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Modeling VOC adsorption in a multistage countercurrent fluidized bed adsorber

机译:在多级逆流流化床吸附器中建模VOC吸附

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The adsorption of 1,2,4-trimethylbenzene (TMB) on beaded activated carbon (BAC) in a six-stage countercurrent fluidized bed adsorber was simulated employing a two-phase model, assuming the gas in particulate phase to be either in plug flow (EGPF model) or in perfectly mixed flow (EGPM model). A rather simple model considering equilibrium state on each stage (Equilibrium model) was also used for comparison. Simulation results were compared with experimental data obtained at different values of adsorbent feed rate, superficial gas velocity, TMB initial concentration and weir height (which influences the effective bed height). The results demonstrate that the Equilibrium model overpredicts the overall removal efficiencies when the adsorbate-adsorbent system is far from equilibrium condition. On the other hand, both EGPF and EGPM show good agreement with the experimental results over industrially relevant operating conditions. Stage-wise removal efficiencies show that the EGPF model tends to predict removal efficiency better than EGPM when the weir height is high. The sensitivity analysis of the EGPM model indicates that internal diffusion within the BAC is rate-limiting for adsorption, while BAC diameter strongly influences the overall removal efficiency and can be optimized for different conditions. The effect of changes in BAC adsorption capacity on overall removal efficiency depends on the number of available adsorption sites, as well as proximity to equilibrium condition. The model developed in this study is also able to predict the effect of the number of stages on overall removal efficiency of the adsorber. The results of this study could pave the way for optimizing the design and operation of fluidized bed adsorbers, leading to cost savings and performance improvements.
机译:模拟使用两相模型的六阶段逆流流化床吸附器中的1,2,4-三甲基苯(TMB)对串串活性炭(BAC)的吸附,假设颗粒相中的气体在塞流中(EGPF模型)或完全混合的流动(EGPM型号)。考虑每个阶段(平衡模型)上考虑均衡状态的一个相当简单的模型也用于比较。将模拟结果与在不同吸附剂进料速率,浅表气体速度,TMB初始浓度和堰高度(影响有效床高度)的不同值下获得的实验数据进行比较。结果表明,均衡模型估计吸附吸附系统远离平衡条件时的总去除效率。另一方面,EGPF和EGPM都与实业相关操作条件的实验结果表现出良好的一致性。阶段明智的去除效率表明,当堰高度高时,EGPF模型倾向于预测优于EGPM的去除效率。 EGPM模型的敏感性分析表明,BAC内的内部扩散是吸附的速率限制,而BAC直径强烈影响整体去除效率,并且可以针对不同的条件进行优化。 BAC吸附能力变化对整体去除效率的影响取决于可用吸附位点的数量,以及对平衡条件的邻近。本研究开发的模型还能够预测阶段数量对吸附器的总去除效率的影响。该研究的结果可以铺平了优化流化床吸附器的设计和操作的方法,从而节省成本和性能改进。

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