Reprint

Transport of Fluids in Nanoporous Materials

Edited by
January 2019
260 pages
  • ISBN978-3-03897-529-8 (Paperback)
  • ISBN978-3-03897-530-4 (PDF)

This book is a reprint of the Special Issue Transport of Fluids in Nanoporous Materials that was published in

Biology & Life Sciences
Chemistry & Materials Science
Computer Science & Mathematics
Engineering
Environmental & Earth Sciences
Summary
Fluid transport in narrow pores is central to the design and optimization of nanoporous materials in industrial applications, such as catalysis, nanofluids, electrochemical batteries, and membrane separation. However, due to the strong potential field in nanopores, conventional models and methods have become inadequate for predicting the transport behavior of molecules confined in the pore space. In addition, the inherent complexity of the pore structure in nanomaterials requires consideration of local or nanoscale transport at the single pore level, and averaging over the macroscale, which further impedes the application and validation of the formulated mechanical models. To solve the problem of fluid transport in narrow nanopores beyond Knudsen limits, experimental characterizations should be combined to molecular simulations in order to probe the fluid movement under realistic conditions. This book provides comprehensive perspectives on the current research in the investigation of fluid transport processes in nanomaterials. The articles from leading scholars in this field are conveniently arranged according to three categories based on the approaches used in the papers: modeling and simulation, nanomaterial manipulation and characterization, and practical application. The 14 contributions not only demonstrate the importance of fluid behavior in different applications but also address the main theories and simulations to model the fluid transport behavior in nanoporous materials. This collection shows that “fluid transport in nanomaterials” remains a versatile and vibrant topic in terms of both theories and applications.
Format
  • Paperback
License
© 2019 by the authors; CC BY-NC-ND license
Keywords
Nano-Fe3O4; super paramagnetic; water; environment remediation; carbon aerogels; concentration; structure manipulation; CO2 capture; lithium resources; lithium; solvent extraction; commercial extractants; separation; LiMn2O4; λ-MnO2; ion-sieve; hydrothermal reaction; adsorption; NaA zeolite membrane; pervaporation; cation treatments; membrane separation; hollow fibers; cell dosing; microdroplet; convective diffusion; interdiffusion; numerical simulation; molecular simulation; membrane separations; ion-transport; nanofluidics; molecular dynamics; hydrodynamics; slip; spin-coupling; non-local constitutive equations; NMR; PFG; MAS; diffusion; adsorption; hierarchical host materials; mixed-matrix membrane (MMM); permeation modeling; effective medium approach; simulation of MMM; particle-polymer interface; two sections and double decks; porous medium; combustion; equivalence ratio; gas velocity in inlet; NOx; multiple protective seams; cyclic loads; recovery rate of permeability; stress sensitivity coefficient; loading–unloading response ratio; damage variable; ultra-light foamed concrete; carbon nanotubes (CNTs); nano-Ce(SO4)2; CNT dispersion; simulation; compressive strength; breaking strength; activation energy; pore size distribution; silica based membrane; effective medium theory; gas separation; n/a