论文标题
聚合物熔体线性粘弹性的平衡和非平衡分子动力学方法
Equilibrium and non-equilibrium molecular dynamics approaches for the linear viscoelasticity of polymer melts
论文作者
论文摘要
由于分子动力学(MD)的固有应力波动,聚合物熔体的粘弹性特性对于计算特别具有挑战性。我们比较了从珠子链链模型中提取存储(G')和损耗模块(G')的平衡和非平衡MD方法,在未进入和纠缠的方案中,我们发现,通过适当选择的数据处理和降低噪声的方法,不同的方法构成了Embribim emibir emibribim MD,我们发现,我们发现,通过适当选择的数据处理和降低了噪声。用于噪声滤波的多型TAU相关方法会产生平滑的应力弛豫模谱,从中可以从中获得准确的G'和g”。对于未进入的链条,将Rouse模型与短期校正相结合提供了一种方便的选择,可以完全避免压力波动挑战。对于非平衡MD(NEMD),我们发现,将压力预留治疗与离散的傅立叶变换分析相结合,可靠地计算G'和g”,其仿真长度比以前报道的要短得多。比较这些方法的效率和统计准确性,我们得出的结论是,当EMD具有可靠的和有效性时,在整个属性上都具有范围的属性,并且在整个属性上都具有属性的范围,并且是属性的属性。当只有一些频率范围很感兴趣时。
Viscoelastic properties of polymer melts are particularly challenging to compute due to the intrinsic stress fluctuations in molecular dynamics (MD). We compared equilibrium and non-equilibrium MD approaches for extracting the storage (G') and loss moduli (G") over a wide frequency range from a bead-spring chain model, in both unentangled and entangled regimes. We found that, with properly chosen data processing and noise reduction procedures, different methods render quantitatively equivalent results. In equilibrium MD (EMD), applying the Green-Kubo relation with a multi-tau correlator method for noise filtering generates smooth stress relaxation modulus profiles, from which accurate G' and G" can be obtained. For unentangled chains, combining the Rouse model with a short-time correction provides a convenient option that circumvents the stress fluctuation challenge altogether. For non-equilibrium MD (NEMD), we found that combining a stress pre-averaging treatment with discrete Fourier transform analysis reliably computes G' and G" with much shorter simulation length than previously reported. Comparing the efficiency and statistical accuracy of these methods, we concluded that EMD is both reliable and efficient, and is suitable when the whole spectrum of linear viscoelastic properties is desired, whereas NEMD offers flexibility when only some frequency ranges are of interest.