4.7 Article

Carbon dioxide storage schemes: Technology, assessment and deployment

期刊

JOURNAL OF CLEANER PRODUCTION
卷 142, 期 -, 页码 1055-1064

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.jclepro.2016.06.199

关键词

Carbon dioxide storage; Deep saline aquifers; Enhanced industrial production; CO2 mineralization and industrial utilization; Big data

资金

  1. National Key Science Programs for Global Change Research geoengineering [2013CB956604]
  2. Beijing Higher Education Young Elite Teacher Project
  3. Scientific Research Foundation for the Returned Overseas Chinese Scholars, State Education Ministry of China

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Carbon Capture and Storage is the only technology available to mitigate large-scale greenhouse gas emissions from fossil fuel based power and industrial sectors in the near future. When technology to capture carbon dioxide (CO2) is relatively mature and commercially available for power and industrial sectors, safe, reliable and long-term storage of captured CO2 remains a key uncertainty affecting widespread deployment of Carbon Capture and Storage technology yet. In this paper, the authors assessed techno-economic aspects of geological CO2 storage options, from CO2 transportations, various geological storage approaches, to CO2 leakage monitoring. Compared with depleted oil/gas reservoirs and coal seams, deep saline aquifers possess much larger storage capacities and may be possibly near many CO2 emission sites due to widespread distributions. If CO2 storage is combined with enhanced industrial production (e.g. oil, natural gas), it has a greater potential to reducing the overall cost of CO2 storage. Potential CO2 leakage may be the main barriers to the development of CO2 geological storage. It is recommended to make full use of big data mining approach in selection and approval of CO2 geological sites, estimation of storage capacities, assessment of potential leakage risks, awarding of carbon credits, as well as analysis of public acceptation. At the same time, as a leakage-free CO2 storage option, CO2 mineralization & industrial utilization is to trap CO2 permanently in stable minerals by reactions with metal oxides and forming stable carbonates. These CO2 mineralization & industrial utilization schemes need to guarantee sustainable or environmentally friendly processes and satisfy basic principles of industrial ecology if implemented on a large industrial scale. Currently, most of CO2 storage schemes are still in the early stage of technological development and are still far from large-scale commercialization. The high cost, high energy penalty, safety and reliability, and policy uncertainties are main barriers for the implement of carbon storage schemes. (C) 2016 Elsevier Ltd. All rights reserved.

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