Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications

The call for the advancement in our ability to design cleaner technologies, as well as mitigate our ecological footprint, requires the investigation of new energy related systems. Fundamental knowledge of the thermodynamics and phase behavior of such systems is essential for their development and in...

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Main Author: Haley, Jessica Deloris
Other Authors: Clare McCabe
Format: Others
Language:en
Published: VANDERBILT 2015
Subjects:
Online Access:http://etd.library.vanderbilt.edu/available/etd-07172015-003616/
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spelling ndltd-VANDERBILT-oai-VANDERBILTETD-etd-07172015-0036162015-07-22T05:04:31Z Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications Haley, Jessica Deloris Chemical Engineering The call for the advancement in our ability to design cleaner technologies, as well as mitigate our ecological footprint, requires the investigation of new energy related systems. Fundamental knowledge of the thermodynamics and phase behavior of such systems is essential for their development and industrial application. Accurate thermophysical properties are required, as limited or inaccurate data may affect the design of processes resulting in a financial or product yield loss; thus, the ability to reliably predict the properties and phase behavior of energy relevant fluids is essential to the development of new and continual improvement of existing chemical and energy processes. Traditional theoretical approaches based on semi-empirical or empirical equations of state that do not reflect molecular-level structure and interactions, are typically heavily reliant on correlations from experimental data, which may limit their general applicability. Molecular-based equations of state that take into account molecular structure are an attractive alternative because they yield a more accurate and predictive approach by accounting for the intrinsic effects of the microscopic interactions between molecules that ultimately determine the thermodynamic properties of the fluid. This results in parameters that are typically transferrable to entire classes of molecules. The statistical associating fluid theory for potentials of variable range (SAFT-VR) is one such molecular-based approach that describes chain molecules formed from hard-core monomers that interact via square well potentials of variable attractive range. In this work, systems with significant environmental applications, including carbon dioxide, organic sulfur and fluorine molecules, fatty acid methyl esters, and nanoparticle systems, are studied with the SAFT-VR approach. These systems were specifically chosen, as their unique features (e.g., large molecules, association interactions, electrostatics) have historically made their thermodynamic modeling difficult. Clare McCabe Peter Cummings Doug LeVan Mark Abkowitz VANDERBILT 2015-07-21 text application/pdf http://etd.library.vanderbilt.edu/available/etd-07172015-003616/ http://etd.library.vanderbilt.edu/available/etd-07172015-003616/ en restrictone I hereby certify that, if appropriate, I have obtained and attached hereto a written permission statement from the owner(s) of each third party copyrighted matter to be included in my thesis, dissertation, or project report, allowing distribution as specified below. I certify that the version I submitted is the same as that approved by my advisory committee. I hereby grant to Vanderbilt University or its agents the non-exclusive license to archive and make accessible, under the conditions specified below, my thesis, dissertation, or project report in whole or in part in all forms of media, now or hereafter known. I retain all other ownership rights to the copyright of the thesis, dissertation or project report. I also retain the right to use in future works (such as articles or books) all or part of this thesis, dissertation, or project report.
collection NDLTD
language en
format Others
sources NDLTD
topic Chemical Engineering
spellingShingle Chemical Engineering
Haley, Jessica Deloris
Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications
description The call for the advancement in our ability to design cleaner technologies, as well as mitigate our ecological footprint, requires the investigation of new energy related systems. Fundamental knowledge of the thermodynamics and phase behavior of such systems is essential for their development and industrial application. Accurate thermophysical properties are required, as limited or inaccurate data may affect the design of processes resulting in a financial or product yield loss; thus, the ability to reliably predict the properties and phase behavior of energy relevant fluids is essential to the development of new and continual improvement of existing chemical and energy processes. Traditional theoretical approaches based on semi-empirical or empirical equations of state that do not reflect molecular-level structure and interactions, are typically heavily reliant on correlations from experimental data, which may limit their general applicability. Molecular-based equations of state that take into account molecular structure are an attractive alternative because they yield a more accurate and predictive approach by accounting for the intrinsic effects of the microscopic interactions between molecules that ultimately determine the thermodynamic properties of the fluid. This results in parameters that are typically transferrable to entire classes of molecules. The statistical associating fluid theory for potentials of variable range (SAFT-VR) is one such molecular-based approach that describes chain molecules formed from hard-core monomers that interact via square well potentials of variable attractive range. In this work, systems with significant environmental applications, including carbon dioxide, organic sulfur and fluorine molecules, fatty acid methyl esters, and nanoparticle systems, are studied with the SAFT-VR approach. These systems were specifically chosen, as their unique features (e.g., large molecules, association interactions, electrostatics) have historically made their thermodynamic modeling difficult.
author2 Clare McCabe
author_facet Clare McCabe
Haley, Jessica Deloris
author Haley, Jessica Deloris
author_sort Haley, Jessica Deloris
title Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications
title_short Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications
title_full Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications
title_fullStr Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications
title_full_unstemmed Predicting the Thermodynamic Properties of Complex Molecular Systems for Environmental Applications
title_sort predicting the thermodynamic properties of complex molecular systems for environmental applications
publisher VANDERBILT
publishDate 2015
url http://etd.library.vanderbilt.edu/available/etd-07172015-003616/
work_keys_str_mv AT haleyjessicadeloris predictingthethermodynamicpropertiesofcomplexmolecularsystemsforenvironmentalapplications
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