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首页> 外文期刊>The Journal of Chemical Physics >Rheological and structural studies of liquid decane, hexadecane, and tetracosane under planar elongational flow using nonequilibrium molecular-dynamics simulations
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Rheological and structural studies of liquid decane, hexadecane, and tetracosane under planar elongational flow using nonequilibrium molecular-dynamics simulations

机译:非平衡分子动力学模拟在平面伸长流动下液体癸烷,十六烷和十四烷的流变和结构研究

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We report for the first time rheological and structural properties of liquid decane, hexadecane, and tetracosane using nonequilibrium molecular-dynamics (NEMD) simulations under planar elongational flow (PEF). The underlying NEMD algorithm employed is the so-called p-SLLOD algorithm [C. Baig, B. J. Edwards, D. J. Keffer, and H. D. Cochran, J. Chem. Phys. 122, 114103 (2005)]. Two elongational viscosities are measured, and they are shown not to be equal to each other, indicating two independent viscometric functions in PEF. With an appropriate definition, it is observed that the two elongational viscosities converge to each other at very low elongation rates, i.e., in the Newtonian regime. For all three alkanes, tension-thinning behavior is observed. At high elongation rates, chains appear to be fully stretched. This is supported by the result of the mean-square end-to-end distance of chains < R-ete(2)> and the mean-square radius of gyration of chains < R-g(2)>, and further supported by the result of the intramolecular Lennard-Jones (LJ) potential energy. It is also observed that < R-ete(2)> and < R-g(2)> show a different trend as a function of strain rate from those in shear flow: after reaching a plateau value, < R-ete(2)> and < R-g(2)> are found to increase further as elongation rate increases. A minimum in the hydrostatic pressure is observed for hexadecane and tetracosane at about epsilon(m sigma(2)/epsilon)(1/2)=0.02. This phenomenon is shown to be associated with the intermolecular LJ potential energy. The bond-bending and torsional energies display similar trends, but a different behavior is observed for the bond-stretching energy. An important observation common in these three bonded-intramolecular interactions is that all three modes are suppressed to a small value at high elongation rates. We conjecture that a liquid-crystal-like, nematic structure is present in these systems at high elongation rates, which is characterized by a strong chain alignment with a fully stretched conformation. (c) 2005 American Institute of Physics.
机译:我们首次报道了在平面伸长流(PEF)下使用非平衡分子动力学(NEMD)模拟的液体癸烷,十六烷和十四烷的流变和结构特性。所采用的底层NEMD算法是所谓的p-SLLOD算法[C. Baig,B.J.Edwards,D.J.Keffer和H.D.Cochran,J.Chem。物理122,114103(2005)]。测量了两个伸长粘度,并且它们显示为彼此不相等,表明PEF中两个独立的粘度函数。通过适当的定义,可以观察到两种伸长粘度以非常低的伸长率彼此会聚,即在牛顿体系中。对于所有三种烷烃,均观察到了张力稀疏行为。在高伸长率下,链似乎已完全拉伸。这由链的均方根端到端距离和链的回转平均均方半径的结果所支持,并进一步得到结果的支持分子内伦纳德·琼斯(LJ)势能的分布。还观察到,与剪切流中的那些相比,表现出不同的应变速率趋势:达到平稳值后,发现和随着伸长率增加而进一步增加。十六烷和十四烷的静水压最低,约为ε(m sigma(2)/ε)(1/2)= 0.02。该现象被证明与分子间LJ势能有关。粘结弯曲能和扭转能显示出相似的趋势,但粘结拉伸能观察到不同的行为。这三种键-分子间相互作用的一个重要共同发现是,在高延伸率下,所有三种模式均被抑制为较小的值。我们推测这些系统中液晶状向列结构以高延伸率存在,其特征是具有完全拉伸构象的强链排列。 (c)2005年美国物理研究所。

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