Muutke küpsiste eelistusi

Modelling and Optimisation of FluidParticle Processes in Environmental Engineering [Kõva köide]

  • Formaat: Hardback, 182 pages, kõrgus x laius: 254x178 mm, kaal: 453 g, 25 Tables, black and white; 113 Line drawings, color; 17 Line drawings, black and white; 10 Halftones, color; 1 Halftones, black and white; 123 Illustrations, color; 18 Illustrations, black and white
  • Ilmumisaeg: 19-May-2026
  • Kirjastus: CRC Press
  • ISBN-10: 1032854898
  • ISBN-13: 9781032854892
  • Kõva köide
  • Hind: 178,50 €
  • See raamat ei ole veel ilmunud. Raamatu kohalejõudmiseks kulub orienteeruvalt 3-4 nädalat peale raamatu väljaandmist.
  • Kogus:
  • Lisa ostukorvi
  • Tasuta tarne
  • Tellimisaeg 2-4 nädalat
  • Lisa soovinimekirja
  • Formaat: Hardback, 182 pages, kõrgus x laius: 254x178 mm, kaal: 453 g, 25 Tables, black and white; 113 Line drawings, color; 17 Line drawings, black and white; 10 Halftones, color; 1 Halftones, black and white; 123 Illustrations, color; 18 Illustrations, black and white
  • Ilmumisaeg: 19-May-2026
  • Kirjastus: CRC Press
  • ISBN-10: 1032854898
  • ISBN-13: 9781032854892

This comprehensive book explores fluid-particle interaction processes in environmental engineering, combining theoretical foundations with advanced numerical simulation techniques. Covering eight key areas from particle agglomeration to membrane fouling, the work integrates fundamental physics with practical computational tools to address critical challenges in environmental systems and reactor design.

It provides a detailed overview of hydrodynamic modelling, interparticle forces, and membrane separation dynamics, alongside practical numerical simulation approaches for real-world applications. It also delivers essential insights into solid–liquid interface processes, mathematical modelling for fouling prediction, and design optimisation strategies for stirred tank reactors, rotatory vortex pelleting systems, and hydrothermal carbonisation reactors. Readers will gain access to proven methodologies that bridge theoretical understanding with practical implementation, offering workflow simplification tools for complex environmental engineering challenges.

Ideal for both academic study and professional engineering practice, this essential resource targets graduate students and researchers in environmental and chemical engineering, along with practicing engineers in water treatment, membrane technology, and reactor design.



This comprehensive book explores fluid-particle interaction processes in environmental engineering, combining theoretical foundations with advanced numerical simulation techniques.

1. The role of hydrodynamics and interparticle forces in the
agglomeration of fine particles
2. The role of fluid dynamics and
fluidparticle interaction on fouling in membrane-based separation systems
3.
Micro processes at solidliquid interface in fluidparticle systems
4.
Numerical modelling and physicochemical characterisation of fluidparticle
systems
5. Numerical simulation and design optimisation of hydrodynamics and
mixing process in a stirred tank reactor (STR)
6. Numerical modelling of the
hydrodynamics and fluidparticle interactions in a Rotatory Vortex Pelleting
(RVP) reactor
7. Numerical simulation of convective mixing and heat transfer
in a pilot-scale hydrothermal carbonisation (HTC) reactor
8. Mathematical
modelling of the effects compression of fouling layers as a predictive tool
in membrane bioreactor systems
Benjamin Oyegbile holds a PhD in Environmental Engineering and is currently a visiting researcher at the University of Bradford. He has over six years of university-level teaching experience and a focused research agenda in fluidparticle modelling and environmental fluid dynamics. His research work is focused on the integration of experimental analysis and high-fidelity numerical simulations with advanced machine learning techniques to investigate and optimise complex fluidparticle processes in environmental engineering.