The Vapor-liquid Equilibrium of the System Methanol-ethanol-acetone and Its Component Binaries
Author : Hassanein Hamed Amer
Publisher :
Page : 312 pages
File Size : 17,13 MB
Release : 1952
Category :
ISBN :
Author : Hassanein Hamed Amer
Publisher :
Page : 312 pages
File Size : 17,13 MB
Release : 1952
Category :
ISBN :
Author :
Publisher :
Page : 1722 pages
File Size : 34,20 MB
Release : 1953
Category : Dissertations, Academic
ISBN :
Abstracts of dissertations and monographs in microform.
Author : Eli Ruckenstein
Publisher : Springer Science & Business Media
Page : 349 pages
File Size : 13,75 MB
Release : 2009-06-17
Category : Science
ISBN : 1441904409
This book consists of a number of papers regarding the thermodynamics and structure of multicomponent systems that we have published during the last decade. Even though they involve different topics and different systems, they have something in common which can be considered as the “signature” of the present book. First, these papers are concerned with “difficult” or very nonideal systems, i. e. systems with very strong interactions (e. g. , hyd- gen bonding) between components or systems with large differences in the partial molar v- umes of the components (e. g. , the aqueous solutions of proteins), or systems that are far from “normal” conditions (e. g. , critical or near-critical mixtures). Second, the conventional th- modynamic methods are not sufficient for the accurate treatment of these mixtures. Last but not least, these systems are of interest for the pharmaceutical, biomedical, and related ind- tries. In order to meet the thermodynamic challenges involved in these complex mixtures, we employed a variety of traditional methods but also new methods, such as the fluctuation t- ory of Kirkwood and Buff and ab initio quantum mechanical techniques. The Kirkwood-Buff (KB) theory is a rigorous formalism which is free of any of the - proximations usually used in the thermodynamic treatment of multicomponent systems. This theory appears to be very fruitful when applied to the above mentioned “difficult” systems.
Author : Jürgen Gmehling
Publisher :
Page : 570 pages
File Size : 45,16 MB
Release : 2004
Category : Chemistry, Organic
ISBN :
Author :
Publisher :
Page : 1508 pages
File Size : 37,57 MB
Release : 1953
Category : Dissertations, Academic
ISBN :
Author :
Publisher :
Page : 324 pages
File Size : 34,4 MB
Release : 1985
Category : Distillation
ISBN :
Author : Stanley I. Sandler
Publisher : John Wiley & Sons
Page : 1044 pages
File Size : 22,47 MB
Release : 2017-04-24
Category : Technology & Engineering
ISBN : 047050479X
In this newly revised 5th Edition of Chemical and Engineering Thermodynamics, Sandler presents a modern, applied approach to chemical thermodynamics and provides sufficient detail to develop a solid understanding of the key principles in the field. The text confronts current information on environmental and safety issues and how chemical engineering principles apply in biochemical engineering, bio-technology, polymers, and solid-state-processing. This book is appropriate for the undergraduate and graduate level courses.
Author :
Publisher :
Page : 1090 pages
File Size : 45,12 MB
Release : 1970
Category : Dissertations, Academic
ISBN :
Author : Jürgen Gmehling
Publisher : John Wiley & Sons
Page : 1062 pages
File Size : 49,4 MB
Release : 2019-04-09
Category : Science
ISBN : 3527809449
The only textbook that applies thermodynamics to real-world process engineering problems This must-read for advanced students and professionals alike is the first book to demonstrate how chemical thermodynamics work in the real world by applying them to actual engineering examples. It also discusses the advantages and disadvantages of the particular models and procedures, and explains the most important models that are applied in process industry. All the topics are illustrated with examples that are closely related to practical process simulation problems. At the end of each chapter, additional calculation examples are given to enable readers to extend their comprehension. Chemical Thermodynamics for Process Simulation instructs on the behavior of fluids for pure fluids, describing the main types of equations of state and their abilities. It discusses the various quantities of interest in process simulation, their correlation, and prediction in detail. Chapters look at the important terms for the description of the thermodynamics of mixtures; the most important models and routes for phase equilibrium calculation; models which are applicable to a wide variety of non-electrolyte systems; membrane processes; polymer thermodynamics; enthalpy of reaction; chemical equilibria, and more. -Explains thermodynamic fundamentals used in process simulation with solved examples -Includes new chapters about modern measurement techniques, retrograde condensation, and simultaneous description of chemical equilibrium -Comprises numerous solved examples, which simplify the understanding of the often complex calculation procedures, and discusses advantages and disadvantages of models and procedures -Includes estimation methods for thermophysical properties and phase equilibria thermodynamics of alternative separation processes -Supplemented with MathCAD-sheets and DDBST programs for readers to reproduce the examples Chemical Thermodynamics for Process Simulation is an ideal resource for those working in the fields of process development, process synthesis, or process optimization, and an excellent book for students in the engineering sciences.
Author : Robert B. Long
Publisher : CRC Press
Page : 481 pages
File Size : 27,57 MB
Release : 2020-09-10
Category : Science
ISBN : 1000105318
This work offers an accessible discussion of current and emerging separation processes used for waste minimization, showing how the processes work on a day-to-day basis and providing troubleshooting tips for equipment that doesn't function according to design specifications. It describes the fundamentals of over 30 processes, types of equipment available, vendors, and common problems encountered in operations with hazardous waste.