Reprint

Selective Catalytic Reduction of NOx

Edited by
November 2018
280 pages
  • ISBN978-3-03897-364-5 (Paperback)
  • ISBN978-3-03897-365-2 (PDF)

This book is a reprint of the Special Issue Selective Catalytic Reduction of NOx that was published in

Chemistry & Materials Science
Engineering
Summary

The most efficient process to reduce NOx emissions from lean exhaust gases, selective catalytic reduction (SCR) with ammonia, has undergone tremendous development over the past decades. Originally only applied in stationary power plants and industrial installations, SCR systems are now installed in millions of mobile diesel engines, ranging from off-road machineries, to heavy-duty and light-duty trucks and passenger cars, to locomotives and ships. All of these applications involve specific challenges due to tighter emission limits, new internal combustion engine technologies, or alternative fuels.

Three review articles and 14 research articles in this book describe recent results and research trends of various aspects of the SCR process. Reaction engineering aspects, such as the proper dosage of ammonia or urea, respectively, are as important as further developments of the different SCR catalysts, by deepening the understanding of their functionality or by systematic improvements of their properties, such as low-temperature activity, selectivity, or poisoning-resistance. Another covered aspect is cost reduction through the use of cheaper base materials for the production is active and stable SCR catalysts. Finally, research efforts are reported to develop SCR processes with different reducing agents, which would open doors to new applications in the future. The range of topics addressed in this book will stimulate the reader’s interest as well as provide a valuable source of information for researchers in academia and industry.

Format
  • Paperback
License
© 2019 by the authors; CC BY license
Keywords
in situ; activating solution; reactivation; denitrification; catalyst; urea; vapor; ammonia; nitrogen oxides; catalytic reduction; selective catalytic reduction; plasma; nitrogen oxides; n-heptane; aldehydes; NH3-SCR; sodium poisoning; copper exchanged zeolite; acidity; selective catalytic reduction; Mn-based catalysts; H2O and SO2 resistance; low-temperature; de-NOx; lean NOx reduction; silver-alumina; indium-alumina; ammonia-SCR; hydrogen effect; red mud; deNOx catalyst; NH3-SCR; acid washing and calcining; cerium; composite oxide catalyst; NH3-SCR of NO; lifetime; H2O and SO2 resistance; MnOx-Fe2O3/vermiculite; monolithic honeycomb catalyst; room-temperature catalysis; selective catalytic reduction; NO removal efficiency; NH3-SCR; soot oxidation; de-soot/deNOx; FeVO4; Titania; Ceria; NH3-SCR reaction; V2O5-WO3/TiO2 catalyst; N2O formation; Fe2O3 promotion; NH3 oxidation; Raman spectra; biomass firing; NH3 SCR; potassium resistant catalysts; alumino silicate addition; coal ash; tail end placement; basic coating; KCl; aerosol; selective catalytic reduction (SCR); zeolite; Cu/SSZ-13; reaction mechanisms; hydrothermal stability; standard SCR; fast SCR; NH3-SCR; in situ DRIFT; Keggin structure; surface adsorption; selective catalytic reduction of NOx; impedance spectroscopy; Cu-SSZ-13 zeolite; Cu-ZSM-5 zeolite; low-temperature SCR; Ceria-based catalysts; Niobia; sol-gel method; ammonia distribution; ammonia uniformity index; selective catalytic reduction; urea; automated measurement; n/a