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Handbook of Process Integration (Pi): Minimisation of Energy and Water Use, Waste and Emissions

ISBN-13: 9780128238509 / Angielski / Miękka / 2022

Jiri J. Klemes
Handbook of Process Integration (Pi): Minimisation of Energy and Water Use, Waste and Emissions Jiri J. Klemes 9780128238509 Woodhead Publishing - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Handbook of Process Integration (Pi): Minimisation of Energy and Water Use, Waste and Emissions

ISBN-13: 9780128238509 / Angielski / Miękka / 2022

Jiri J. Klemes
cena 1527,08
(netto: 1454,36 VAT:  5%)

Najniższa cena z 30 dni: 1520,79
Termin realizacji zamówienia:
ok. 30 dni roboczych
Bez gwarancji dostawy przed świętami

Darmowa dostawa!
Kategorie:
Inne
Kategorie BISAC:
Technology & Engineering > Manufacturing
Technology & Engineering > Mechanical
Wydawca:
Woodhead Publishing
Seria wydawnicza:
Woodhead Publishing Energy
Język:
Angielski
ISBN-13:
9780128238509
Rok wydania:
2022
Numer serii:
000904750
Oprawa:
Miękka
Wolumenów:
01
Dodatkowe informacje:
Wydanie ilustrowane

Part I: Overview of Process Integration and Analysis
1. Process Integration (PI): An Introduction
2. Basic Process Integration Terminology
3. Process Design, Integration and Optimisation: Advantages, Challenges and Drivers

Part II: Heat Integration
4. Heat Integration: Targets and Heat Exchanger Network Design
5. Application of Process Integration to the Synthesis of Heat and Power Utility Systems Including Combined Heat and Power (CHP) and Industrial Heat Pumps
6. Total Site Methodology
7. Extending Total Site Methodology to Address Varying Energy Supply and Demand
8. Analysis and Design of Heat Recovery Systems for Grassroots and Retrofit Situations
9. Heat Integration in Batch Processes

Part III: Mass Integration
10. Water Pinch Analysis for Water Management and Minimisation: An Introduction
11. Using Systematic Design Methods to Minimise Water Use in Process Industries
12. Synthesis of Water Networks with Water Loss and Gain via an Extended Pinch Analysis Technique
13. Conserving Material Resources through Process Integration: Material Conservation Networks

Part IV: Extended Process Integration
14. Process Integration for Cleaner Process Design
15. Process Integration Concepts for Combined Energy and Water Integration
16. Process Integration Techniques for Cogeneration and Trigeneration Systems
17. Pinch Analysis for Sustainable Energy Planning Using Diverse Quality Measures
18. A Unified Targeting Algorithm for Diverse Process Integration Problems
19. A Process Integration Approach for Supply Chain Development
20. Application of Heat Recovery Loops to Semi-continuous Processes for Process Integration

Part V: Applications and Case Studies
21. Applications of Energy and Water Process Integration Methodologies in Oil Refineries and Petrochemical Complexes
22. Process Integration of an Oil Refinery Hydrogen Network
23. Retrofit Mass Integration of Acid Gas Removal Systems in Petrochemical Plants
24. Applications of Pinch Technology to Total Sites: A Heavy Chemical Industrial Complex and a Steel Plant
25. Applications of Process Integration Methodologies in the Pulp and Paper Industry
26. Application of Process Integration Methodologies to the Thermal Processing of Waste
27. Application of Process Integration Methodologies in the Brewing Industry
28. Applications of Process Integration Methodologies in Dairy and Cheese Production
29. Applications of Process Integration Methodologies in Beet Sugar Plants
30. Application of Process Integration Techniques for the Efficient Use of Energy in a Urea Fertiliser Plant:
31. Process Integration for Energy Saving in Buildings and Building Complexes
32. Heat Transfer Enhancement in Heat Exchanger Networks
33. Applications of Pinch Analysis in the Design of Isolated Energy Systems

Part VI: Software Tools and Epilogue
34. Software Tools for Heat Integration
35. Mass and Water Integration Software Tools
36. Epilogue: The Importance of Problem Formulation and Data Extraction in Process Integration

Prof Dr-Hab Jirí Jaromír KLEMES, DSc, Dr h c (mult) and George Pólya Professor.

Head of a Centre of Excellence "Sustainable Process Integration Laboratory - SPIL”, NETME Centre, Faculty of Mechanical Engineering, Brno University of Technology - VUT Brno, Czech Republic.

Previously the Project Director, Senior Project Officer and Hon Reader at Department of Process Integration at UMIST, The University of Manchester and the University of Edinburgh, UK Founder and a long-term Head of the Centre for Process Integration and Intensification - CPI2, University of Pannonia, Veszprém, Hungary. Awarded by the EC with Marie Curie Chair of Excellence (EXC). Track record of managing and coordinating 97 major EC, NATO, bilateral and UK Know-How projects. Research funding attracted over 46 M?.

Co-Editor-in-Chief of Journal of Cleaner Production (IF 2020 = 9.297) and Chemical Engineering Transactions, Editor in Chief Cleaner Technologies and Engineering and Cleaner Chemical Engineering (Elsevier); Subject Editor of Energy (IF 2020 = 7.147) Managing Guest Editor of Renewable and Sustainable Energy Reviews (IF 2020 = 14.982). The founder and President of 25 y of PRES (Process Integration for Energy Saving and Pollution Reduction) conferences. Seven years Chairperson of CAPE Working Party of European Federation of Chemical Engineering, a member of WP on Process Intensification. A Member of the IChemE, UK, Sargent Medal International Committee on CAPE. Awarded by the Web of Science and Publons as a Highly Cited Researcher, Top Peer Reviewer and Top Handling Editor. He authored and co-authored 792 papers (WoS) in 106 scientific journals, h-index in Google Scholar 78, Scopus 67, PUBLONS (WoS) 61. His Publons profile (Web of Science) has 2,552 reviews for 186 scientific journals and 17,020 Editor Merits for 24 Editorial boards.

Invited lecturer at 68 universities, 14 Distinguished Visiting Professor, 6 Doctor Honoris causa, 36 PhD students, 44 Expert Evaluator.

Invited lecturer at 52 universities world-wide including Cornell, Ithaca, and North-West University Chicago, USA; Fudan University and SINOPEC Shanghai Research Institute of Petrochemical Technology, Shanghai; Tsinghua and Chinese Academy of Sciences, Beijing, South China University of Technology, Guangzhou, Xi'an Jiaotong University, China; Hong-Kong Polytechnic University; National Chengchi University and National Taiwan, Taipei, Taiwan; Hanyang University, and Korea Universities, Seoul, Republic of Korea; Institute of Food Research, Norwich Research Park, Colney, Norwich, Imperial College, London, UK; Norwegian University of Science and Technology - NTNU, Trondheim, Norway; Tomsk Technological University, Tomsk, Russian Federation; S. Amanzholov East Kazakhstan State University, Ust-Kamenogorsk, Kazakhstan; University of Paderborn and Bayer Technology Services GmbH, Leverkusen and BASF Board of Directors Forum on Process Technology, Ludwigshafen, Germany; VTT Energy, Finland; VITO MOL, Belgium: MOL Hungarian Oil Company, DUSLO Sala, Slovakia, TNO Leiden, Groningen, Zeist and Eindhoven; Utrecht and Delft University, the Netherlands; University Politechnica Leonardo da Vinci, Milano, Università degli studi di Genova and Sapienza, Rome, Italy; Universidad Industrial de Santander, Colombia; King Mongkut's University of Technology Thonburi, Bangkok, Thailand, Faculdade de Engenharia da Universidade do Porto, Oporto, Portugal, CEA Grenoble, France; Charmers and Stockholm University, Sweden.

Several times Distinguished Visiting Professor incl Universiti Teknologi Malaysia and University Technology Petronas, Malaysia; Xi'an Jiaotong University; the South China University of Technology, Guangzhou, Xi'an Jiaotong-Liverpool University Suzhou, JiangSu, and Tianjin University in China; University of Maribor, Slovenia; the Brno University of Technology, the Russian Mendeleev University of Chemical Technology, Moscow and Cracow University of Technology, Poland.



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