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首页> 外文期刊>Journal of Chemical Engineering of Japan >A Quantitative Structure-Property Relationship Model for Predicting the Critical Pressures of Organic Compounds Containing Oxygen, Sulfur, and Nitrogen
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A Quantitative Structure-Property Relationship Model for Predicting the Critical Pressures of Organic Compounds Containing Oxygen, Sulfur, and Nitrogen

机译:预测氧,硫,氮有机化合物临界压力的定量构效关系模型

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In the present research, the critical pressures of organic compounds were selected as a model case and were predicted using a quantitative structure-property relationship model. The coverage of prediction contains hydrocarbons and non-hydrocarbon organic compounds containing O, S, and N atoms. In total, 802 hydrocarbons and 1144 non-hydrocarbon organic compounds were used to develop a model with the 3D structure of each compound being optimized by quantum mechanical calculations. Furthermore, appropriate descriptors to explain critical pressure effectively were selected by forward selection regression and genetic algorithm. Multi-linear regression and neural networks were used to establish prediction models for the hydrocarbon and non-hydrocarbon organic compounds. The prediction models achieved sufficiently high performances, with R~(2) >0.96. This research also analyzes implications of selected descriptors, and the relationship between the descriptor and critical pressure.
机译:在本研究中,选择有机化合物的临界压力作为模型实例,并使用定量结构-性质关系模型进行预测。预测的范围包含含有O,S和N原子的烃和非烃有机化合物。总共使用了802种碳氢化合物和1144种非碳氢化合物有机化合物来建立模型,每种化合物的3D结构都通过量子力学计算进行了优化。此外,通过正向选择回归和遗传算法选择了有效地描述临界压力的适当描述符。使用多元线性回归和神经网络建立碳氢化合物和非碳氢化合物有机化合物的预测模型。预测模型取得了足够高的性能,其中R〜(2)> 0.96。这项研究还分析了选定描述符的含义,以及描述符与临界压力之间的关系。

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