Evaluating the efficiency and cost-effectiveness of RPB-based CO2 capture: A comprehensive approach to simultaneous design and operating condition optimization

被引:4
作者
Jung, Howoun [1 ]
Park, Nohjin [2 ]
Lee, Jay H. [1 ]
机构
[1] Univ Southern Calif, Mork Family Dept Chem Engn & Mat Sci, Los Angeles, CA 90089 USA
[2] GS Engn & Construct Corp, Carbon Solut Res Team RIF Tech, Seoul, South Korea
关键词
Post combustion CO 2 capture; Rotating packed bed; Scale-up; Techno-economic analysis; Design and operating optimization; ROTATING PACKED-BEDS; AQUEOUS MONOETHANOLAMINE SOLUTIONS; CARBON-DIOXIDE ABSORPTION; PROCESS INTENSIFICATION; MASS-TRANSFER; ALKANOLAMINE SOLUTIONS; HIGEE; MODEL; MEA; SIMULATION;
D O I
10.1016/j.apenergy.2024.123251
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
Despite ongoing global initiatives to reduce CO2 emissions, implementing large-scale CO2 capture using amine solvents is fraught with economic uncertainties and technical hurdles. The Rotating Packed Bed (RPB) presents a promising alternative to traditional packed towers, offering compact design and adaptability. Nonetheless, scaling RPB processes to an industrial level is challenging due to the nascent nature of its application. The complexity of designing RPB units, setting operating conditions, and evaluating process performance adds layers of difficulty to the adoption of RPB-based systems in industries. This study introduces an optimization-driven design and evaluation for CO2 capture processes utilizing RPB columns. By employing detailed process simulation, we aim to concurrently optimize unit design and operating parameters, underscoring its advantage over conventional sequential approaches. Our process design method integrates heuristic design recommendations as constraints, resulting in 9.4% to 12.7% cost savings compared to conventional sequential design methods. Furthermore, our comprehensive process-level analysis reveals that using concentrated MEA solvent can yield total cost savings of 13.4% to 25.0% compared to the standard 30 wt% MEA solvent. Additionally, the RPB unit can deliver an 8.5 to 23.6 times reduction in packing volume. While the commercial-scale feasibility of RPB technology has been established, the advancement of this field hinges on acquiring a broader and more robust dataset from commercial-scale implementations. Employing strategic methods like modularization could significantly reduce the entry barriers for CO2 capture projects, facilitating their broader adoption and implementation.
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页数:14
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共 54 条
  • [1] Process Intensification in HiGee Absorption and Distillation: Design Procedure and Applications
    Agarwal, Lava
    Pavani, V.
    Rao, D. P.
    Kaistha, N.
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (20) : 10046 - 10058
  • [2] A Semi-Empirical Model for Estimating the Heat Capacity of Aqueous Solutions of Alkanolamines for CO2 Capture
    Agbonghae, Elvis O.
    Hughes, Kevin J.
    Ingham, Derek B.
    Ma, Lin
    Pourkashanian, Mohamed
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (19) : 8291 - 8301
  • [3] Experimental studies, molecular simulation and process modelling \simulation of adsorption-based post-combustion carbon capture for power plants: A state-of-the-art review
    Akinola, Toluleke E.
    Prado, Phebe L. Bonilla
    Wang, Meihong
    [J]. APPLIED ENERGY, 2022, 317
  • [4] Density and Viscosity of Monoethanolamine plus Water plus Carbon Dioxide from (25 to 80) °C
    Amundsen, Trine G.
    Oi, Lars E.
    Eimer, Dag A.
    [J]. JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2009, 54 (11) : 3096 - 3100
  • [5] Solubility of CO2 in 15, 30, 45 and 60 mass% MEA from 40 to 120 °C and model representation using the extended UNIQUAC framework
    Aronu, Ugochukwu E.
    Gondal, Shahla
    Hessen, Erik T.
    Haug-Warberg, Tore
    Hartono, Ardi
    Hoff, Karl A.
    Svendsen, Hallvard F.
    [J]. CHEMICAL ENGINEERING SCIENCE, 2011, 66 (24) : 6393 - 6406
  • [6] Future Production Concepts in the Chemical Industry: Modular - Small-Scale - Continuous
    Bieringer, Thomas
    Buchholz, Sigurd
    Kockmann, Norbert
    [J]. CHEMICAL ENGINEERING & TECHNOLOGY, 2013, 36 (06) : 900 - 910
  • [7] Process modelling and analysis of intensified CO2 capture using monoethanolamine (MEA) in rotating packed bed absorber
    Borhani, Tohid N.
    Oko, Eni
    Wang, Meihong
    [J]. JOURNAL OF CLEANER PRODUCTION, 2018, 204 : 1124 - 1142
  • [8] Process intensification: operating characteristics of rotating packed beds - determination of liquid hold-up for a high-voidage structured packing
    Burns, JR
    Jamil, JN
    Ramshaw, C
    [J]. CHEMICAL ENGINEERING SCIENCE, 2000, 55 (13) : 2401 - 2415
  • [9] Comparison of rotating packed bed and packed bed absorber in pilot plant and model simulation for CO2 capture
    Chamchan, Nipon
    Chang, Jia-Yu
    Hsu, Hsiao-Ching
    Kang, Jia-Lin
    Wong, David Shan Hill
    Jang, Shi-Shang
    Shen, Jui-Fu
    [J]. JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2017, 73 : 20 - 26
  • [10] Thermal regeneration of alkanolamine solutions in a rotating packed bed
    Cheng, Hsu-Hsiang
    Lai, Ching-Chih
    Tan, Chung-Sung
    [J]. INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2013, 16 : 206 - 216