测量结晶度和流变学的最新实验进展,以及针对静态和等温结晶情况的连续建模工作。实验结果表明,流变学最初由单个球粒的生长主导,这些球粒逐渐演变成球状超结构,最终跨越测量几何范围。基于这种渗流概念的广义有效介质模型可以解释结晶过程中粘弹性模量的增长和结晶聚合物弛豫谱的变化,包括渗流时的临界凝胶反应。综合测量技术和渗流概念的成功推动了研究工作的开展,以拓展应用这些方法的半结晶聚合物材料空间,并进一步开发新技术,以深入了解结晶过程中结构和弛豫动力学的演变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Polymer Crystallization
Polymer Crystallization Materials Science-Materials Science (miscellaneous)
CiteScore
4.70
自引率
0.00%
发文量
7
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