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Modeling of supercritical fluid extraction by hybrid Peng-Robinson equation of state and genetic algorithms

机译:混合Peng-Robinson状态方程和遗传算法对超临界流体萃取的建模

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In this paper, a hybrid model using both genetic algorithms and the Peng-Robinson equation of state is developed for supercritical fluid extraction, where the genetic algorithm is used to generate the non-linear binary interaction parameter of the Peng-Robinson equation of state. Various temperatures, pressures, and solubility found in the literature are used to test the proposed model. The correlation and the mean square errors of the proposed model and the Peng-Robinson equation of state are given in the paper. The predictions of the proposed hybrid model are compared to the conventional model with a Peng-Robinson equation of state in the literature. Generally, the results using the proposed model are better than those using the conventional model because the genetic algorithm used in this paper can provide a better binary interaction parameter to fit the experimental data. The effectiveness of the proposed artificial intelligence approach is demonstrated by simulation and comparison studies.
机译:在本文中,开发了一种同时使用遗传算法和Peng-Robinson状态方程的混合模型用于超临界流体萃取,其中使用遗传算法生成Peng-Robinson状态方程的非线性二元相互作用参数。文献中发现的各种温度,压力和溶解度均用于测试提出的模型。文中给出了所提出模型与Peng-Robinson状态方程的相关性和均方误差。文献中将提出的混合模型的预测与具有彭-罗宾逊状态方程的传统模型进行了比较。通常,使用本文提出的模型的结果要优于使用常规模型的结果,因为本文中使用的遗传算法可以提供更好的二进制交互参数来拟合实验数据。仿真和比较研究证明了所提出的人工智能方法的有效性。

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