用立体质量作用模型高效计算多组分间歇吸附平衡组成

IF 3 4区 工程技术 Q3 CHEMISTRY, PHYSICAL
Norbert Kaiblinger, Rainer Hahn, Giorgio Carta
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引用次数: 0

摘要

当等温线由空间质量作用(SMA)模型描述时,推导出流线型关系来预测间歇吸附中的平衡组成,该模型广泛用于表征离子交换树脂上的大分子吸附。在N个分量的一般情况下,该方法将数学问题从2N个方程的系统简化为单个非线性代数方程,其数值解很容易找到。还提出了一种图形方法,其中等温线描述了每种组分吸附浓度的混合平衡值,并根据共同参考物质的平衡溶液浓度绘制。在这种情况下,实际的平衡成分是在参考成分平衡曲线的截距处得到的,直线表示参考物质的物质平衡。给出了二组分和三组分混合物的解析表达式。图解方法提供了吸附剂和溶液体积的比例对平衡组成的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient calculation of the equilibrium composition in multicomponent batch adsorption with the steric mass action model

Streamlined relationships are derived to predict the equilibrium composition in batch adsorption when the isotherm is described by the steric mass action (SMA) model, which is used extensively to represent macromolecule adsorption on ion exchange resins. In the general case with N components, the approach reduces the mathematical problem from a system of 2N equations to a single non-linear algebraic equation whose numerical solution is easily found. A graphical approach is also presented where isotherm lines describing mixture equilibrium values of the adsorbed concentrations of each component are plotted against the equilibrium solution concentration of a common reference species. In this case, the actual equilibrium composition is obtained at the intercept of the reference component equilibrium curve with the straight line representing the material balance for the reference species. Analytical expressions are provided for two and three-component mixtures. The graphical approach provides insight on the effects of the ratio of adsorbent and solution volumes on the equilibrium composition.

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来源期刊
Adsorption
Adsorption 工程技术-工程:化工
CiteScore
8.10
自引率
3.00%
发文量
18
审稿时长
2.4 months
期刊介绍: The journal Adsorption provides authoritative information on adsorption and allied fields to scientists, engineers, and technologists throughout the world. The information takes the form of peer-reviewed articles, R&D notes, topical review papers, tutorial papers, book reviews, meeting announcements, and news. Coverage includes fundamental and practical aspects of adsorption: mathematics, thermodynamics, chemistry, and physics, as well as processes, applications, models engineering, and equipment design. Among the topics are Adsorbents: new materials, new synthesis techniques, characterization of structure and properties, and applications; Equilibria: novel theories or semi-empirical models, experimental data, and new measurement methods; Kinetics: new models, experimental data, and measurement methods. Processes: chemical, biochemical, environmental, and other applications, purification or bulk separation, fixed bed or moving bed systems, simulations, experiments, and design procedures.
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