Perveen Sadia, Rasheed Muhammad Afraz, Sana Samra, Mumtaz Iram, Qamar Shamsul
Department of Mathematics, Air University, Islamabad, 44000, Pakistan.
Department of Mathematics, COMSATS University Islamabad, Islamabad, 45550, Pakistan.
ACS Omega. 2023 Jan 12;8(3):3057-3077. doi: 10.1021/acsomega.2c06317. eCollection 2023 Jan 24.
The current study investigates a nonequilibrium and nonlinear two-dimensional lumped kinetic transport model of nonisothermal reactive liquid chromatography, considering the Bi-Langmuir adsorption isotherm, heterogeneous reaction rates, radial and axial concentration variations, and the adsorption and reaction enthalpies. The mathematical models of packed bed chromatographic processes are expressed by a highly nonlinear system of coupled partial differential algebraic equations connecting the phenomena of convection, diffusion, and reaction, for mass and energy balance, the differential algebraic equations for mass balance in the solid phase, and the algebraical expressions for the adsorption isotherms and for the reaction rates. The nonlinearity of the reaction term and the adsorption isotherm preclude the derivation of an analytical solution for the model equations. For this reason, a semidiscrete, high-resolution, finite-volume technique is extended and employed in this study to obtain the numerical solution. Several consistency checks are performed to evaluate the model predictions and analyze the precision of the proposed numerical scheme. A number of heterogeneously catalyzed stoichiometric reactions are numerically simulated to examine reactor performance under the influence of temperature and Bi-Langmuir adsorption dynamics, the level of coupling between mass and energy fronts, and to study the effects of various critical parameters. The numerical results obtained are beneficial for optimal predictive control and process optimization during production and the development of methods for systematic design and fault detection of nonisothermal liquid chromatographic reactors, and hence constitute the first step to provide deeper insight into the overall evaluation of integrated reaction and separation processes.
本研究考察了非等温反应液相色谱的非平衡和非线性二维集总动力学传输模型,该模型考虑了双朗缪尔吸附等温线、非均相反应速率、径向和轴向浓度变化以及吸附和反应焓。填充床色谱过程的数学模型由一个高度非线性的耦合偏微分代数方程组表示,该方程组连接了对流、扩散和反应现象,用于质量和能量平衡,固相质量平衡的微分代数方程,以及吸附等温线和反应速率的代数表达式。反应项和吸附等温线的非线性使得无法推导模型方程的解析解。因此,本研究扩展并采用了一种半离散、高分辨率的有限体积技术来获得数值解。进行了多次一致性检验,以评估模型预测并分析所提出数值方案的精度。对一些非均相催化的化学计量反应进行了数值模拟,以考察温度和双朗缪尔吸附动力学影响下的反应器性能、质量和能量前沿之间的耦合程度,并研究各种关键参数的影响。所获得的数值结果有利于生产过程中的最优预测控制和工艺优化,以及非等温液相色谱反应器系统设计和故障检测方法的开发,因此是深入洞察综合反应和分离过程整体评估的第一步。