剪切流下缠结短链支化聚合物熔体的结构、拓扑和流变特性与线性类似物的比较

IF 3 2区 工程技术 Q2 MECHANICS
Donghun Choe, Seung Heum Jeong, C. Baig
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引用次数: 0

摘要

我们通过广泛的原子非平衡分子动力学(NEMD)模拟,将缠结短链支化聚乙烯(SCB)熔体系统与相应的线性类似物进行直接比较,详细分析了短支化对其在剪切流下的结构、拓扑和流变行为的一般影响。与线性熔体相比,在所有流动强度下,SCB 系统对外加流场的响应通常表现出更紧凑的链结构和更大的动态阻力。这些特征主要源于:(i) 由于骨架原子在分支点周围的扭转限制,链刚度增加;(ii) 短分支通过其极短的特征松弛时间进行快速随机布朗运动。我们分析了各种结构和流变特性,如各向异性的链尺寸和取向及其详细分布、缠结网络的拓扑特性、材料功能、链旋转动力学和流动双折射。根据短枝的基本结构和动力学作用,我们可以一致地理解这些单个特性所揭示的纠缠 SCB 系统的独特物理特性。这些发现有助于我们系统地理解和预测长缠结 SCB 聚合物体系在流动条件下的一般流变学行为,以及在实际应用中调整 SCB 聚合物的材料特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural, topological, and rheological characteristics of entangled short-chain branched polymer melts under shear flow in comparison with the linear analog
We present a detailed analysis of the general influence of short branches on the structural, topological, and rheological behaviors of entangled short-chain branched (SCB) polyethylene (PE) melt systems under shear flow via direct comparison with the corresponding linear analogs using extensive atomistic nonequilibrium molecular dynamics (NEMD) simulations, for a wide range of flow strengths. In comparison with the linear melt, the SCB systems generally exhibit more compact chain structures and larger dynamic resistance, in response to an imposed flow field at all flow strengths. These features essentially arise from (i) the increased chain stiffness due to the torsional restriction of backbone atoms around the branch points and (ii) the fast random Brownian motion of short branches via their very short characteristic relaxation time. We analyzed various structural and rheological properties, such as anisotropic chain dimension and orientation and their detailed distributions, topological characteristics of the entanglement network, material functions, chain rotation dynamics, and flow birefringence. Distinctive physical characteristics of the entangled SCB systems exposed by these individual properties can be consistently understood based on the fundamental structural and dynamical roles of short branches. These findings are considered informative in our systematic understanding and prediction for the general rheological behaviors of long entangled SCB polymer systems under flow, and in tuning the material properties of SCB polymers in practical applications.
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来源期刊
Journal of Rheology
Journal of Rheology 物理-力学
CiteScore
6.60
自引率
12.10%
发文量
100
审稿时长
1 months
期刊介绍: The Journal of Rheology, formerly the Transactions of The Society of Rheology, is published six times per year by The Society of Rheology, a member society of the American Institute of Physics, through AIP Publishing. It provides in-depth interdisciplinary coverage of theoretical and experimental issues drawn from industry and academia. The Journal of Rheology is published for professionals and students in chemistry, physics, engineering, material science, and mathematics.
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