Reduction of carbon intensity of electrification by reservoir-to-wire integration with CO2 capture and storage: conceptual design and analysis

被引:1
|
作者
Morte, Icaro B. Boa [1 ,2 ]
Poblete, Israel Bernardo S. [1 ]
Morgado, Claudia R. V. [2 ]
Musse, Ana Paula S. [3 ]
de Medeiros, Jose Luiz [1 ]
Araujo, Ofelia de Queiroz Fernandes [1 ]
机构
[1] Univ Fed Rio de Janeiro, Escola Quim, CT E Ilha Fundao, BR-21941909 Rio De Janeiro, RJ, Brazil
[2] Univ Fed Rio de Janeiro, Escola Quim, CT D Ilha Fundao, BR-21941909 Rio De Janeiro, RJ, Brazil
[3] Petrobras SA, CENPES, Ave Horacio Macedo 950, BR-21941915 Rio De Janeiro, Brazil
关键词
Gas-to-wire; Carbon capture and storage; Natural gas; Blue-hydrogen; Sustainability assessment; Reservoir-to-wire; OFFSHORE OIL; GAS; ELECTRICITY;
D O I
10.1007/s10098-023-02664-3
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The energy transition to a low-carbon economy involves adoption of cleaner production and energy technologies while the global energy demand continues to rise. Low-emission gas-to-wire firing low-quality natural gas from deep-water offshore fields emerges as a solution that can accelerate the energy transition without compromising energy and environment securities. The present work considers an innovative design of low-emission floating gas-to-wire co-firing CO2-rich natural gas and blue-H-2 (NG-H-2-GTW-CCS) and evaluates it against a conventional low-emission gas-to-wire (NG-GTW-CCS) firing only CO2-rich natural gas. Both alternatives implement capture and geological storage of CO2 in the oil reservoir for enhanced oil recovery. The NG-H-2-GTW-CCS sends part of the CO2-rich natural gas feed to dry autothermal reforming coupled to pre-combustion carbon capture, producing blue-H-2 and co-firing it with CO2-rich natural gas. The sustainability assessment follows TOPSIS method (technique for order of preference by similarity to ideal solution) through process simulation. Results show that NG-GTW-CCS achieves a net power of 525.58 MW, while NG-H-2-GTW-CCS achieves 524.67, 541.77, and 591.24 MW with blue-H-2 at, respectively, 10%mol, 30%mol, and 50%mol in the fuel-blend. The net present value of NG-GTW-CCS is 2666.3 MMUSD while NG-H-2-GTW-CCS reaches 2000.2, 2253.3, and 2412.0 MMUSD (at 10%mol, 30%mol, and 50%mol blue-H-2). It is shown that the sustainability degree of process alternatives co-firing blue-H-2 outperform the conventional NG-GTW-CCS counterpart.
引用
收藏
页码:511 / 532
页数:22
相关论文
共 50 条
  • [21] CO2 capture analysis in different combustion methods for CO2 utilisation and storage
    Huang, Weijia
    Xu, Ruina
    Zhang, Fuzhen
    Zou, Yining
    Jiang, Peixue
    INTERNATIONAL JOURNAL OF OIL GAS AND COAL TECHNOLOGY, 2022, 29 (03) : 285 - 305
  • [22] Investigations on CO2 hydrate slurry for transportation in carbon capture and storage
    Prah, Benedict
    Yun, Rin
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2019, 33 (10) : 5085 - 5092
  • [23] Atmospheric CO2 mitigation technologies: carbon capture utilization and storage
    Nocito, Francesco
    Dibenedetto, Angela
    CURRENT OPINION IN GREEN AND SUSTAINABLE CHEMISTRY, 2020, 21 : 34 - 43
  • [24] Separating the debate on CO2 utilisation from carbon capture and storage
    Bruhn, Thomas
    Naims, Henriette
    Olfe-Kraeutlein, Barbara
    ENVIRONMENTAL SCIENCE & POLICY, 2016, 60 : 38 - 43
  • [25] Porous carbon materials for CO2 capture, storage and electrochemical conversion
    Kim, Changmin
    Talapaneni, Siddulu Naidu
    Dai, Liming
    MATERIALS REPORTS: ENERGY, 2023, 3 (02):
  • [26] Coriolis Metering Technology for CO2 Transportation for Carbon Capture and Storage
    Lin, Chih-Wei
    Bhattacharji, Ayan
    Spicer, George
    Maroto-Valer, M. Mercedes
    12TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, GHGT-12, 2014, 63 : 2723 - 2726
  • [27] Materials challenges with CO2 transport and injection for carbon capture and storage
    Sonke, J.
    Bos, W. M.
    Paterson, S. J.
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2022, 114
  • [28] Electrospun graphene carbon nanofibers for CO2 capture and storage: A review
    Othman, Faten Ermala Che
    Yusof, Norhaniza
    Ismail, Ahmad Fauzi
    Rushdan, Ahmad Ilyas
    Low, Hong Yee
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2024, 12 (02):
  • [29] Integration of hydrothermal liquefaction and carbon capture and storage for the production of advanced liquid biofuels with negative CO2 emissions
    Lozano, E. M.
    Pedersen, T. H.
    Rosendahl, L. A.
    APPLIED ENERGY, 2020, 279
  • [30] Carbon Capture: CO2 Compression Challenges and Design Options
    Taher, Matt
    PROCEEDINGS OF ASME TURBO EXPO 2022: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, GT2022, VOL 7, 2022,