304
Views
62
CrossRef citations to date
0
Altmetric
Original Articles

ADIABATIC GAS ABSORPTION AND STRIPPING WITH CHEMICAL REACTION IN PACKED TOWERS

Pages 343-361 | Received 11 May 1982, Accepted 16 Aug 1982, Published online: 27 Apr 2007

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (3)

Noureddine Boucif, Denis Roizard, Jean-Pierre Corriou & Eric Favre. (2015) To What Extent Does Temperature Affect Absorption in Gas-Liquid Hollow Fiber Membrane Contactors?. Separation Science and Technology 50:9, pages 1331-1343.
Read now
Santanu Sarkar, Dwaipayan Sen, Ankur Sarkar, Sangita Bhattacharjee, Sibdas Bandopadhya, Sourja Ghosh & Chiranjib Bhattacharjee. (2014) Modelling aspects of carbon dioxide capture technologies using porous contactors: a review. Environmental Technology Reviews 3:1, pages 15-29.
Read now
Zhiwu Henry Liang, Teerawat Sanpasertparnich, Paitoon PT Tontiwachwuthikul, Don Gelowitz & Raphael Idem. (2011) Part 1: Design, modeling and simulation of post-combustion CO2 capture systems using reactive solvents. Carbon Management 2:3, pages 265-288.
Read now

Articles from other publishers (59)

Nguyen Van Nguyen, Vahid Pirouzfar, Hasti Soheilinezhad & Chia-Hung Su. (2024) Optimizing the CO2 capture and removal process to recover energy and CO2 from the flue gas of boilers and gas turbines outlet with considering the techno-economic analysis. Energy 291, pages 130281.
Crossref
Quanmei Hu, Shijie Wang & Hongming Fang. (2024) Simulation and Analysis of CO2 Capturing from Converter Gas Using Monoethanolamine. Theoretical Foundations of Chemical Engineering 57:6, pages 1524-1533.
Crossref
Chetna Shukla, Poonam Mishra & Sukanta Kumar Dash. (2023) A review of process intensified CO2 capture in RPB for sustainability and contribution to industrial net zero. Frontiers in Energy Research 11.
Crossref
Mansoor Khan, Devjyoti Nath, Mohammad Khalifi & Hassan Hassanzadeh. (2022) Measurements and Modeling of the Dissolution and Exsolution Kinetics of the Ethane/ n -Heptane System . Industrial & Engineering Chemistry Research 62:1, pages 775-788.
Crossref
Paul Akula, Andrew Lee, John Eslick, Debangsu Bhattacharyya & David C. Miller. (2022) A modified electrolyte non‐random two‐liquid model with analytical expression for excess enthalpy: Application to the MEA‐H 2 O‐CO 2 system . AIChE Journal 69:1.
Crossref
Peyman Pakzad, Masoud Mofarahi & Chang-Ha Lee. (2021) Sensitivity analysis of mass transfer and enhancement factor correlations for the absorption of CO2 in a Sulzer DX packed column using 4-diethylamino-2-butanol (DEAB) solution. Separation and Purification Technology 268, pages 118696.
Crossref
Thomas Moore, Du Nguyen, Jaisree Iyer, Pratanu Roy & Joshuah K. Stolaroff. (2021) Advanced absorber heat integration via heat exchange packings. AIChE Journal 67:8.
Crossref
Paul Akula, John Eslick, Debangsu Bhattacharyya & David C. Miller. (2021) Model Development, Validation, and Optimization of an MEA-Based Post-Combustion CO 2 Capture Process under Part-Load and Variable Capture Operations . Industrial & Engineering Chemistry Research 60:14, pages 5176-5193.
Crossref
Muhammad Zubair Shahid, Abdulhalim Shah Maulud, M Azmi Bustam, Humbul Suleman, Hairul Nazirah Abdul Halim & Azmi M. Shariff. (2021) Packed column modelling and experimental evaluation for CO2 absorption using MDEA solution at high pressure and high CO2 concentrations. Journal of Natural Gas Science and Engineering 88, pages 103829.
Crossref
Ibtissam Hammouche, Ammar Selatnia & Sonia Yassa. (2021) Influence of five model parameters on the performance of a CO 2 absorber column by a loaded aqueous MEA solution . Oil & Gas Science and Technology – Revue d’IFP Energies nouvelles 76, pages 22.
Crossref
Kaveh R. Khalilpour & Ali Zafaranloo. (2020) Generic techno-economic optimization methodology for concurrent design and operation of solvent-based PCC processes. International Journal of Greenhouse Gas Control 99, pages 103079.
Crossref
Adel Almoslh, Falah Alobaid, Christian Heinze & Bernd Epple. (2020) Influence of Pressure on Gas/Liquid Interfacial Area in a Tray Column. Applied Sciences 10:13, pages 4617.
Crossref
Adel Almoslh, Falah Alobaid, Christian Heinze & Bernd Epple. (2020) Comparison of Equilibrium-Stage and Rate-Based Models of a Packed Column for Tar Absorption Using Vegetable Oil. Applied Sciences 10:7, pages 2362.
Crossref
Muhammad Zubair Shahid, Abdulhalim Shah Maulud, M Azmi Bustam & Humbul Suleman. (2020) Modeling of CO 2 -MEA absorption system in the packed column using Sulzer DX structured packing . IOP Conference Series: Materials Science and Engineering 736:2, pages 022059.
Crossref
Peyman Pakzad, Masoud Mofarahi, Meisam Ansarpour, Morteza Afkhamipour & Chang-Ha Lee. 2020. Advances in Carbon Capture. Advances in Carbon Capture 51 87 .
Muhammad Zubair Shahid, Abdulhalim Shah Maulud, M Azmi Bustam, Humbul Suleman, Hairul Nazirah Abdul Halim & Azmi M Shariff. (2019) Rate-Based Modeling for Packed Absorption Column of the MEA–CO 2 –Water System at High-Pressure and High-CO 2 Loading Conditions . Industrial & Engineering Chemistry Research 58:27, pages 12235-12246.
Crossref
Wenxiao Pan, Janine Galvin, Wei Ling Huang, Zhijie Xu, Xin Sun, Zhen Fan & Kunlei Liu. (2018) Device‐scale CFD modeling of gas‐liquid multiphase flow and amine absorption for CO 2 capture . Greenhouse Gases: Science and Technology 8:3, pages 603-620.
Crossref
Maria T. Mota-Martinez, Jason P. Hallett & Niall Mac Dowell. (2017) Solvent selection and design for CO 2 capture – how we might have been missing the point . Sustainable Energy & Fuels 1:10, pages 2078-2090.
Crossref
Mohammad Rahimi & Asghar Molaei Dehkordi. (2017) Reactive absorption in packed bed columns in the presence of magnetic nanoparticles and magnetic field: Modeling and simulation. Journal of Industrial and Engineering Chemistry 45, pages 131-144.
Crossref
F. Isa, H. Zabiri, M. Ramasamy, L.D. Tufa, A.M. Shariff & S.F. Saleh. (2017) Pressure modification index based on hydrodynamics and mass transfer effects for modeling of CO 2 removal from natural gas via absorption at high pressures. International Journal of Greenhouse Gas Control 56, pages 173-186.
Crossref
Morteza Afkhamipour & Masoud Mofarahi. (2016) Modeling and optimization of CO 2 capture using 4-diethylamino-2-butanol (DEAB) solution. International Journal of Greenhouse Gas Control 49, pages 24-33.
Crossref
Tohid Nejad Ghaffar Borhani, Morteza Afkhamipour, Abbas Azarpour, Vahid Akbari, Seyed Hossein Emadi & Zainuddin A. Manan. (2016) Modeling study on CO 2 and H 2 S simultaneous removal using MDEA solution. Journal of Industrial and Engineering Chemistry 34, pages 344-355.
Crossref
Zhiwu Liang, Kaiyun Fu, Raphael Idem & Paitoon Tontiwachwuthikul. (2016) Review on current advances, future challenges and consideration issues for post-combustion CO2 capture using amine-based absorbents. Chinese Journal of Chemical Engineering 24:2, pages 278-288.
Crossref
Charles V. Brand, Edward Graham, Javier Rodríguez, Amparo Galindo, George Jackson & Claire S. Adjiman. (2016) On the use of molecular-based thermodynamic models to assess the performance of solvents for CO 2 capture processes: monoethanolamine solutions . Faraday Discussions 192, pages 337-390.
Crossref
Mario Llano-Restrepo & Eduard Araujo-Lopez. (2015) Modeling and simulation of packed-bed absorbers for post-combustion capture of carbon dioxide by reactive absorption in aqueous monoethanolamine solutions. International Journal of Greenhouse Gas Control 42, pages 258-287.
Crossref
Zhiwu (Henry) Liang, Wichitpan Rongwong, Helei Liu, Kaiyun Fu, Hongxia Gao, Fan Cao, Rui Zhang, Teerawat Sema, Amr Henni, Kazi Sumon, Devjyoti Nath, Don Gelowitz, Wayuta Srisang, Chintana Saiwan, Abdelbaki Benamor, Mohammed Al-Marri, Huancong Shi, Teeradet Supap, Christine Chan, Qing Zhou, Mohammad Abu-Zahra, Malcolm Wilson, Wilfred Olson, Raphael Idem & Paitoon (PT) Tontiwachwuthikul. (2015) Recent progress and new developments in post-combustion carbon-capture technology with amine based solvents. International Journal of Greenhouse Gas Control 40, pages 26-54.
Crossref
Rameshwar Hiwale, Robin Smith & Sungwon Hwang. (2015) A novel methodology for the modeling of CO2 absorption in monoethanolamine (MEA) using discrimination of rival kinetics. Journal of Industrial and Engineering Chemistry 25, pages 78-88.
Crossref
Rajab Khalilpour & Ali Abbas. (2014) Optimal synthesis and design of solvent-based PCC process using a rate-based model. Separation and Purification Technology 132, pages 149-167.
Crossref
Kaiyun Fu, Guangying Chen, Zhiwu Liang, Teerawat Sema, Raphael Idem & Paitoon Tontiwachwuthikul. (2014) Analysis of Mass Transfer Performance of Monoethanolamine-Based CO 2 Absorption in a Packed Column Using Artificial Neural Networks . Industrial & Engineering Chemistry Research 53:11, pages 4413-4423.
Crossref
Morteza Afkhamipour & Masoud Mofarahi. (2013) Comparison of rate-based and equilibrium-stage models of a packed column for post-combustion CO2 capture using 2-amino-2-methyl-1-propanol (AMP) solution. International Journal of Greenhouse Gas Control 15, pages 186-199.
Crossref
Matthias Saimpert, Graeme Puxty, Saad Qureshi, Leigh Wardhaugh & Ashleigh Cousins. (2013) A new rate based absorber and desorber modelling tool. Chemical Engineering Science 96, pages 10-25.
Crossref
Rameshwar HiwaleSungwon HwangRobin Smith. (2012) Model Building Methodology for Multiphase Reaction Systems—Modeling of CO 2 Absorption in Monoethanolamine for Laminar Jet Absorbers and Packing Beds . Industrial & Engineering Chemistry Research 51:11, pages 4328-4346.
Crossref
Ana-Maria Cormos & Jozsef Gaspar. (2012) Assessment of mass transfer and hydraulic aspects of CO2 absorption in packed columns. International Journal of Greenhouse Gas Control 6, pages 201-209.
Crossref
Jozsef Gáspár & Ana-Maria Cormoş. (2011) Dynamic modeling and validation of absorber and desorber columns for post-combustion CO2 capture. Computers & Chemical Engineering 35:10, pages 2044-2052.
Crossref
Levente L. Simon, Yannick Elias, Graeme Puxty, Yuli Artanto & Konrad Hungerbuhler. (2011) Rate based modeling and validation of a carbon-dioxide pilot plant absorbtion column operating on monoethanolamine. Chemical Engineering Research and Design 89:9, pages 1684-1692.
Crossref
F.M. Khan, V. Krishnamoorthi & T. Mahmud. (2011) Modelling reactive absorption of CO2 in packed columns for post-combustion carbon capture applications. Chemical Engineering Research and Design 89:9, pages 1600-1608.
Crossref
Leila Faramarzi, Georgios M. Kontogeorgis, Michael L. Michelsen, Kaj Thomsen & Erling H. Stenby. (2010) Absorber Model for CO 2 Capture by Monoethanolamine . Industrial & Engineering Chemistry Research 49:8, pages 3751-3759.
Crossref
Sakarin Khaisri, David deMontigny, Paitoon Tontiwachwuthikul & Ratana Jiraratananon. (2010) A mathematical model for gas absorption membrane contactors that studies the effect of partially wetted membranes. Journal of Membrane Science 347:1-2, pages 228-239.
Crossref
N. Mac Dowell, A. Galindo, G. Jackson & C.S. Adjiman. 2010. 20th European Symposium on Computer Aided Process Engineering. 20th European Symposium on Computer Aided Process Engineering 1231 1236 .
Mohamed Ismael, Riadh Sahnoun, Ai Suzuki, Michihisa Koyama, Hideyuki Tsuboi, Nozomu Hatakeyama, Akira Endou, Hiromitsu Takaba, Momoji Kubo, Shinkichi Shimizu, Carlos A. Del Carpio & Akira Miyamoto. (2009) A DFT study on the carbamates formation through the absorption of CO2 by AMP. International Journal of Greenhouse Gas Control 3:5, pages 612-616.
Crossref
Jostein Gabrielsen, Hallvard F. Svendsen, Michael L. Michelsen, Erling H. Stenby & Georgios M. Kontogeorgis. (2007) Experimental validation of a rate-based model for CO2 capture using an AMP solution. Chemical Engineering Science 62:9, pages 2397-2413.
Crossref
Finn Andrew Tobiesen, Hallvard F. Svendsen & Olav Juliussen. (2007) Experimental validation of a rigorous absorber model for CO 2 postcombustion capture . AIChE Journal 53:4, pages 846-865.
Crossref
G.B. Liu, K.T. Yu, X.G. Yuan, C.J. Liu & Q.C. Guo. (2006) Simulations of chemical absorption in pilot-scale and industrial-scale packed columns by computational mass transfer. Chemical Engineering Science 61:19, pages 6511-6529.
Crossref
Jostein Gabrielsen, Michael L. Michelsen, Erling H. Stenby & Georgios M. Kontogeorgis. (2006) Modeling of CO 2 absorber using an AMP solution . AIChE Journal 52:10, pages 3443-3451.
Crossref
G. B. Liu, K. T. Yu, X. G. Yuan & C. J. Liu. (2006) New Model for Turbulent Mass Transfer and Its Application to the Simulations of a Pilot-Scale Randomly Packed Column for CO 2 −NaOH Chemical Absorption . Industrial & Engineering Chemistry Research 45:9, pages 3220-3229.
Crossref
Ahmed Aboudheir, Paitoon Tontiwachwuthikul & Raphael Idem. (2005) Rigorous Model for Predicting the Behavior of CO 2 Absorption into AMP in Packed-Bed Absorption Columns . Industrial & Engineering Chemistry Research 45:8, pages 2553-2557.
Crossref
David deMontigny, Ahmed Aboudheir, Paitoon Tontiwachwuthikul & Amit Chakma. (2006) Using A Packed-Column Model To Simulate the Performance of A Membrane Absorber. Industrial & Engineering Chemistry Research 45:8, pages 2580-2585.
Crossref
David deMontigny, Ahmed Aboudheir, Paitoon Tontiwachwuthikul & Amit Chakma. (2006) Modelling the Performance of a CO 2 Absorber Containing Structured Packing . Industrial & Engineering Chemistry Research 45:8, pages 2594-2600.
Crossref
Ercan Çelik. (2004) On the numerical solution of chemical differential–algebraic equations by Pade series. Applied Mathematics and Computation 153:1, pages 13-17.
Crossref
Adisorn Aroonwilas, Amit Chakma, Paitoon Tontiwachwuthikul & Amornvadee Veawab. (2003) Mathematical modelling of mass-transfer and hydrodynamics in CO2 absorbers packed with structured packings. Chemical Engineering Science 58:17, pages 4037-4053.
Crossref
A.K. Saha, A.K. Biswas & S.S. Bandyopadhyay. (1999) Absorption of CO2 in a sterically hindered amine: modeling absorption in a mechanically agitated contactor. Separation and Purification Technology 15:2, pages 101-112.
Crossref
I. Alatiqi, M.F. Sabri, W. Bouhamra & E. Alper. (1994) Steady-state rate-based modelling for CO2/amine absorption?desorption systems. Gas Separation & Purification 8:1, pages 3-11.
Crossref
Thorat Pintola, Paitoon Tontiwachwuthikul & Axel Meisen. (1993) Simulation of pilot plant and industrial CO2-MEA absorbers. Gas Separation & Purification 7:1, pages 47-52.
Crossref
Basil H. Al‐Ubaidi & M. Sami Selim. (2004) Role of liquid reactant volatility in gas absorption with an exothermic reaction. AIChE Journal 38:3, pages 363-376.
Crossref
Paitoon Tontiwachwuthikul, Axel Meisen & C.Jim Lim. (1992) CO2 absorption by NaOH, monoethanolamine and 2-amino-2-methyl-1-propanol solutions in a packed column. Chemical Engineering Science 47:2, pages 381-390.
Crossref
Paitoon Tontiwachwuthikul, Axel Meisen & C. J. Lim. (2009) Novel pilot plant technique for sizing gas absorbers with chemical reactions. The Canadian Journal of Chemical Engineering 67:4, pages 602-607.
Crossref
Javier Audry‐Sanchez. (2009) On the numerical solution of differential algebraic equations. The Canadian Journal of Chemical Engineering 66:6, pages 1031-1035.
Crossref
Ronald W. Rousseau, James K. Ferrell & James S. Staton. (1987) Conditioning coal gas with aqueous solutions of potassium carbonate: Model development and testing. Gas Separation & Purification 1:1, pages 44-54.
Crossref
John Villadsen & Peder Holk Nielsen. (1986) Models for strongly exothermic absorption and reaction in falling films. Chemical Engineering Science 41:6, pages 1655-1671.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.