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Molecular simulation and mathematical modelling of glass transition temperature depression induced by CO2 plasticization in Polysulfone membranes

机译:聚四氟乙烯膜中CO2塑化诱导玻璃化转变温度抑郁尺度的分子模拟及数学建模

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A sequence of molecular modelling procedure has been proposed to simulate experimentally validated membrane structure characterizing the effect of CO2 plasticization, whereby it can be subsequently employed to elucidate the depression in glass transition temperature ( Tg ). Based on the above motivation, unswollen and swollen Polysulfone membrane structures with different CO2 loadings have been constructed, whereby the accuracy has been validated through good compliance with experimentally measured physical properties. It is found that the presence of CO2 constitutes to enhancement in polymeric chain relaxation, which consequently promotes the enlargement of molecular spacing and causes dilation in the membrane matrix. A series of glass transition temperature treatment has been conducted on the verified molecular structure to elucidate the effect of CO2 loadings to the depression in Tg induced by plasticization. Subsequently, a modified Michealis-Menten (M-M) function has been implemented to quantify the effect of CO2 loading attributed to plasticization towards Tg .
机译:已经提出了一种分子建模程序的序列来模拟实验验证的膜结构,其表征CO 2塑化的作用,从而可以随后用于阐明玻璃化转变温度(TG)的抑郁症。基于上述动机,已经构建了具有不同二氧化碳载荷的Unswollen和溶胀的聚砜膜结构,从而通过良好遵守实验测量的物理性质来验证精度。发现CO 2的存在构成了聚合物链松弛的增强,从而促进了分子间距的扩大,并导致膜基质中的扩张。已经在验证的分子结构上进行了一系列玻璃化转变温度处理,以阐明CO2载荷对通过塑化诱导的TG的凹陷的影响。随后,已经实施了改性的MICHeAlis-MENTen(M-M)功能以量化CO2负载归因于塑化的CO2负载效果。

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