Reprint

Multiscale and Innovative Kinetic Approaches in Heterogeneous Catalysis

Edited by
July 2019
214 pages
  • ISBN978-3-03921-179-1 (Paperback)
  • ISBN978-3-03921-180-7 (PDF)

This book is a reprint of the Special Issue Multiscale and Innovative Kinetic Approaches in Heterogeneous Catalysis that was published in

Chemistry & Materials Science
Engineering
Summary
Kinetics and reactor modeling for heterogeneous catalytic reactions are prominent tools for investigating and understanding catalyst functionalities at nanoscale and the related rates of complex reaction networks. This book illustrates some examples related to the transformation of simple to more complex feedstocks, including different types of reactor designs, i.e., steady-state, transient plug flow reactors, and TAP reactors for which there is sometimes a strong gap in the operating conditions from ultra-high-vacuum to high-pressure conditions. In conjunction, new methodologies have emerged, giving rise to more robust microkinetics models. As exemplified, they include the kinetics and the dynamics of the reactors and span a large range of length and time scales. The objective of this Special Issue is to provide contributions that can illustrate recent advances and novel methodologies for elucidating the kinetics of heterogeneous reactions and the necessary multiscale approach for optimizing the reactor design. This book is dedicated to postgraduate and scientific researchers, and experts in heterogeneous catalysis. It may also serve as a source of original information for the elaboration of lessons on catalysis for Master students.
Format
  • Paperback
License
© 2019 by the authors; CC BY-NC-ND license
Keywords
2,3-Butanediol dehydration; 1,3-Butadiene; Methyl Ethyl Ketone; amorphous calcium phosphate; reactor modeling; pilot-scale fixed-bed reactor; gas-phase oxidation; HNO3; hierarchical graphite felts; selective oxidation; H2S; heats of adsorption; FTIR spectroscopy; AEIR method; Temkin model; kinetics; kinetic model; microkinetics; cracking; methanol-to-olefins (MTO); zeolite; ZSM-5; ZSM-23; SAPO-18; SAPO-34; transient kinetics; TAP reactor; temporal analysis of products; ammonia decomposition; internal effectiveness factor; effective diffusion coefficient; N2O; catalytic decomposition; cobalt mixed oxide; alkali metal; promoter; power-law; Langmuir–Hinshelwood; kinetic modeling; Pd/α-Al2O3; catalytic combustion; automation; digitalization; mechanism analysis; rhodium; methane; n/a