Abstract
South Africa is the largest CO2 emitter on the African continent. These emissions stem from a heavy reliance on coal as the primary energy fuel and contributor toward socio-economic development. The South African government has targeted reducing CO2 emissions by more than half in the next 10 years. To meet climate change mitigation scenarios, while alleviating continued emissions, South Africa will look to technologies such as carbon capture, utilisation and storage. Initial assessments of South Africa’s potential for CO2 storage have focused on deep saline aquifers within volcano-sedimentary sequences along the near and offshore regions. Sustaining the Just Transition will, however, require additional storage capacity. In this study, we make an initial assessment of possible CO2 storage in basaltic sequences of the Ventersdorp Supergroup. Geological and mineralogical information was ascertained from borehole data. The geological information suggests that the subsurface extent of the Ventersdorp Supergroup is at least 80 000 km2 larger than previously mapped, extending beneath major point-source CO2 emitters and active coalfields. Furthermore, petrographic analyses suggest pore space of up to ca 15% with minimal alteration, and preservation of mafic silicate minerals that would enable reactive carbonation of injected CO2. Notable metasomatic and hydrothermal alteration is confined to significant contact horizons, such as the lowermost Ventersdorp Contact Reef. These results suggest that basaltic sequences may exponentially increase South Africa’s CO2 sequestration storage capacity and may have a significant impact on the country’s Just Transition.
Significance:
This study shows that basaltic sequences may support the permanent storage of anthropogenic CO2 in South Africa, in particular, proximal to significant point-source CO2 emitters. South Africa has voluminous and widespread basaltic sequences, which, in combination, increase South Africa’s geological CO2 storage potential by several orders of magnitude. These storage reservoirs can have a direct impact in South Africa by enabling a sustainable Just Transition toward a low-carbon economy while meeting intended climate change mitigation scenarios.
Funder
South African Department of Mineral Resources and Energy
World Bank Group
Publisher
Academy of Science of South Africa
Subject
General Earth and Planetary Sciences,General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology
Reference46 articles.
1. 1. Steckel JC, Hilaire J, Jakob M, Edenhofer O. Coal and carbonization in sub-Saharan Africa. Nat Clim Change. 2020;10(1):83-88. https://doi. org/10.1038/s41558-019-0649-8
2. 2. Joshua U, Bekun FV. The path to achieving environmental sustainability in South Africa: The role of coal consumption, economic expansion, pollutant emission, and total natural resources rent. Environ Sci Pollut Res Int. 2020;27(9):9435-9443. https://doi.org/10.1007/s11356-019-07546-0
3. 3. Höök M. Coal and peat: Global resources and future supply. In: Malhotra R. Fossil energy. New York: Springer; 2013. p. 311-341. https://doi. org/10.1007/978-1-4419-0851-3_161
4. 4. Chamber of Mines of South Africa. Coal strategy 2018: National coal strategy for South Africa. Johannesburg: Chamber of Mines of South Africa; 2018.
5. 5. National Planning Commission, Office of the Presidency, South Africa. National Development Plan 2030: Our future, make it work. Pretoria: Office of the Presidency; 2012.
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