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ZHANG Junjian,CHANG Xiangchun,LYU Dawei,et al. Carbon dioxide geological storage system in coal seam development area under the premise of double carbon target[J]. Coal Science and Technology,2023,51(S1):206−214. DOI: 10.13199/j.cnki.cst.2022-0538
Citation: ZHANG Junjian,CHANG Xiangchun,LYU Dawei,et al. Carbon dioxide geological storage system in coal seam development area under the premise of double carbon target[J]. Coal Science and Technology,2023,51(S1):206−214. DOI: 10.13199/j.cnki.cst.2022-0538

Carbon dioxide geological storage system in coal seam development area under the premise of double carbon target

Funds: 

Shandong Youth Science Foundation Project (ZR2021QD072); Shandong College Students Innovation and Entrepreneurship Training Program (202389,202390)

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  • Received Date: April 18, 2022
  • Available Online: October 10, 2023
  • Carbon emission reduction of traditional resources such as coal plays a decisive role in achieving the goal of “carbon neutralization”. Under the policy background of “double carbon” and “coal de productivity”, CO2 geological storage system study in coal seam development area has a distinct era background and practical basis. Taking the CO2 geological storage system in the coal seam development area as the research object, development area can be divided into two areas, including mined area and untapped area. The geological storage principle and research status of three storage spaces of goaf, coal seam and salt water layer are clarified from the aspects of CO2 phase state transformation, CO2 storage capacity and geological capping conditions. Based on the theories of material mechanics, coalbed methane geology, the applicability of low-temperature freezing and thawing, acoustic (microwave) antireflection, hydraulic fracturing and other technologies in the field of CO2 enhanced storage are discussed, and the urgent attention direction of different storage modes is clarified. On this basis, the application prospect of CO2 step-by-step combined geological storage model in mined and untapped areas are studied. The applicability evaluation method of CO2 geological storage in coal seam development area is put forward under the consideration of single storage and step-by-step joint storage.

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