Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process

Absorption is one of the most established techniques to capture CO2 from natural gas and post-combustion processes. Nevertheless, the absorption process frequently suffers from various operational issues, including foaming. The main objective of the current work is to elucidate the effect of degrad...

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Main Authors: Eileen Li Shien, Ng, Lau, Kok Keong, Chin, Sim Yee, Lim, Soh Fong
Format: Article
Language:English
Published: MDPI 2023
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Online Access:http://ir.unimas.my/id/eprint/41582/3/Foam.pdf
http://ir.unimas.my/id/eprint/41582/
https://www.mdpi.com/2071-1050/15/2/1608
https://doi.org/10.3390/su15021608
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Institution: Universiti Malaysia Sarawak
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spelling my.unimas.ir.415822023-04-18T01:11:22Z http://ir.unimas.my/id/eprint/41582/ Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process Eileen Li Shien, Ng Lau, Kok Keong Chin, Sim Yee Lim, Soh Fong TP Chemical technology Absorption is one of the most established techniques to capture CO2 from natural gas and post-combustion processes. Nevertheless, the absorption process frequently suffers from various operational issues, including foaming. The main objective of the current work is to elucidate the effect of degradation product on the foaming behavior in methyldiethanolamine (MDEA) and piperazine (PZ) solution and evaluate the antifoaming performance of polydimethylsiloxane (PDMS) antifoam. The foaming behavior was investigated based on types of degradation product, temperature, and gas flow rate. The presence of glycine, heptanoic acid, hexadecane, and bicine in MDEA-PZ solution cause significant foaming. The presence of hexadecane produced the highest amount of foam, followed by heptanoic acid, glycine and lastly bicine. It was found that increasing the gas flow rate increases foaming tendency and foam stability. Furthermore, increasing temperature increases foaming tendency, but reduces foam stability. Moreover, PDMS antifoam was able to reduce foam formation in the presence of different degradation products and at various temperatures and gas flow rates. It was found that PDMS antifoam works best in the presence of hexadecane with the highest average foam height reduction of 19%. Hence, this work will demonstrate the cause of foaming and the importance of antifoam in reducing its effect. MDPI 2023 Article PeerReviewed text en http://ir.unimas.my/id/eprint/41582/3/Foam.pdf Eileen Li Shien, Ng and Lau, Kok Keong and Chin, Sim Yee and Lim, Soh Fong (2023) Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process. Sustainability, 15 (2). pp. 1-20. ISSN 2071-1050 https://www.mdpi.com/2071-1050/15/2/1608 https://doi.org/10.3390/su15021608
institution Universiti Malaysia Sarawak
building Centre for Academic Information Services (CAIS)
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Sarawak
content_source UNIMAS Institutional Repository
url_provider http://ir.unimas.my/
language English
topic TP Chemical technology
spellingShingle TP Chemical technology
Eileen Li Shien, Ng
Lau, Kok Keong
Chin, Sim Yee
Lim, Soh Fong
Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process
description Absorption is one of the most established techniques to capture CO2 from natural gas and post-combustion processes. Nevertheless, the absorption process frequently suffers from various operational issues, including foaming. The main objective of the current work is to elucidate the effect of degradation product on the foaming behavior in methyldiethanolamine (MDEA) and piperazine (PZ) solution and evaluate the antifoaming performance of polydimethylsiloxane (PDMS) antifoam. The foaming behavior was investigated based on types of degradation product, temperature, and gas flow rate. The presence of glycine, heptanoic acid, hexadecane, and bicine in MDEA-PZ solution cause significant foaming. The presence of hexadecane produced the highest amount of foam, followed by heptanoic acid, glycine and lastly bicine. It was found that increasing the gas flow rate increases foaming tendency and foam stability. Furthermore, increasing temperature increases foaming tendency, but reduces foam stability. Moreover, PDMS antifoam was able to reduce foam formation in the presence of different degradation products and at various temperatures and gas flow rates. It was found that PDMS antifoam works best in the presence of hexadecane with the highest average foam height reduction of 19%. Hence, this work will demonstrate the cause of foaming and the importance of antifoam in reducing its effect.
format Article
author Eileen Li Shien, Ng
Lau, Kok Keong
Chin, Sim Yee
Lim, Soh Fong
author_facet Eileen Li Shien, Ng
Lau, Kok Keong
Chin, Sim Yee
Lim, Soh Fong
author_sort Eileen Li Shien, Ng
title Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process
title_short Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process
title_full Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process
title_fullStr Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process
title_full_unstemmed Foam and Antifoam Behavior of PDMS in MDEA-PZ Solution in the Presence of Different Degradation Products for CO2 Absorption Process
title_sort foam and antifoam behavior of pdms in mdea-pz solution in the presence of different degradation products for co2 absorption process
publisher MDPI
publishDate 2023
url http://ir.unimas.my/id/eprint/41582/3/Foam.pdf
http://ir.unimas.my/id/eprint/41582/
https://www.mdpi.com/2071-1050/15/2/1608
https://doi.org/10.3390/su15021608
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