Module optimization and array design of moisture swing direct air capture based on 2D-3D coupled analysis

被引:0
作者
He, Muhang [1 ]
Wang, Tao [1 ]
Nie, Huijian [2 ]
Fang, Haiqing [2 ]
Liu, Weishan [1 ]
Dong, Hao [1 ]
Liu, Fengsheng [1 ]
Gao, Xiang [1 ]
机构
[1] Zhejiang Univ, State Key Lab Clean Energy Utilizat, Hangzhou 310027, Peoples R China
[2] North China Power Engn Co LTD, China Power Engn Consulting Grp, Beijing 100120, Peoples R China
基金
中国国家自然科学基金;
关键词
Direct air capture; Moisture swing adsorption; Capture rate; Reactor modeling; Energy optimization; Wind field; CARBON-DIOXIDE CAPTURE; AMBIENT AIR; CO2; CAPTURE; ADSORBENT; CELLULOSE; SORBENT;
D O I
10.1016/j.enconman.2024.119062
中图分类号
O414.1 [热力学];
学科分类号
摘要
Direct Air Capture (DAC) is crucial for offsetting carbon emissions. Moisture Swing Adsorption (MSA), a DAC method switches between adsorption and desorption through humidity adjustment without relying on heat, offering significant energy-saving potential but lacking engineering solutions. Therefore, using a validated 2D-3D coupled model, a moisture swing DAC array was proposed, and multi-dimensional evaluations were used to optimize the system. Unlike the preferred capture rate around 90 % for post-combustion gas, the ultra-low CO2 concentration in the air resulted in a different rate range for DAC. Simulation indicated that although the capture rate of DAC could reach 90 %, the trade-off was energy consumption exceeding 3000 kWh/t CO2 with low adsorbent utilization. Consequently, a detailed evaluation method based on adsorbent utilization, energy consumption and cost analysis optimized the preferred capture rate range to 50-60 %, and the total energy consumption was reduced to 873.55 kWh/t CO2, including 276.33 kWh/t CO2 for capture energy and 597.22 kWh/t CO2 for vacuum-concentration energy. The lowest cost was $209.17/t CO2 at the optimal capture rate of 53.91 %. Afterwards, the Ordos Plateau, as a typical preferred sub-environment with abundant wind resources and dry climate, was choose for DAC system deployment study. Wind field simulation determined the layout of a 10000-ton array occupying only 0.298 km(2). Finally, based on savings in capture energy due to prevailing winds, regeneration energy savings from the utilization of low-grade waste heat, and the improved performance of the adsorbent itself, it was found that this DAC unit showed great potential to reduce the energy and capture costs to 564.91 kWh/t CO2 and $140.25/t CO2, and at wind speed exceeding 16.8 m/s, the unit switched to passive adsorption, further reducing energy consumption to 408.89 kWh/t CO2, with the minimum fix investment estimated at 21.71 million USD.
引用
收藏
页数:14
相关论文
共 41 条
  • [11] Humidity sensitivity reducing of moisture swing adsorbents by hydrophobic carrier doping for CO2 direct air capture
    Dong, Hao
    Wang, Tao
    Wang, Xiaobo
    Liu, Fengsheng
    Hou, Chenglong
    Wang, Zhengfeng
    Liu, Weishan
    Fu, Lin
    Gao, Xiang
    [J]. CHEMICAL ENGINEERING JOURNAL, 2023, 466
  • [12] Direct air capture: process technology, techno-economic and socio-political challenges
    Erans, Maria
    Sanz-Perez, Eloy S.
    Hanak, Dawid P.
    Clulow, Zeynep
    Reiner, David M.
    Mutch, Greg A.
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2022, 15 (04) : 1360 - 1405
  • [13] Techno-economic assessment of CO2 direct air capture plants
    Fasihi, Mandi
    Efimova, Olga
    Breyer, Christian
    [J]. JOURNAL OF CLEANER PRODUCTION, 2019, 224 : 957 - 980
  • [14] Amine-Based Nanofibrillated Cellulose As Adsorbent for CO2 Capture from Air
    Gebald, Christoph
    Wurzbacher, Jan Andre
    Tingaut, Philippe
    Zimmermann, Tanja
    Steinfeld, Aldo
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2011, 45 (20) : 9101 - 9108
  • [15] Creating a carbon dioxide removal solution by combining rapid mineralization of CO2 with direct air capture
    Gutknecht, Valentin
    Snaebjornsdottir, Sandra Osk
    Sigfusson, Bergur
    Aradottir, Edda Sif
    Charles, Louise
    [J]. CARBON IN NATURAL AND ENGINEERED PROCESSES, 2018, 146 : 129 - 134
  • [16] Integrated direct air capture and CO2 utilization of gas fertilizer based on moisture swing adsorption
    Hou, Cheng-long
    Wu, Yu-song
    Jiao, You-zhou
    Huang, Jie
    Wang, Tao
    Fang, Meng-xiang
    Zhou, Hui
    [J]. JOURNAL OF ZHEJIANG UNIVERSITY-SCIENCE A, 2017, 18 (10): : 819 - 830
  • [17] Porosity and hydrophilicity modulated quaternary ammonium-based sorbents for CO2 capture
    Hou, Chenglong
    Kumar, Dharam Raj
    Jin, Yu
    Wu, Yusong
    Lee, Jason J.
    Jones, Christopher W.
    Wang, Tao
    [J]. CHEMICAL ENGINEERING JOURNAL, 2021, 413
  • [18] Preparation of Quaternized Bamboo Cellulose and Its Implication in Direct Air Capture of CO2
    Hou, Chenglong
    Wu, Yusong
    Wang, Tao
    Wang, Xinru
    Gao, Xiang
    [J]. ENERGY & FUELS, 2019, 33 (03) : 1745 - 1752
  • [19] Multiscale modelling from quantum level to reactor scale: An example of ethylene epoxidation on silver catalysts
    Hus, Matej
    Grilc, Miha
    Pavlisic, Andraz
    Likozar, Blaz
    Hellman, Anders
    [J]. CATALYSIS TODAY, 2019, 338 : 128 - 140
  • [20] Janett A, 2023, Direct air capture device