Lavoisier S.A.S.
14 rue de Provigny
94236 Cachan cedex
FRANCE

Heures d'ouverture 08h30-12h30/13h30-17h30
Tél.: +33 (0)1 47 40 67 00
Fax: +33 (0)1 47 40 67 02


Url canonique : www.lavoisier.fr/livre/autre/membrane-reactors-for-energy-applications-and-basic-chemical-production/basile/descriptif_3579347
Url courte ou permalien : www.lavoisier.fr/livre/notice.asp?ouvrage=3579347

Membrane Reactors for Energy Applications and Basic Chemical Production Woodhead Publishing Series in Energy Series

Langue : Anglais

Coordonnateurs : Basile Angelo, Di Paola Luisa, Hai Faisal, Piemonte Vincenzo

Couverture de l’ouvrage Membrane Reactors for Energy Applications and Basic Chemical Production

Membrane Reactors for Energy Applications and Basic Chemical Production presents a discussion of the increasing interest in membrane reactors that has emerged in recent years from both the scientific and industrial communities, in particular their usage for energy applications and basic chemical production.

Part One of the text investigates membrane reactors for syngas and hydrogen production, while Part Two examines membrane reactors for other energy applications, including biodiesel and bioethanol production.

The final section of the book reviews the use of membrane reactors in basic chemical production, including discussions of the use of MRs in ammonia production and the dehydrogenation of alkanes to alkenes.

Preface Part 1 Membrane reactors for syngas and hydrogen production 1 Water gas shift membrane reactors (Iulianelli and Basile) 2 Membrane reactors for methane steam reforming (MSR) (Basile) 3 Membrane reactors for autothermal reforming of methane, methanol and ethanol (Gallucci) 4 Membrane reactors for dry reforming of methane (Chakraborty) 5 Membrane reactors for hydrogen production from coal (Lin) 6 Membrane reactors for the conversion of methanol and ethanol to hydrogen (Basile) 7 Membrane reactors for the decomposition of H2O, NOx and CO2 to produce hydrogen (Ghasemzadeh) 8 Membrane reactors for steam reforming of glycerol and acetic acid to produce hydrogen (Basile) 9 Membrane reactors for biohydrogen production and processing (Di Paola) Part II Membrane reactors for other energy applications 10 Membrane reactors for biodiesel production and processing (Rahmipour) 11 Membrane reactors for bioethanol production and processing (Hai) 12 Membrane reactors for biogas production and processing (Uemiya) 13 The use of membranes in oxygen and hydrogen separation in integrated gasification combined cycle (IGCC) power plants (Chiesa) 14 Membrane reactors for the desulfurization of power plant gas emissions and transportation fuels (Yang) 15 Electrocatalytic membrane reactors (eCMRs) for fuel cell and other applications (Datta) Part III Membrane reactors for basic chemical production 16 Membrane reactors for the dehydrogenation of alkanes to alkenes (Itoh) 17 Membrane reactors for oxidative coupling of methane to produce syngas and other chemicals (Takamura) 18 Membrane reactors for ammonia production (Irvine) 19 Pervaporation membrane reactors (PVMRs) for esterification (Van Der Bruggen) 20 Photocatalytic hydrogenation of organic compounds in membrane reactors (Molinari) 21 Butene oligomerisation, phenol synthesis from benzene, butane partial oxidation and other reactions carried out in membrane reactors (Rahimpour)

R&D managers in chemical engineering companiesdeveloping membrane reactors for energy applications and basic chemical production; Postgraduates working on membrane reactors for energy applications and basic chemical production (departments of chemistry; engineering; energy).

Angelo Basile, a Chemical Engineer with Ph.D. in Technical Physics, is author of hundreds of papers, books, chapter-books, and Special Issues in the field of Membrane Science and Technology, with also various Italian, European and worldwide patents. He is an Associate Editor of various int. journals (IJHE, APCEJ, etc), Editor-in-Chief of the Int. J. Membrane Sci. & Techn., and member of the Editorial Board of more 25 int. journals. Today Basile is working at General TAG, Via Mastri Ligornettesi n. 28, Ligornetto 6853 – Switzerland.


Vincenzo Piemonte is an associate professor at the University “Campus Bio-medico” of Rome (academic courses: Artificial Organs Engineering, Biorefinery Fundamentals, Chemical Engineering Principles, Bioreactors) and an Adjunct Professor at the Department of Chemical Engineering of the University “La Sapienza” of Rome (academic course: Artificial Organs Engineering). His research activity is primarily focused on the study of Transport phenomena in the artificial and bioartificial organs; new biotreatment technology platform for the elimination of toxic pollutants from water and soil; Life Cycle Assessment (LCA) of petroleum-based plastics and bio-based plastics; extraction of valuable substances (polyphenols, tannins) from natural matrices; hydrogen production by membrane reactors for water gas shift reaction; concentrated Solar Power Plant integrated with membrane steam reforming reactor for the production of hydrogen and hydro-methane. He has about 120 publications on chemical thermodynamics, kinetics, biomedical devices modeling, Bioreactors, LCA studies.
  • Provides comprehensive coverage of membrane reactors as presented by a world-renowned team of experts
  • Includes discussions of the use of membrane reactors in ammonia production and the dehydrogenation of alkanes to alkenes
  • Tackles the use of membrane reactors in syngas, hydrogen, and basic chemical production
  • Keen focus placed on the industry, particularly in the use of membrane reactor technologies in energy

Date de parution :

Ouvrage de 696 p.

15x22.8 cm

Disponible chez l'éditeur (délai d'approvisionnement : 14 jours).

226,07 €

Ajouter au panier

Thème de Membrane Reactors for Energy Applications and Basic... :

Mots-clés :

Acetic acid; Acid catalyst; Alcohols; Ammonia synthesis; Anaerobic membrane bioreactor; Biodiesel; Bioethanol; Biofuels; Biohydrogen; Carbon dioxide capture; Carboxylic acids; Catalyst; Catalytic membrane reactors; Ceramics; Coal gasification; Composites; Conventional methods; Conventional reactors; Cyclohexane; Dark fermentation; Dehydrogenation; Desulfurization; Dry reforming; Effect of potential on kinetics and thermodynamics; Electrocatalytic membrane reactor; Electrocatalytic membrane reactors; Electrocatalytic synthesis; Electrochemical pumping; Equilibrium reactions; Esterification; Ethanol reforming; Ethanol steam reforming; Ethylbenzene; Fermentation; Fixed bed reactor; Gas industries; Gasification; Glycerol; H2O; Haber-Bosch process; Hybrid reaction separation; Hydrogen; Hydrogen production; Hydrogen separation; Hydrogen separation membranes; Integrated gasification combined cycles; Light fermentation; Lignocellulose; Membrane; Membrane bioreactors; Membrane fouling; Membrane integration; Membrane material; Membrane reactor; Membrane reactor (MR); Membrane reactor; Membrane reactors; Membrane technology; Methane; Methanol reforming palladium membranes; Methanol steam reforming; Methylcyclohexane; Mixed conductors; Modeling; n-Hexane; NOx; Oligomerization; Oxidation; Oxygen separation; Oxygen separation membranes; Palladium membrane; Partial oxidation of methane; Pervaporation; Photocatalysis; Photocatalytic hydrogenation; Photocatalytic membrane reactors; Polymeric membranes; Power generation; Reformer; Reforming; Solid catalysts; Solid electrolyte; Syngas; Synthesis; Synthesis of organics; Tape casting; Traditional reactors; Transportation fuels; Wastewater treatment; Water gas shift; Water gas shift reaction; Zeolite membranes