LAPSE:2023.6608
Published Article

LAPSE:2023.6608
Carbon Circular Utilization and Partially Geological Sequestration: Potentialities, Challenges, and Trends
February 24, 2023
Abstract
Enhancing carbon emission mitigation and carbon utilization have become necessary for the world to respond to climate change caused by the increase of greenhouse gas concentrations. As a result, carbon capture, utilization, and storage (CCUS) technologies have attracted considerable attention worldwide, especially in China, which plans to achieve a carbon peak before 2030 and carbon neutrality before 2060. This paper proposed six priorities for China, the current world’s largest carbon emitter, to achieve its dual carbon strategy in the green energy transition process. We analyzed and summarized the challenges and potentialities of conventional carbon utilization (CU), carbon capture utilization (CCU), and CCUS. Based on the current development trend, carbon dioxide capture, circular utilization, and storage (CCCUS) technology that integrates carbon circular utilization and partial sequestration, with large-scale underground energy storage were proposed, namely biomethanation. Technically and economically, biomethanation was believed to have an essential contribution to China’s renewable energy utilization and storage, as well as the carbon circular economy. The preliminary investigation reveals significant potential, with a corresponding carbon storage capacity of 5.94 × 108 t~7.98 × 108 t and energy storage of 3.29 × 1012 kWh~4.42 × 1012 kWh. Therefore, we believe that in addition to vigorously developing classical CCUS technology, technical research and pilot projects of CCCUS technology that combined large-scale underground energy storage also need to be carried out to complete the technical reserve and the dual-carbon target.
Enhancing carbon emission mitigation and carbon utilization have become necessary for the world to respond to climate change caused by the increase of greenhouse gas concentrations. As a result, carbon capture, utilization, and storage (CCUS) technologies have attracted considerable attention worldwide, especially in China, which plans to achieve a carbon peak before 2030 and carbon neutrality before 2060. This paper proposed six priorities for China, the current world’s largest carbon emitter, to achieve its dual carbon strategy in the green energy transition process. We analyzed and summarized the challenges and potentialities of conventional carbon utilization (CU), carbon capture utilization (CCU), and CCUS. Based on the current development trend, carbon dioxide capture, circular utilization, and storage (CCCUS) technology that integrates carbon circular utilization and partial sequestration, with large-scale underground energy storage were proposed, namely biomethanation. Technically and economically, biomethanation was believed to have an essential contribution to China’s renewable energy utilization and storage, as well as the carbon circular economy. The preliminary investigation reveals significant potential, with a corresponding carbon storage capacity of 5.94 × 108 t~7.98 × 108 t and energy storage of 3.29 × 1012 kWh~4.42 × 1012 kWh. Therefore, we believe that in addition to vigorously developing classical CCUS technology, technical research and pilot projects of CCCUS technology that combined large-scale underground energy storage also need to be carried out to complete the technical reserve and the dual-carbon target.
Record ID
Keywords
carbon circular utilization, carbon neutrality, partially geological sequestration, Renewable and Sustainable Energy, underground biomethanation
Subject
Suggested Citation
Hou Z, Luo J, Xie Y, Wu L, Huang L, Xiong Y. Carbon Circular Utilization and Partially Geological Sequestration: Potentialities, Challenges, and Trends. (2023). LAPSE:2023.6608
Author Affiliations
Hou Z: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany [ORCID]
Luo J: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; State Key Laboratory of Oil and Gas
Xie Y: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; State Key Laboratory of Geomechanic
Wu L: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; State Key Laboratory of Oil and Gas [ORCID]
Huang L: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; Sino-German Research Institute of C [ORCID]
Xiong Y: State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Southwest Petroleum University, Chengdu 610500, China; School of Earth & Space Sciences, Peking University, Beijing 100871, China
Luo J: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; State Key Laboratory of Oil and Gas
Xie Y: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; State Key Laboratory of Geomechanic
Wu L: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; State Key Laboratory of Oil and Gas [ORCID]
Huang L: Institute of Subsurface Energy Systems, Clausthal University of Technology, 38678 Clausthal Zellerfeld, Germany; Research Centre of Energy Storage Technologies, Clausthal University of Technology, 38640 Goslar, Germany; Sino-German Research Institute of C [ORCID]
Xiong Y: State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Southwest Petroleum University, Chengdu 610500, China; School of Earth & Space Sciences, Peking University, Beijing 100871, China
Journal Name
Energies
Volume
16
Issue
1
First Page
324
Year
2022
Publication Date
2022-12-28
ISSN
1996-1073
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PII: en16010324, Publication Type: Journal Article
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LAPSE:2023.6608
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Feb 24, 2023
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