Three step modelling approach for the simulation of industrial scale pervaporation modules

The separation of aqueous and organic mixtures with thermal separation processes is an important and challenging task in the chemical industry. Rising prices for energy, stricter environmental regulations and the increasing demand for high purity chemicals are the main driving forces to find alterna...

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Main Author: Schiffmann, Patrick
Other Authors: TU Bergakademie Freiberg, Maschinenbau, Verfahrens- und Energietechnik
Format: Doctoral Thesis
Language:English
Published: Technische Universitaet Bergakademie Freiberg Universitaetsbibliothek "Georgius Agricola" 2014
Subjects:
Online Access:http://nbn-resolving.de/urn:nbn:de:bsz:105-qucosa-150446
http://nbn-resolving.de/urn:nbn:de:bsz:105-qucosa-150446
http://www.qucosa.de/fileadmin/data/qucosa/documents/15044/Dissertation-Schiffmann_20140810.pdf
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spelling ndltd-DRESDEN-oai-qucosa.de-bsz-105-qucosa-1504462014-08-22T03:29:30Z Three step modelling approach for the simulation of industrial scale pervaporation modules Schiffmann, Patrick Membranverfahren Pervaporation Modellierungsansatz Membrancharakterisierung Pilotmaßstab Membrane process pervaporation modelling approach membrane characterisation pilot scale ddc:620 Pervaporation Membranverfahren Modellierung Experiment Technikumsanlage thermisches Trennverfahren Membranfiltration organische Verbindungen technischer Fortschritt Energieeinsparung The separation of aqueous and organic mixtures with thermal separation processes is an important and challenging task in the chemical industry. Rising prices for energy, stricter environmental regulations and the increasing demand for high purity chemicals are the main driving forces to find alternative solutions to common separation technologies such as distillation and absorption. These are mostly too energy consumptive and can show limited separation performance, especially when applied to close boiling or azeotropic mixtures. Pervaporation can overcome these thermodynamic limitations and requires less energy because only the separated components need to be evaporated. This separation technology is already well established for the production of anhydrous solvents, but not yet widely distributed in the chemical and petrochemical industry due to some crucial challenges, which are still to overcome. Besides the need of high selective membranes, the development of membrane modules adapted to the specific requirements of organoselective pervaporation needs more research effort. Furthermore, only few modelling and simulation tools are available, which hinders the distribution of this process in industrial scale. In this work, these issues are addressed in a combined approach. In close collaboration with our cooperation partners, a novel membrane module for organophilic pervaporation is developed. A novel technology to manufacture high selective polymeric pervaporation membranes is applied to produce a membrane for an industrially relevant organic-organic separation task. A three step modelling approach ranging from a shortcut and a discrete to a rigorous model is developed and implemented in a user interface. A hydrophilic and an organophilic membrane are characterised for the separation of a 2-butanol/water mixture in a wide range of feed temperature and feed concentration in order to establish a generally valid description of the membrane performances. This approach is implemented in the three developed models to simulate the novel membrane module in industrial scale. The simulations are compared to the results of pilot scale experiments conducted with the novel membrane module. Good agreement between simulated and experimental values is reached. Technische Universitaet Bergakademie Freiberg Universitaetsbibliothek "Georgius Agricola" TU Bergakademie Freiberg, Maschinenbau, Verfahrens- und Energietechnik Prof. Dr.-Ing. Jens-Uwe Repke Prof. Dr.-Ing. Jens-Uwe Repke Prof. Dr.-Ing. Andrzej Górak 2014-08-21 doc-type:doctoralThesis application/pdf http://nbn-resolving.de/urn:nbn:de:bsz:105-qucosa-150446 urn:nbn:de:bsz:105-qucosa-150446 http://www.qucosa.de/fileadmin/data/qucosa/documents/15044/Dissertation-Schiffmann_20140810.pdf eng
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Membranverfahren
Pervaporation
Modellierungsansatz
Membrancharakterisierung
Pilotmaßstab
Membrane process
pervaporation
modelling approach
membrane characterisation
pilot scale
ddc:620
Pervaporation
Membranverfahren
Modellierung
Experiment
Technikumsanlage
thermisches Trennverfahren
Membranfiltration
organische Verbindungen
technischer Fortschritt
Energieeinsparung
spellingShingle Membranverfahren
Pervaporation
Modellierungsansatz
Membrancharakterisierung
Pilotmaßstab
Membrane process
pervaporation
modelling approach
membrane characterisation
pilot scale
ddc:620
Pervaporation
Membranverfahren
Modellierung
Experiment
Technikumsanlage
thermisches Trennverfahren
Membranfiltration
organische Verbindungen
technischer Fortschritt
Energieeinsparung
Schiffmann, Patrick
Three step modelling approach for the simulation of industrial scale pervaporation modules
description The separation of aqueous and organic mixtures with thermal separation processes is an important and challenging task in the chemical industry. Rising prices for energy, stricter environmental regulations and the increasing demand for high purity chemicals are the main driving forces to find alternative solutions to common separation technologies such as distillation and absorption. These are mostly too energy consumptive and can show limited separation performance, especially when applied to close boiling or azeotropic mixtures. Pervaporation can overcome these thermodynamic limitations and requires less energy because only the separated components need to be evaporated. This separation technology is already well established for the production of anhydrous solvents, but not yet widely distributed in the chemical and petrochemical industry due to some crucial challenges, which are still to overcome. Besides the need of high selective membranes, the development of membrane modules adapted to the specific requirements of organoselective pervaporation needs more research effort. Furthermore, only few modelling and simulation tools are available, which hinders the distribution of this process in industrial scale. In this work, these issues are addressed in a combined approach. In close collaboration with our cooperation partners, a novel membrane module for organophilic pervaporation is developed. A novel technology to manufacture high selective polymeric pervaporation membranes is applied to produce a membrane for an industrially relevant organic-organic separation task. A three step modelling approach ranging from a shortcut and a discrete to a rigorous model is developed and implemented in a user interface. A hydrophilic and an organophilic membrane are characterised for the separation of a 2-butanol/water mixture in a wide range of feed temperature and feed concentration in order to establish a generally valid description of the membrane performances. This approach is implemented in the three developed models to simulate the novel membrane module in industrial scale. The simulations are compared to the results of pilot scale experiments conducted with the novel membrane module. Good agreement between simulated and experimental values is reached.
author2 TU Bergakademie Freiberg, Maschinenbau, Verfahrens- und Energietechnik
author_facet TU Bergakademie Freiberg, Maschinenbau, Verfahrens- und Energietechnik
Schiffmann, Patrick
author Schiffmann, Patrick
author_sort Schiffmann, Patrick
title Three step modelling approach for the simulation of industrial scale pervaporation modules
title_short Three step modelling approach for the simulation of industrial scale pervaporation modules
title_full Three step modelling approach for the simulation of industrial scale pervaporation modules
title_fullStr Three step modelling approach for the simulation of industrial scale pervaporation modules
title_full_unstemmed Three step modelling approach for the simulation of industrial scale pervaporation modules
title_sort three step modelling approach for the simulation of industrial scale pervaporation modules
publisher Technische Universitaet Bergakademie Freiberg Universitaetsbibliothek "Georgius Agricola"
publishDate 2014
url http://nbn-resolving.de/urn:nbn:de:bsz:105-qucosa-150446
http://nbn-resolving.de/urn:nbn:de:bsz:105-qucosa-150446
http://www.qucosa.de/fileadmin/data/qucosa/documents/15044/Dissertation-Schiffmann_20140810.pdf
work_keys_str_mv AT schiffmannpatrick threestepmodellingapproachforthesimulationofindustrialscalepervaporationmodules
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