Manfred H. Wagner, Esmaeil Narimissa, Yuichi Masubuchi
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引用次数: 1
摘要
摘要在快速拉伸流动中,线性聚合物熔体粘度随应变速率的增加而单调下降,甚至超过了由劳斯时间定义的聚合物收缩速率。我们考虑了这一现象的两种可能的解释:(a)单体摩擦的减少和(b)管径随着变形的增加而减少,导致在较小的长度尺度上拉伸松弛(ERS)的增强。Masubuchi等人(2022)报告了原始链网络(PCN)的模拟,该模拟使用了依赖于片段取向的经验摩擦减少模型,可以再现三种聚碳酸酯熔体和聚苯乙烯熔体的延伸粘度数据。在这里,我们证明了基于介观管的ESR模型(Wagner and Narimissa 2021)与完全基于线性粘弹性表征和Rouse时间的相同数据集提供了定量一致。从ERS模型中,可以推导出一个无参数的单体摩擦减量随节段拉伸的通用关系。使用这种摩擦减少关系的PCN模拟显示,即使没有任何拟合参数,也可以定量地再现实验数据。与先前的基于段向摩擦的PCN模拟结果的比较表明,所研究的两种摩擦关系同样有效,这意味着减少摩擦的物理机制仍有待讨论。
Elongational viscosity of poly(propylene carbonate) melts: tube-based modelling and primitive chain network simulations
Abstract
In fast elongational flows, linear polymer melts exhibit a monotonic decrease of the viscosity with increasing strain rate, even beyond the contraction rate of the polymer defined by the Rouse time. We consider two possible explanations of this phenomenon: (a) the reduction of monomeric friction and (b) the reduction of the tube diameter with increasing deformation leading to an Enhanced Relaxation of Stretch (ERS) on smaller length scales. (Masubuchi et al. (2022) reported Primitive Chain Network (PCN) simulations using an empirical friction reduction model depending on segmental orientation and could reproduce the elongational viscosity data of three poly(propylene carbonate) melts and a polystyrene melt. Here, we show that the mesoscopic tube-based ESR model (Wagner and Narimissa 2021) provides quantitative agreement with the same data set based exclusively on the linear-viscoelastic characterization and the Rouse time. From the ERS model, a parameter-free universal relation of monomeric friction reduction as a function of segmental stretch can be derived. PCN simulations using this friction reduction relation are shown to reproduce quantitatively the experimental data even without any fitting parameter. The comparison with results of the earlier PCN simulation results with friction depending on segmental orientation demonstrates that the two friction relations examined work equally well which implies that the physical mechanisms of friction reduction are still open for discussion.
期刊介绍:
"Rheologica Acta is the official journal of The European Society of Rheology. The aim of the journal is to advance the science of rheology, by publishing high quality peer reviewed articles, invited reviews and peer reviewed short communications.
The Scope of Rheologica Acta includes:
- Advances in rheometrical and rheo-physical techniques, rheo-optics, microrheology
- Rheology of soft matter systems, including polymer melts and solutions, colloidal dispersions, cement, ceramics, glasses, gels, emulsions, surfactant systems, liquid crystals, biomaterials and food.
- Rheology of Solids, chemo-rheology
- Electro and magnetorheology
- Theory of rheology
- Non-Newtonian fluid mechanics, complex fluids in microfluidic devices and flow instabilities
- Interfacial rheology
Rheologica Acta aims to publish papers which represent a substantial advance in the field, mere data reports or incremental work will not be considered. Priority will be given to papers that are methodological in nature and are beneficial to a wide range of material classes. It should also be noted that the list of topics given above is meant to be representative, not exhaustive. The editors welcome feedback on the journal and suggestions for reviews and comments."