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A novel method for developing a corresponding states model for the prediction of liquid surface tension of gases

机译:一种开发相应状态模型的一种新方法,用于预测气体表面张力的预测

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The surface tension of chemical compounds controls some of the important processes in chemical engineering. On the other hand, surface tension is recognized as one of the most difficult thermo-physical properties to correlate or predict. In this paper, it was shown how to use a novel combination of the group contribution method and a mathematical-based algorithm to develop a predictive model. In this study, Gene Expression Programming (GEP) was used and the performance of the model developed was measured. Additionally, a comparison study was performed between newly developed corresponding states model and the previously published correlations available in the literature. Accordingly, it was demonstrated that there was a good agreement between predictions using the model proposed and the literature-reported data for surface tension. The results indicated that the model proposed was more reliable than the available correlations for determination of the surface tension of liquid gases, from an error analysis point of view. (C) 2018 Elsevier B.V. All rights reserved.
机译:化学化合物的表面张力控制了化学工程中的一些重要过程。另一方面,表面张力被认为是相关或预测的最困难的热物理性质之一。在本文中,示出了如何利用组贡献方法的新组合和基于数学的算法来开发预测模型。在该研究中,使用基因表达编程(GEP),并测量模型的性能。另外,在新开发的相应状态模型和文献中可用的先前公布的相关性之间进行了比较研究。因此,证明了使用所提出的模型和文献报告的表面张力数据之间存在良好的一致性。结果表明,从误差分析的观点来看,所提出的模型比用于测定液体气体表面张力的可用相关性。 (c)2018 Elsevier B.v.保留所有权利。

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