Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time

Sulphur dioxide (SO2) is released into the atmosphere when coal-fired power plants run, which may substantially impair the environment. SO2 in flue gas causes respiratory difficulties and acid rain, and as energy consumption rises, the amount of SO2 emitted into the environment also rises. SO2 can e...

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Published in:RESULTS IN ENGINEERING
Main Authors: Saleh, Ali Mohamed; Alias, Azil Bahari; Hasan, Syed Shatir A. Syed; Jawad, Ali H.; Shihab, Thaer Abdulwahhab; Ali, Obed M.; Ghani, Wan Azlina Wan Ab Karim; Mahdi, Hadi Hamdi; Saleh, Noah Mohammed; Ahmed, Omer Khalil
Format: Article
Language:English
Published: ELSEVIER 2025
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001399092500001
author Saleh
Ali Mohamed; Alias
Azil Bahari; Hasan
Syed Shatir A. Syed; Jawad
Ali H.; Shihab
Thaer Abdulwahhab; Ali
Obed M.; Ghani
Wan Azlina Wan Ab Karim; Mahdi
Hadi Hamdi; Saleh
Noah Mohammed; Ahmed
Omer Khalil
spellingShingle Saleh
Ali Mohamed; Alias
Azil Bahari; Hasan
Syed Shatir A. Syed; Jawad
Ali H.; Shihab
Thaer Abdulwahhab; Ali
Obed M.; Ghani
Wan Azlina Wan Ab Karim; Mahdi
Hadi Hamdi; Saleh
Noah Mohammed; Ahmed
Omer Khalil
Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
Engineering
author_facet Saleh
Ali Mohamed; Alias
Azil Bahari; Hasan
Syed Shatir A. Syed; Jawad
Ali H.; Shihab
Thaer Abdulwahhab; Ali
Obed M.; Ghani
Wan Azlina Wan Ab Karim; Mahdi
Hadi Hamdi; Saleh
Noah Mohammed; Ahmed
Omer Khalil
author_sort Saleh
spelling Saleh, Ali Mohamed; Alias, Azil Bahari; Hasan, Syed Shatir A. Syed; Jawad, Ali H.; Shihab, Thaer Abdulwahhab; Ali, Obed M.; Ghani, Wan Azlina Wan Ab Karim; Mahdi, Hadi Hamdi; Saleh, Noah Mohammed; Ahmed, Omer Khalil
Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
RESULTS IN ENGINEERING
English
Article
Sulphur dioxide (SO2) is released into the atmosphere when coal-fired power plants run, which may substantially impair the environment. SO2 in flue gas causes respiratory difficulties and acid rain, and as energy consumption rises, the amount of SO2 emitted into the environment also rises. SO2 can effectively be removed from gases or air streams through adsorption, where it is captured and retained onto a solid surface, such as activated carbon. This research focuses on developing and evaluating a composite adsorbent made from palm kernel shell-activated carbon and xerogel (PKSACX) for the adsorption of sulphur dioxide (SO2). The main objectives are to study the modelling of adsorption isotherm (Thomas, Yoon-Nelson, and Adam-Bohart models) and to determine the adsorption kinetics (pseudo-first and pseudo-second order) of the performance of SO2 adsorption on a blended series of palm kernel shell-activated carbon and xerogel. Based on the result obtained, the adsorption process mathematically described by the Thomas and Yoon-Nelson Model is the best model for SO2 removal compared to the Adam-Bohart model. Pseudo-First Order and Pseudo-Second Order kinetic models were utilized. The correlation coefficient (R2) was used to assess the equation's suitability. The PKSACXB adsorption processes suit both the pseudo-first and pseudo-second order equations. This indicates that throughout the adsorption process, both physisorption and chemisorption occur.
ELSEVIER
2590-1230

2025
25

10.1016/j.rineng.2025.103970
Engineering
gold
WOS:001399092500001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001399092500001
title Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
title_short Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
title_full Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
title_fullStr Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
title_full_unstemmed Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
title_sort Isotherm and kinetic models of SO2 adsorption on palm kernel shell-activated carbon and xerogel blends: Effect of flow rate and contact time
container_title RESULTS IN ENGINEERING
language English
format Article
description Sulphur dioxide (SO2) is released into the atmosphere when coal-fired power plants run, which may substantially impair the environment. SO2 in flue gas causes respiratory difficulties and acid rain, and as energy consumption rises, the amount of SO2 emitted into the environment also rises. SO2 can effectively be removed from gases or air streams through adsorption, where it is captured and retained onto a solid surface, such as activated carbon. This research focuses on developing and evaluating a composite adsorbent made from palm kernel shell-activated carbon and xerogel (PKSACX) for the adsorption of sulphur dioxide (SO2). The main objectives are to study the modelling of adsorption isotherm (Thomas, Yoon-Nelson, and Adam-Bohart models) and to determine the adsorption kinetics (pseudo-first and pseudo-second order) of the performance of SO2 adsorption on a blended series of palm kernel shell-activated carbon and xerogel. Based on the result obtained, the adsorption process mathematically described by the Thomas and Yoon-Nelson Model is the best model for SO2 removal compared to the Adam-Bohart model. Pseudo-First Order and Pseudo-Second Order kinetic models were utilized. The correlation coefficient (R2) was used to assess the equation's suitability. The PKSACXB adsorption processes suit both the pseudo-first and pseudo-second order equations. This indicates that throughout the adsorption process, both physisorption and chemisorption occur.
publisher ELSEVIER
issn 2590-1230

publishDate 2025
container_volume 25
container_issue
doi_str_mv 10.1016/j.rineng.2025.103970
topic Engineering
topic_facet Engineering
accesstype gold
id WOS:001399092500001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001399092500001
record_format wos
collection Web of Science (WoS)
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