Studying the parameter gradient energy coefficient of Polyethylene glycol as a function of molecular weight with Freed Contribution

Malak Jaafar Ali, S. M. Nuri, S. M. Rajab
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Abstract

The gradient energy coefficient (  ) has a main function in extracting the polymers properties to help us to innovate and manufacture new polymers and different process like coating, wetting, foaming, adhesion operations. The Cahn-Hilliard (CH) theory [1], represents the free energy profile of polymer surfaces or interfaces. Considers the free energy profile of polymer surfaces or interfaces as inhomogeneous which has more than one phase. On the other hand, it has been used the Freed Bawendi contribution in conjunction with Cahn-Hilliard in treatment with architecture structure for polymers [2]. While Simha-Somcynsky (SS) theory describes the thermodynamic properties of both low and high molecular weights in terms of occupied site fraction (y) [3]. This study has been examined in the range of (313 -473) K temperatures and up to about (150) Mpa pressure. The quantitative success of our study is clearly appeared in the minimum and maximum deviations in the volume is 0.036 and 0.128
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研究了聚乙二醇的参数梯度能系数随分子量的变化规律
梯度能量系数()的主要功能是提取聚合物的性能,以帮助我们创新和制造新的聚合物和不同的工艺,如涂层,润湿,发泡,粘合操作。Cahn-Hilliard (CH)理论[1]表示聚合物表面或界面的自由能分布。认为聚合物表面或界面的自由能分布是不均匀的,具有多个相。另一方面,Freed Bawendi的贡献与Cahn-Hilliard一起用于聚合物的结构结构处理[2]。而Simha-Somcynsky (SS)理论则用占位分数(y)来描述低分子量和高分子量的热力学性质[3]。这项研究是在(313 -473)K的温度和高达(150)Mpa的压力范围内进行的。我们研究的定量成功明显表现在体积的最小和最大偏差分别为0.036和0.128
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