<p>This book, edited by Potyrailo and Amis, addresses a new paradigm-shifting approach in the search for new materials-Combinatorial Materials Science. One way to consider such an approach is to imagine an adventurous chef who decides to look for new entrees by cooking food ingredients in many pots
Micro Instrumentation: for High Throughput Experimentation and Process Intensification - a Tool for PAT
- Year
- 2007
- Tongue
- English
- Leaves
- 508
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
This first comprehensive treatment of the intertwined roles of micro-instrumentation, high throughput experimentation and process intensification as valuable tools for process analytical technology covers both industrial as well as academic aspects. First class editors and authors from top companies and universities provide interdisciplinary coverage ranging from chemistry and analytics to process design and engineering, supported throughout by case studies and ample analytical data.Content:
Chapter 1 Introduction (pages 1β21): Dr. Melvin V. Koch
Chapter 2 Macro to Micro β¦ The Evolution of Process Analytical Systems (pages 23β42): Wayne W. Blaser and Dr. Ray W. Chrisman
Chapter 3 Process Intensification (pages 43β65): Dr. Kurt M. VandenBussche
Chapter 4 High Throughput Research (pages 67β77): Dr. Ray W. Chrisman
Chapter 5 Introduction (pages 79β83): Dr. Melvin V. Koch, Dr. Ray W. Chrisman and Dr. Kurt M. VandenBussche
Chapter 6 Microreactor Concepts and Processing (pages 85β129): Volker Hessel, Patrick Lob, Holger Lowe and Gunther Kolb
Chapter 7 Non?reactor Micro?component Development (pages 131β180): Daniel R. Palo, Victoria S. Stenkamp, Jamie D. Holladay, Paul H. Humble, Robert A. Dagle and Kriston P. Brooks
Chapter 8 Microcomponent Flow Characterization (pages 181β208): Bruce A. Finlayson, Pawel W. Drapala, Matt Gebhardt, Michael D. Harrison, Bryan Johnson, Marlina Lukman, Suwimol Kunaridtipol, Trevor Plaisted, Zachary Tyree, Jeremy Vanburen and Albert Witarsa
Chapter 9 Selected Developments in Micro?analytical Technology (pages 209β313): Dr. Melvin V. Koch, Brian Marquardt, Ulrich Bonne, Clark T. Nguyen, Dennis E. Polla, Michael McCarthy, Clement E. Furlong, Timothy Chinowsky, Scott Soelberg, Alexander Mamishev, Scott E. Gilbert and Lloyd W. Burgess
Chapter 10 New Platform for Sampling and Sensor Initiative (NeSSI) (pages 315β352): David J. Veltkamp
Chapter 11 Catalyst Characterization for Gas Phase Processes (pages 353β362): Michelle J. Cohn and Douglas B. Galloway
Chapter 12 Integrated Microreactor System for Gas Phase Reactions (pages 363β406): David J. Quiram, Klavs F. Jensen, Martin A. Schmidt, Patrick L. Mills, James F. Ryley, Mark D. Wetzel and Daniel J. Kraus
Chapter 13 Liquid Phase Process Characterization (pages 407β429): Daniel A. Hickman and Daniel D. Sobeck
Chapter 14 Novel Systems for New Chemistry Exploration (pages 431β448): Paul Watts
Chapter 15 Going from Laboratory to Pilot Plant to Production using?Microreactors (pages 449β468): Michael Grund, Michael Haberl, Dirk Schmalz and Hanns Wurziger
Chapter 16 Concluding Remarks (pages 469β474): Dr. Melvin V. Koch, Dr. Ray W. Chrisman and Dr. Kurt M. VandenBussche
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