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Selection of Optimal Polymerization Degree and Force Field in the Molecular Dynamics Simulation of Insulating Paper Cellulose

机译:绝缘纸纤维素分子动力学模拟中最佳聚合度和力场的选择

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To study the microscopic thermal aging mechanism of insulating paper cellulose through molecular dynamics simulation, it is important to select suitable DP (Degree of Polymerization) and force field for the cellulose model to shorten the simulation time and obtain correct and objective simulation results. Here, the variation of the mechanical properties and solubility parameters of models with different polymerization degrees and force fields were analyzed. Numerous cellulose models with different polymerization degrees were constructed to determine the relative optimal force field from the perspectives of the similarity of the density of cellulose models in equilibrium to the actual cellulose density, and the volatility and repeatability of the mechanical properties of the models through the selection of a stable polymerization degree using the two force fields. The results showed that when the polymerization degree was more than or equal to 10, the mechanical properties and solubility of cellulose models with the COMPASS (Condensed-phase Optimized Molecular Potential for Atomistic Simulation Studies) and PCFF (Polymer Consistent Force Field) force fields were in steady states. The steady-state density of the cellulose model using the COMPASS force field was closer to the actual density of cellulose. Thus, the COMPASS force field is favorable for molecular dynamics simulation of amorphous cellulose.
机译:为了通过分子动力学模拟研究绝缘纸纤维素的微观热老化机理,为纤维素模型选择合适的DP(聚合度)和力场对于缩短模拟时间并获得正确客观的模拟结果非常重要。在此,分析了不同聚合度和力场的模型的力学性能和溶解度参数的变化。从平衡状态下的纤维素模型密度与实际纤维素密度的相似性以及模型机械性能的易变性和可重复性的角度出发,构建了许多具有不同聚合度的纤维素模型来确定相对最佳力场。使用两个力场选择稳定的聚合度。结果表明,当聚合度大于或等于10时,具有COMPASS(用于原子模拟研究的凝聚相优化分子势)和PCFF(聚合物恒力场)力场的纤维素模型的力学性能和溶解度为在稳定状态。使用COMPASS力场的纤维素模型的稳态密度更接近于纤维素的实际密度。因此,COMPASS力场有利于非晶纤维素的分子动力学模拟。

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