Dynamic modeling framework for solid-gas sorption systems

Dacheng Li , Tiejun Lu , Nan Hua , Yi Wang , Lifang Zheng , Yi Jin , Yulong Ding , Yongliang Li
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引用次数: 1

Abstract

A dynamic modeling framework based on an intelligent approach is proposed to identify the complex behaviors of solid-gas sorption systems. An experimental system was built and tested to assist in developing a model of the system performance during the adsorption and desorption processes. The variations in the thermal effects and gaseous environment accompanying the reactions were considered when designing the model. An optimization platform based on a multi-population genetic algorithm and artificial criteria was established to identify the modeling coefficients and quantify the effects of condition changes on the reactions. The calibration of the simulation results against the tested data showed good accuracy, where the coefficient of determination was greater than 0.988. The outcome of this study could provide a modeling basis for the optimization of solid-gas sorption systems and contribute a potential tool for uncovering key characteristics associated with materials and components.

固-气吸附系统动态建模框架
提出了一种基于智能方法的动态建模框架,用于识别固体-气体吸附系统的复杂行为。建立并测试了一个实验系统,以帮助开发吸附和解吸过程中的系统性能模型。在设计模型时考虑了热效应和伴随反应的气体环境的变化。建立了一个基于多群体遗传算法和人工准则的优化平台,以确定建模系数并量化条件变化对反应的影响。模拟结果与测试数据的校准显示出良好的准确性,其中确定系数大于0.988。这项研究的结果可以为固体-气体吸附系统的优化提供建模基础,并为揭示与材料和组件相关的关键特性提供一个潜在的工具。
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CiteScore
4.70
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0.00%
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