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剪切流作用下短链支化环状聚合物熔体在界面处的结构与动力学特性

Structural and Dynamical Characteristics of Short-Chain Branched Ring Polymer Melts at Interface under Shear Flow.

作者信息

Jeong Seung Heum, Cho Soowon, Ha Tae Yong, Roh Eun Jung, Baig Chunggi

机构信息

Ulsan National Institute of Science and Technology (UNIST), School of Energy and Chemical Engineering, UNIST-gil 50, Eonyang-eup, Ulju-gun, Ulsan 689-798, Korea.

KOLON Advanced Research Cluster, KOLON One & Only Tower, 110, Magokdong-ro, Gangseo-gu, Seoul 07793, Korea.

出版信息

Polymers (Basel). 2020 Dec 21;12(12):3068. doi: 10.3390/polym12123068.

Abstract

We present a detailed analysis of the interfacial chain structure and dynamics of confined polymer melt systems under shear over a wide range of flow strengths using atomistic nonequilibrium molecular dynamics simulations, paying particular attention to the rheological influence of the closed-loop ring geometry and short-chain branching. We analyzed the interfacial slip, characteristic molecular mechanisms, and deformed chain conformations in response to the applied flow for linear, ring, short-chain branched (SCB) linear, and SCB ring polyethylene melts. The ring topology generally enlarges the interfacial chain dimension along the neutral direction, enhancing the dynamic friction of interfacial chains moving against the wall in the flow direction. This leads to a relatively smaller degree of slip (ds) for the ring-shaped polymers compared with their linear analogues. Furthermore, short-chain branching generally resulted in more compact and less deformed chain structures via the intrinsically fast random motions of the short branches. The short branches tend to be oriented more perpendicular (i.e., aligned in the neutral direction) than parallel to the backbone, which is mostly aligned in the flow direction, thereby enhancing the dynamic wall friction of the moving interfacial chains toward the flow direction. These features afford a relatively lower ds and less variation in ds in the weak-to-intermediate flow regimes. Accordingly, the interfacial SCB ring system displayed the lowest ds among the studied polymer systems throughout these regimes owing to the synergetic effects of ring geometry and short-chain branching. On the contrary, the structural disturbance exerted by the highly mobile short branches promotes the detachment of interfacial chains from the wall at strong flow fields, which results in steeper increasing behavior of the interfacial slip for the SCB polymers in the strong flow regime compared to the pure linear and ring polymers.

摘要

我们使用原子非平衡分子动力学模拟,对在广泛流动强度范围内受剪切作用的受限聚合物熔体系统的界面链结构和动力学进行了详细分析,特别关注闭环环几何形状和短链支化的流变学影响。我们分析了线性、环状、短链支化(SCB)线性和SCB环状聚乙烯熔体在施加流动时的界面滑移、特征分子机制和变形链构象。环拓扑结构通常会沿中性方向扩大界面链尺寸,增强界面链在流动方向上逆着壁移动的动态摩擦力。这导致与线性类似物相比,环状聚合物的滑移程度(ds)相对较小。此外,短链支化通常通过短支链固有的快速随机运动导致链结构更紧凑且变形更小。短支链倾向于比平行于主链更垂直(即沿中性方向排列),主链大多沿流动方向排列,从而增强了移动界面链在流动方向上的动态壁摩擦力。这些特征在弱至中等流动区域提供了相对较低的ds且ds变化较小。因此,由于环几何形状和短链支化的协同作用,在整个这些区域中,界面SCB环系统在所研究的聚合物系统中显示出最低的ds。相反,高流动性短支链施加的结构干扰促进了在强流场中界面链与壁的分离,这导致与纯线性和环状聚合物相比,SCB聚合物在强流区域中界面滑移的增加行为更陡峭。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9e2/7767370/b9d40f332c85/polymers-12-03068-g001.jpg

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