Modeling and planning optimization of carbon capture load based on direct air capture

被引:0
|
作者
Wang, Qian [1 ]
Du, Caiyi [1 ]
Zhang, Xueguang [1 ]
机构
[1] Harbin Inst Technol, Sch Elect Engn & Automat, Harbin, Heilongjiang, Peoples R China
基金
中国国家自然科学基金;
关键词
direct air capture (DAC); Load modeling; Planning optimization; Absorption-based; Adsorption-base; CO2; ENERGY;
D O I
10.1016/j.energy.2024.133285
中图分类号
O414.1 [热力学];
学科分类号
摘要
Direct air capture, an emerging technology, captures carbon dioxide from the atmosphere and has initiated global demonstrations, highlighting the need for comprehensive operational understanding and effective planning methods. To this end, the paper delves into an in-depth analysis of the operational traits of direct air capture and formulates strategic optimization methods. Firstly, this paper analyzes the operational characteristics of direct air capture, examines the operational mechanisms and energy flow interactions of absorption-based and adsorption-based direct air capture, and reviews the current status of engineering demonstrations of direct air capture technology, highlighting the current technological bottlenecks in project applications. Subsequently, the paper proposes a planning and optimization model for direct air capture loads, incorporating subsidy mechanisms, and develops a dual-layer optimization model aimed at minimizing investment and operational costs. Finally, the effectiveness of the modeling and planning methods proposed in this paper is validated through numerical analysis. Furthermore, the reduction potential of direct air capture is analyzed in conjunction with the theory of carbon emissions flow in the power system. This research aims to provide valuable insights and practical recommendations for the design and demonstration of direct air capture projects.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Rail-based direct air carbon capture
    Bachman, E.
    Tavasoli, Alexandra
    Hatton, T. Alan
    Maravelias, Christos T.
    Haites, Erik
    Styring, Peter
    Aspuru-Guzik, Alan
    MacIntosh, Jeffrey
    Ozin, Geoffrey
    JOULE, 2022, 6 (07) : 1368 - 1381
  • [2] The health and climate impacts of carbon capture and direct air capture
    Jacobson, Mark Z.
    ENERGY & ENVIRONMENTAL SCIENCE, 2019, 12 (12) : 3567 - 3574
  • [3] Modeling and optimization of carbon-negative NGCC plant enabled by modular direct air capture
    Cheng, Pengfei
    Thierry, David M.
    Hendrix, Howard
    Dombrowski, Katherine D.
    Sachde, Darshan J.
    Realff, Matthew J.
    Scott, Joseph K.
    APPLIED ENERGY, 2023, 341
  • [4] Electrochemical direct air capture and direct ocean capture: The next frontier in carbon removal
    Ozkan, Mihrimah
    Shiner, Amir
    Kongi, Nadezda
    Hatton, T. Alan
    Oldham, Steve
    Sanders, Edward
    CHEM, 2024, 10 (01): : 3 - 6
  • [5] Progress on direct air capture of carbon dioxide
    Song, Kechen
    Cui, Xili
    Xing, Huabin
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2022, 41 (03): : 1152 - 1162
  • [6] Unconventional membranes for direct air carbon capture
    Gobina E.
    Giwa A.
    Ben-Aron A.
    Membrane Technology, 2022, 2022 (07)
  • [7] Progress on direct air capture of carbon dioxide
    Liao C.
    Zhang K.
    Wang J.
    Zeng X.
    Jin P.
    Liu Z.
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2024, 43 (04): : 2031 - 2048
  • [8] The thermodynamics of direct air capture of carbon dioxide
    Lackner, Klaus S.
    ENERGY, 2013, 50 : 38 - 46
  • [9] Direct air capture multiscale modelling: From capture material optimization to process simulations
    Marinic, Dana
    Likozar, Blaz
    JOURNAL OF CLEANER PRODUCTION, 2023, 408
  • [10] The role of direct air carbon capture in decarbonising aviation
    Gray, Nathan
    O'Shea, Richard
    Smyth, Beatrice
    Lens, Piet N. L.
    Murphy, Jerry D.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2024, 199