Grommes Dirk, Schenk Martin R, Bruch Olaf, Reith Dirk
Institute of Technology, Resource and Energy-Efficient Engineering (TREE), Bonn-Rhein-Sieg University of Applied Sciences, Grantham-Allee 20, 53757 Sankt Augustin, Germany.
Dr. Reinold Hagen Stiftung, Kautexstrasse 53, 53229 Bonn, Germany.
Polymers (Basel). 2021 Dec 20;13(24):4466. doi: 10.3390/polym13244466.
In this study, we investigate the thermo-mechanical relaxation and crystallization behavior of polyethylene using mesoscale molecular dynamics simulations. Our models specifically mimic constraints that occur in real-life polymer processing: After strong uniaxial stretching of the melt, we quench and release the polymer chains at different loading conditions. These conditions allow for free or hindered shrinkage, respectively. We present the shrinkage and swelling behavior as well as the crystallization kinetics over up to 600 ns simulation time. We are able to precisely evaluate how the interplay of chain length, temperature, local entanglements and orientation of chain segments influences crystallization and relaxation behavior. From our models, we determine the temperature dependent crystallization rate of polyethylene, including crystallization onset temperature.
在本研究中,我们使用介观分子动力学模拟研究了聚乙烯的热机械松弛和结晶行为。我们的模型特别模拟了实际聚合物加工过程中出现的约束条件:在熔体进行强烈单轴拉伸后,我们在不同加载条件下对聚合物链进行淬火和释放。这些条件分别允许自由收缩或受阻收缩。我们展示了长达600纳秒模拟时间内的收缩和膨胀行为以及结晶动力学。我们能够精确评估链长、温度、局部缠结和链段取向之间的相互作用如何影响结晶和松弛行为。从我们的模型中,我们确定了聚乙烯的温度依赖性结晶速率,包括结晶起始温度。