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Equation of state and P-V-T properties of polymer melts based on glass transition data

机译:基于玻璃化转变数据的聚合物熔体的状态方程和P-V-T特性

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This paper addresses a method for predicting the participating constants in equation of state (EOS) for compressed polymeric fluids using two scaling constants. The theoretical EOS undertaken is Ihm-Song-Mason (ISM), which is based on the Weeks-Chandler-Anderson (WCA), and the two constants are the surface tension γ_g and the molar density ρ_g, both at the glass transition point. There are three temperature-dependent quantities that are required to use the EOS: the second virial coefficients B2(T), an effective van der Waals co-volume, b(T) and a correction factor, α(T). The second virial coefficients are calculated from a two-parameter corresponding states correlation, which is constructed with two constants as scaling parameters, i.e., the surface tension γg and molar density ρ_g. This new correlation has been applied to the ISM EOS to predict the volumetric behavior of polymer melts including polypropylene (PP), poly(ethylene oxide) (PEO), polystyrene (PS), poly(vinyl methyl ether) (PVME), and polycarbonate bisphenol-A (PC) at compressed states. The operating temperature range is from 311.5 to 603.4 K and pressures up to 200.0 MPa. Other two-temperature-dependent parameters α(T) and b(T) appearing in the ISM EOS, are calculated by scaling rules. It was found that the calculated volumes agree well with the experimental values. A collection of 421 data points has been examined for the aforementioned polymers. The average absolute deviation between the calculated densities and the experimental densities is of the order of 0.6%. The newly obtained correlation has been further assessed through a detailed comparison against previous correlations proposed by other researchers.
机译:本文提出了一种使用两个比例常数来预测压缩聚合物流体的状态方程(EOS)中参与常数的方法。进行的理论EOS是基于Weeks-Chandler-Anderson(WCA)的Ihm-Song-Mason(ISM),并且两个常数都是在玻璃化转变点的表面张力γ_g和摩尔密度ρ_g。使用EOS需要依赖于温度的三个量:第二维里系数B2(T),有效范德华共体积b(T)和校正系数α(T)。第二维里系数是根据两参数对应的状态相关性来计算的,该相关性是由两个常数作为缩放参数构成的,即表面张力γg和摩尔密度ρ_g。这种新的相关性已应用于ISM EOS,以预测包括聚丙烯(PP),聚环氧乙烷(PEO),聚苯乙烯(PS),聚(乙烯基甲基醚)(PVME)和聚碳酸酯在内的聚合物熔体的体积行为双酚A(PC)处于压缩状态。工作温度范围为311.5至603.4 K,压力最高为200.0 MPa。 ISM EOS中出现的其他两个与温度有关的参数α(T)和b(T)是通过缩放规则计算的。发现计算的体积与实验值很好地吻合。对于上述聚合物,已经检查了421个数据点的集合。计算的密度和实验密度之间的平均绝对偏差为0.6%的量级。通过与其他研究人员先前提出的相关性进行详细比较,进一步评估了新获得的相关性。

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