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PB、PS和SBS物理力学性能的全原子分子动力学计算

Fully Atomistic Molecular Dynamics Computation of Physico-Mechanical Properties of PB, PS, and SBS.

作者信息

Kang Yang, Zhou Dunhong, Wu Qiang, Duan Fuyan, Yao Rufang, Cai Kun

机构信息

College of Water Resources and Architectural Engineering, Northwest A&F University, Yangling 712100, China.

School of Water Resources and Hydropower Engineering, Wuhan University, Wuhan 430072, China.

出版信息

Nanomaterials (Basel). 2019 Jul 29;9(8):1088. doi: 10.3390/nano9081088.

Abstract

The physical properties-including density, glass transition temperature (), and tensile properties-of polybutadiene (PB), polystyrene (PS) and poly (styrene-butadiene-styrene: SBS) block copolymer were predicted by using atomistic molecular dynamics (MD) simulation. At 100 K, for PB and SBS under uniaxial tension with strain rate ε ˙ = 10 s and 10 s, their stress-strain curves had four features, i.e., elastic, yield, softening, and strain hardening. At 300 K, the tensile curves of the three polymers with strain rates between 10 s and 10 s exhibited strain hardening following elastic regime. The values of Young's moduli of the copolymers were independent of strain rate. The plastic modulus of PS was independent of strain rate, but the Young's moduli of PB and SBS depended on strain rate under the same conditions. After extrapolating the Young's moduli of PB and SBS at strain rates of 0.01-1 s by the linearized Eyring-like model, the predicted results by MD simulations were in accordance well with experimental results, which demonstrate that MD results are feasible for design of new materials.

摘要

通过原子分子动力学(MD)模拟预测了聚丁二烯(PB)、聚苯乙烯(PS)和聚(苯乙烯 - 丁二烯 - 苯乙烯:SBS)嵌段共聚物的物理性质,包括密度、玻璃化转变温度()和拉伸性能。在100 K时,对于在单轴拉伸下应变率ε˙ = 10 s和10 s的PB和SBS,它们的应力 - 应变曲线具有四个特征,即弹性、屈服、软化和应变硬化。在300 K时,三种聚合物在10 s至10 s应变率之间的拉伸曲线在弹性区域之后表现出应变硬化。共聚物的杨氏模量值与应变率无关。PS的塑性模量与应变率无关,但在相同条件下PB和SBS的杨氏模量取决于应变率。通过线性化的类Eyring模型外推PB和SBS在0.01 - 1 s应变率下的杨氏模量后,MD模拟的预测结果与实验结果吻合良好,这表明MD结果对于新材料的设计是可行的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d39b/6723222/25a023bd9993/nanomaterials-09-01088-g001.jpg

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