Under Goals of Carbon Peaking and Carbon Neutrality: Status, Problems, and Suggestions of CCUS in China

被引:0
|
作者
Zhao Z.-Y. [1 ]
Yao S. [1 ]
Yang S.-P. [1 ]
Wang X.-L. [1 ]
机构
[1] Ningxia Survey and Monitoring Institute of Land and Resources, Yinchuan
来源
Huanjing Kexue/Environmental Science | 2023年 / 44卷 / 02期
关键词
carbon capture; carbon neutrality; carbon reduction; green development; policy system; storage (CCUS); utilization;
D O I
10.13227/j.hjkx.202203136
中图分类号
学科分类号
摘要
Under the background of global warming and climate change, carbon capture, utilization, and storage(CCUS) technology has gradually been recognized by countries around the world as one of the carbon reduction technologies with the most potential. This study described the origin, concept, positioning, and evolution process of CCUS technology in detail and compared the policies, regulations, demonstration projects, and development status of the carbon trading system of CCUS technology at home and abroad. Simultaneously, we systematically summarized the great efforts made by China to promote the development of CCUS technology since China joined the Paris Agreement in 2016, combined with the construction of ecological civilization and the objectives of "carbon peak" and "carbon neutralization. " In addition, this study analyzed the existing problems of CCUS technology in China and put forward relevant development suggestions for further promoting the discovery of this technology. © 2023 Science Press. All rights reserved.
引用
收藏
页码:1128 / 1138
页数:10
相关论文
共 72 条
  • [31] Zhao S Q, Ma L P, Yang J, Et al., Review and research status of CO<sub>2</sub> capture technology and the application of calcium-based sorbent, Bulletin of the Chinese Ceramic Society, 36, 11, pp. 3683-3690, (2017)
  • [32] Cen K F., Research progress on efficient, clean and low carbon utilization of coal, Science & Technology Review, 36, 10, pp. 66-74, (2018)
  • [33] Zhao H T, Wang S M, Liu Z J, Et al., Preparation of high-purity and high-white CaCO<sub>3</sub> by phosphogypsum mineralization for CO<sub>2</sub> Capture, Materials Reports, 33, 18, pp. 3031-3034, (2019)
  • [34] Crespi F, Gavagnin G, Sanchez D, Et al., Supercritical carbon dioxide cycles for power generation: a review, Applied Energy, 195, pp. 152-183, (2017)
  • [35] Takechi K, Shiga T, Asaoka T., A Li-O<sub>2</sub> / CO<sub>2</sub> battery, Chemical Communications, 47, 12, pp. 3463-3465, (2011)
  • [36] Lim H K, Lim H D, Park K Y, Et al., Toward a lithium-"air" battery: the effect of CO<sub>2</sub> on the chemistry of a lithium-oxygen cell, Journal of the American Chemical Society, 135, 26, pp. 9733-9742, (2013)
  • [37] Xie Z J, Zhang X, Zhang Z, Et al., Metal-CO<sub>2</sub> batteries on the road: CO<sub>2</sub> from contamination gas to energy source, Journal of Technology & Science, 29, 15, pp. 693-696, (2017)
  • [38] Xu S M, Das S K, Archer L A., The Li-CO<sub>2</sub> battery: a novel method for CO<sub>2</sub> capture and utilization, RSC Advances, 3, 18, pp. 6656-6660, (2013)
  • [39] Cai F S, Hu Z, Chou S L., Progress and future perspectives on Li (Na)-CO<sub>2</sub> batteries, Advanced Sustainable Systems, 2, 8-9, (2018)
  • [40] Kim C, Kim J, Joo S, Et al., Efficient CO<sub>2</sub> utilization via a hybrid Na-CO<sub>2</sub> system based on CO<sub>2</sub> dissolution, iScience, 9, pp. 278-285, (2018)