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Modeling volatile organic compound sorption in activated carbon. II. Multicomponent equilibrium

机译:模拟挥发性有机化合物在活性炭中的吸附。二。多组分平衡

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摘要

A new approach is presented for modeling multicomponent volatile organic compound (VOC) sorption equilibrium in ultra- and supernanoporous activated carbons. The model uses "Dubinin-Astakhov thermal equation of equilibrium adsorption" (DA-TEEA) for single-component adsorption thermodynamics and "ideal/real adsorbed solution theories" (IAST/RAST) for the multicomponent mixing rules. Use of the Henry's Law adsorption isotherm resolves the singularity of DA-TEEA at zero-coverage conditions. The introduced method predicts multicomponent adsorption equilibria of VOCs based on equilibrium data of only one similar component. Single and binary adsorption equilibria of acetone and benzene vapors in Kynol ACFC-5092-20 activated-carbon-fiber-cloth adsorbents are predicted with the presented models and compared with modeled and measured characterization data available in the literature. The Wilson model for nonideal binary solution mixtures is used to predict the activity coefficients needed in DA-TEEA/RAST. Modeled results are compared against measured characterization data. The selected Henry's Law upper-bound pressure (HUBP) is found to be an important factor controlling the accuracy of the multicomponent equilibrium models. An optimum HUBP can generate highly accurate results from both DA-TEEA/RAST and DA-TEEA/RAST. The accuracy realized by applying this method to acetone-benzene mixtures is sufficient for engineering design and development purposes.
机译:提出了一种新的模型,用于模拟超纳米孔和超纳米孔活性炭中多组分挥发性有机化合物(VOC)的吸附平衡。该模型对单组分吸附热力学使用“ Dubinin-Astakhov平衡吸附热方程”(DA-TEEA),对多组分混合规则使用“理想/实际吸附溶液理论”(IAST / RAST)。亨利定律吸附等温线的使用解决了零覆盖条件下DA-TEEA的奇异性。引入的方法仅基于一种相似组分的平衡数据预测VOC的多组分吸附平衡。用提出的模型预测丙酮和苯蒸气在Kynol ACFC-5092-20活性炭纤维布吸附剂中的单和二元吸附平衡,并与文献中可用的建模和测量表征数据进行比较。非理想二元溶液混合物的Wilson模型用于预测DA-TEEA / RAST中所需的活度系数。将建模结果与测得的特征数据进行比较。发现选择的亨利定律上限压力(HUBP)是控制多组分平衡模型准确性的重要因素。最佳HUBP可以从DA-TEEA / RAST和DA-TEEA / RAST生成高度准确的结果。通过将此方法应用于丙酮和苯的混合物,所达到的精度足以满足工程设计和开发目的。

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