Study of oxygen separation from air

An increase in the demand for pure Nitrogen and Oxygen for a wide variety of applications provide the impetus towards the improvement of Pressure Swing Adsorption (PSA) gas separation technique as an alternative to the conventional cryogenic distillation procedure. Many studies have been done to eff...

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Main Author: Tan, He Jiang
Other Authors: Anutosh Chakraborty
Format: Final Year Project
Language:English
Published: 2019
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Online Access:http://hdl.handle.net/10356/77700
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-777002023-03-04T18:27:12Z Study of oxygen separation from air Tan, He Jiang Anutosh Chakraborty School of Mechanical and Aerospace Engineering Energy Systems Laboratory DRNTU::Engineering::Materials::Material testing and characterization DRNTU::Engineering::Chemical engineering::Processes and operations An increase in the demand for pure Nitrogen and Oxygen for a wide variety of applications provide the impetus towards the improvement of Pressure Swing Adsorption (PSA) gas separation technique as an alternative to the conventional cryogenic distillation procedure. Many studies have been done to effectively remove Nitrogen from the air, but the purity of Oxygen separated from similar processes are limited by the presence of Argon which is similar in characteristics as an adsorbate. An investigation into the development of PSA to further separate air into Nitrogen, Oxygen and Argon in high purity was done to contribute towards the advancement of their high-purity production process so that PSA air separation devices can be used in medical, production processes and military applications. The objectives are to identify the relative adsorption selectivity from isothermal adsorption equilibrium experiments from MIL-101(Cr) Metal-Organic Framework and AQSOA-Z02 Chabazite-Structured Zeolite with pure gases of Nitrogen, Oxygen and Argon; and develop a simulation tool using the experimental data to study and analyse the separation of air through PSA. It was found that the MIL-101(Cr) is only a good adsorbent for gas separation of Nitrogen and Argon at an elevated temperature of 320K. AQSOA-Z02 Chabazite was a more viable option for the gas separation of Argon from the other gas components at higher uptake levels which can be induced by having a high adsorption pressure. The favourable size of the Argon gas particles allowed it to diffuse further into the porous structure and adsorb more efficiently than the other larger gas molecules of Nitrogen and Oxygen. This is reflected by a higher relative adsorption equilibrium selectivity and kinetic selectivity. Bachelor of Engineering (Aerospace Engineering) 2019-06-04T04:32:13Z 2019-06-04T04:32:13Z 2019 Final Year Project (FYP) http://hdl.handle.net/10356/77700 en Nanyang Technological University 148 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Material testing and characterization
DRNTU::Engineering::Chemical engineering::Processes and operations
spellingShingle DRNTU::Engineering::Materials::Material testing and characterization
DRNTU::Engineering::Chemical engineering::Processes and operations
Tan, He Jiang
Study of oxygen separation from air
description An increase in the demand for pure Nitrogen and Oxygen for a wide variety of applications provide the impetus towards the improvement of Pressure Swing Adsorption (PSA) gas separation technique as an alternative to the conventional cryogenic distillation procedure. Many studies have been done to effectively remove Nitrogen from the air, but the purity of Oxygen separated from similar processes are limited by the presence of Argon which is similar in characteristics as an adsorbate. An investigation into the development of PSA to further separate air into Nitrogen, Oxygen and Argon in high purity was done to contribute towards the advancement of their high-purity production process so that PSA air separation devices can be used in medical, production processes and military applications. The objectives are to identify the relative adsorption selectivity from isothermal adsorption equilibrium experiments from MIL-101(Cr) Metal-Organic Framework and AQSOA-Z02 Chabazite-Structured Zeolite with pure gases of Nitrogen, Oxygen and Argon; and develop a simulation tool using the experimental data to study and analyse the separation of air through PSA. It was found that the MIL-101(Cr) is only a good adsorbent for gas separation of Nitrogen and Argon at an elevated temperature of 320K. AQSOA-Z02 Chabazite was a more viable option for the gas separation of Argon from the other gas components at higher uptake levels which can be induced by having a high adsorption pressure. The favourable size of the Argon gas particles allowed it to diffuse further into the porous structure and adsorb more efficiently than the other larger gas molecules of Nitrogen and Oxygen. This is reflected by a higher relative adsorption equilibrium selectivity and kinetic selectivity.
author2 Anutosh Chakraborty
author_facet Anutosh Chakraborty
Tan, He Jiang
format Final Year Project
author Tan, He Jiang
author_sort Tan, He Jiang
title Study of oxygen separation from air
title_short Study of oxygen separation from air
title_full Study of oxygen separation from air
title_fullStr Study of oxygen separation from air
title_full_unstemmed Study of oxygen separation from air
title_sort study of oxygen separation from air
publishDate 2019
url http://hdl.handle.net/10356/77700
_version_ 1759857404927803392