New improvement of amine-based CO2 capture processes using heat integration and optimization

被引:9
作者
Taipabu, Muhammad Ikhsan [1 ]
Viswanathan, Karthickeyan [1 ,2 ]
Wu, Wei [1 ]
Handogo, Renanto [3 ]
Mualim, Annasit [4 ]
Huda, Hairul [5 ]
机构
[1] Natl Cheng Kung Univ, Dept Chem Engn, Tainan 70101, Taiwan
[2] Sri Krishna Coll Technol, Dept Mech Engn, Coimbatore 641042, India
[3] Inst Teknol Sepuluh Nopember, Dept Chem Engn, Surabaya 60111, Indonesia
[4] Polytech Energy & Mineral Akamigas, Dept Oil & Gas Refinery Engn, Cepu 58315, Indonesia
[5] Mulawarman Univ, Dept Chem Engn, Samarinda 75119, Indonesia
关键词
CO2; capture; Monoethanolamine; Side intercooler; Side interheater; Vapor compression; ADVANCED STRIPPER CONFIGURATIONS; CARBON CAPTURE; TECHNOECONOMIC ANALYSIS; MONOETHANOLAMINE; ENERGY; DISTILLATION; TECHNOLOGY; SOLVENT; COLUMN; DIETHANOLAMINE;
D O I
10.1016/j.cep.2023.109532
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The post-combustion capture process (PCCP) using amine-based solvent was the most mature and adequately researched carbon capture and storage (CCS) technology. Monoethanolamine (MEA) solvent regeneration in the stripper (desorption process) usually takes high energy consumption and a MEA make-up is required before re-entering the absorber (absorption process). To improve the CO2 capture efficiency and reduce the overall energy consumption of PCCP, four configurations (Design-1, Design-2, Design-3, Design-4) are presented, where Design -1 is denoted as the base case design. Design-2 is an extension of Design-1 by adding the side intercooler in the absorber. Design-3 is an extension of Design-2 by using internal heat integration in the stripper. Design-4 is an extension of Design-3 by adding the side interheater in the absorber. By using response surface methodology (RSM) in conjunction with central composite design (CCD), operating parameters (MEA solvent flowrate, MEA concentration, pressure) including side intercooler/side interheater locations of Design-2 to Design-4 are optimized. It is successfully validated that the side intercooler absorber could increase the CO2 capture ability by MEA solvent and the side interheater stripper with internal heat integration could effectively reduce energy consumption about 36% to 62%.
引用
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页数:17
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共 79 条
  • [61] Experimental investigation on CO2 absorption and physicochemical characteristics of different carbon-loaded aqueous solvents
    Perumal, Muthumari
    Karunakaran, Nilavuckkarasi R.
    Balraj, Ambedkar
    Jayaraman, Dhanalakshmi
    Krishnan, Jagannathan
    Prakash, Aalan Britto John
    Arumugam, Jeevakumar
    Muthukumar, Venkadeshwara Prabhu
    [J]. ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2021, 28 (45) : 63532 - 63543
  • [62] Modeling pilot plant results for CO2 capture by aqueous piperazine
    Plaza, Jorge M.
    Rochelle, Gary T.
    [J]. 10TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, 2011, 4 : 1593 - 1600
  • [63] Effectiveness of absorber intercooling for CO2 absorption from natural gas fired flue gases using monoethanolamine solvent
    Rezazadeh, Fatemeh
    Gale, William F.
    Rochelle, Gary T.
    Sachde, Darshan
    [J]. INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2017, 58 : 246 - 255
  • [64] Thermal degradation of diethanolamine at stripper condition for CO2 capture: Product types and reaction mechanisms
    Saeed, Idris Mohamed
    Ali, Brahim Si
    Jan, Badrul Mohamed
    Basirun, Wan Jefrey
    Mazari, Shaukat Ali
    Birima, Ibrahim Ali Obid
    [J]. CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2019, 27 (12) : 2900 - 2908
  • [65] Techno-Economic Analysis of Postcombustion Processes for the Capture of Carbon Dioxide from Power Plant Flue Gas
    Schach, Marc-Oliver
    Schneider, Ruediger
    Schramm, Henninig
    Repke, Jenis-Uwe
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (05) : 2363 - 2370
  • [66] Sexton AndrewJames., 2008, AMINE OXIDATION CO2
  • [67] Cryogenic-based CO2 capture technologies: State-of-the-art developments and current challenges
    Song, Chunfeng
    Liu, Qingling
    Deng, Shuai
    Li, Hailong
    Kitamura, Yutaka
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2019, 101 : 265 - 278
  • [68] Reducing the energy efficiency design index for ships through a post-combustion carbon capture process
    Stec, Marcin
    Tatarczuk, Adam
    Iluk, Tomasz
    Szul, Mateusz
    [J]. INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2021, 108
  • [69] Improvement of Cyclohexene/Cyclohexane separation process design via chemical looping technology using reactive distillation and thermally coupled configurations
    Taipabu, Muhammad Ikhsan
    Novita, Felicia Januarlia
    Lee, Hao-Yeh
    Handogo, Renanto
    [J]. CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2021, 168 (168)
  • [70] Production of renewable fuels and chemicals from fats, oils, and grease (FOG) using homogeneous and heterogeneous catalysts: Design, validation, and optimization
    Taipabu, Muhammad Ikhsan
    Viswanathan, Karthickeyan
    Wu, Wei
    Nagy, Zoltan K.
    [J]. CHEMICAL ENGINEERING JOURNAL, 2021, 424