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The integration of hydrogenation and carbon capture utilisation and storage technology: A potential low-carbon approach to chemical synthesis in China

期刊

INTERNATIONAL JOURNAL OF ENERGY RESEARCH
卷 45, 期 14, 页码 19789-19818

出版社

WILEY-HINDAWI
DOI: 10.1002/er.7076

关键词

carbon neutrality; carbon reduction; CCUS; CO2 emissions; hydrogen

资金

  1. Ningbo Municipal Bureau of Science and Technology [2018A610069, 2018B10022]
  2. Science and Technology Department of Zhejiang Province [2020E10018]

向作者/读者索取更多资源

The development of carbon emission reduction technologies and clean energy utilisation are crucial for reducing and controlling greenhouse gas emissions. Carbon capture, utilisation, and storage (CCUS) is an established emission reduction technology, while hydrogen production from fossil fuels with CCUS and water electrolysis are seen as ideal development routes. CO2-EOR and CO2-ECBM are promising CCUS technologies in China, indicating potential for carbon emission reduction by 2050.
The development of carbon emission reduction technologies and clean energy utilisation are two critical drivers for reducing and controlling greenhouse gas (GHG) emission from human activities. Carbon capture, utilisation, and storage (CCUS) is an established and crucial emission reduction technology capable of achieving near-zero-emission from fossil fuels. Hydrogen, a zero-carbon fuel, provides energy security while improving air quality. However, hydrogen is commonly derived from fossil fuels with significant associated CO2 emission. Hence, this study investigates the feasibility of integrating CCUS in the hydrogen industry, particularly from technical, sustainability, and policy perspectives. This study also critically reviews existing CCUS and hydrogen production technologies and discusses the prospects and challenges of each. Studies show that CO2 enhanced oil recovery (CO2-EOR) and CO2 enhanced coal-bed methane recovery (CO2-ECBM) are promising CCUS technologies in China, while producing clean hydrogen from fossil fuels with CCUS and water electrolysis are ideal development route. Specifically, this study proposes the coupling technical route of CCUS + SMR (steam methane reforming) and CCUS + CTH (coal-to-hydrogen) to accelerate carbon emission reduction by 2050 considering their promising carbon reduction potential and the ratio of hydrogen with CCUS. Besides, CO2 hydrogenation integrated chemical production is becoming increasingly popular to achieve carbon emission reduction and low-carbon economy. However, the relatively high costs and lack of hydrogen transportation infrastructure is currently the major bottleneck restricting the development of CCUS and hydrogen industry. Therefore, government subsidies, standardised operation of the carbon market, and technological innovation are useful strategies to address this issue.

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