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首页> 外文期刊>Journal of neurosurgical sciences >Rheological behaviors of H-shaped polymers incorporated with short branches under shear and elongational flows via FENE-Rouse model
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Rheological behaviors of H-shaped polymers incorporated with short branches under shear and elongational flows via FENE-Rouse model

机译:通过FENE-ROUES模型掺入剪切和伸长流下的短分支的H形聚合物的流变能力

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We present a detailed study of the effects of short branches on the rheological behaviors of H-shaped long-chain branched polymers under shear and uniaxial elongational flows using (single "phantom" chain) bead-spring Brownian dynamics simulations. To clarify the fundamental role of short branches in both flow types, the short branches are distributed either along the chain backbone or along the four dangling long arms of the H-polymer. We observe that the fast random motions of the highly mobile short branches (in association with their very short characteristic relaxation time scales) constantly disturb chain conformation, generally leading to a more compact and less deformed chain structure against the applied flow. Accordingly, the structural and dynamical properties of the short-chain branched (SCB) H-polymers in response to the flow are strongly dependent on the location of the short branches along the chain. For instance, in comparison to the original H-polymer, the H-(SCB_backbone) polymer, where the short branches are allocated along the backbone, exhibits considerably less shear-thinning behavior resulting from the lesser degree of chain alignment and structural deformation of the SCB backbone. In contrast, the H-(SCB_arm) polymer, where the short branches are allocated along the four long arms, displays a higher degree of shear-thinning behavior arising from an effective tensile force (created by the tightly coiled "superbead" character of the arms via fast short-branch dynamics) that stretches out the backbone. Importantly, the fundamental role of the short branches in determining rheological characteristics of the SCB H-polymers remains unchanged, regardless of the flow type and flow strength. (C) 2018 The Society of Rheology.
机译:我们介绍了使用(单轴“链条)珠春天布朗动力学模拟的剪切和单轴伸长流动下的H形长链支化聚合物的流变行为的详细研究。为了阐明两种流动类型的短分支的基本作用,短分支沿着链骨架或沿着H聚合物的四个悬空的长臂分布。我们观察到高度移动的短分支的快速随机运动(与它们非常短的特征松弛时间尺度)不断干扰链构象,通常导致抵抗施加的流动更紧凑且更易变的链结构。因此,短链支链(SCB)H-聚合物的结构和动力学性质响应于流动强烈地取决于沿着链条的短分支的位置。例如,与原始的H-聚合物相比,H-(SCB_BackBone)聚合物,其中短分支沿着骨架分配,其较小的剪切变薄行为较小,导致了较小程度的链对准确程度和结构变形SCB骨干。相反,H-(SCB_ARM)聚合物,其中短分支沿着四个长臂分配,显示出从有效拉力(由紧紧盘绕的“超级”特征产生的剪切变薄行为较高通过快速短分支动态的武器延伸出骨干。重要的是,无论流动型和流动强度如何,短分支在确定SCB H-聚合物的流变特性时,短分支的基本作用保持不变。 (c)2018年流变学会。

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