Predicting Benzene Fluxes in NaX Membranes from Atomistic Simulations of Cooperative Diffusivities
نویسندگان
چکیده
In the preceding companion article, we reported high-temperature molecular dynamics (MD) simulations to trace single-molecule as well as collective mean square displacements over a range of temperatures (6001500 K) and loadings (infinite dilution to four benzenes per supercage) to evaluate respectively the selfdiffusivities and cooperative (alternatively Maxwell-Stefan) diffusivities of benzene in NaX (Si:Al ) 1.2). In this follow-up article, we use the loadingand temperature-dependent Maxwell-Stefan diffusivities to predict single-component fluxes for benzene in NaX membranes at steady state as a function of typical experimental parameters such as temperature, benzene feed side and permeate side partial pressures. We explore whether support resistances need to be included in our transport model. We compare our model predictions with experimental permeation data and find that our MD-simulated diffusivities overestimate experimental fluxes by about 2 orders of magnitude when support resistance is ignored. On the other hand, when support resistances are included, our predictions come within 1 order of magnitude of experimental data. The remaining discrepancy, which is analogous to those between microscopic and macroscopic probes of diffusion in zeolites, may arise from defects within zeolite membranes.
منابع مشابه
Beyond Lattice Models of Activated Transport in Zeolites: High-Temperature Molecular Dynamics of Self-Diffusion and Cooperative Diffusion of Benzene in NaX
We employ high-temperature molecular dynamics to investigate self-transport and cooperative transport of benzene in NaX (Si:Al ) 1.2). We have refined the benzene-NaX force field for use with our previously developed framework force field for aluminosilicates, which explicitly distinguishes between Si and Al atoms in the frame, and also between oxygen atoms in Si-O-Si and Si-O-Al environments. ...
متن کاملDetermining Binary Diffusion Coefficients for Mixtures in Zeolites from PFG NMR, MD Simulation, and Theory
1. Introduction Practical applications of zeolites and other nanoporous materials always involve at least two different components, but understanding of multicomponent diffusion in zeolites is limited and experimental data are scarce. The elements of the multicomponent Fickian diffusion tensor for a given system may depend on the total loading of adsorbed molecules, the adsorbed-phase compositi...
متن کاملModeling Jump Diffusion in Zeolites: II. Applications
We review recent applications of jump models for diffusion in zeolites. We describe the results of a coarse-grained model of the interplay between zeolite anisotropy and disorder, finding that certain disorder patterns can change how anisotropy controls membrane permeation. We show the results of a lattice model for single-file diffusion in zeolite membranes, demonstrating how single-file motio...
متن کاملبررسی استفاده از غشاهای زئولیتی برای آبزدایی ازسوخت DMAZ (علمی-پژوهشی)
Liquid fuel dimethyl aminoethyl azide (DMAZ) has been attended by many researchers as a new green fuel in recent years. Ssynthesis of the fuel has led to a process contains dehydration of DMAZ as a highlighted section. In this study, dehydration of DMAZ/water solution has been investigated by using four different zeolite membranes as HSOD, NaA, LTT and NaX that cover different pore sizes. Many ...
متن کاملRemoval of BTX Compounds from Wastewaters Using Template Free MFI Zeolitic Membrane
MFI zeolite membranes were prepared on porous α-alumina substrates, using secondary growth of nano-seeded layers. The resulting membranes were characterized by means of Scanning Electron Microscopy (SEM), X-Ray Diffractometry (XRD), and pervaporation performance tests for separation of Benzene, Toluene and Xylene (BTX) mixture from contaminated water. The morphology, thickness, homogeneity,...
متن کامل