A review of mineral carbonation technologies to sequester CO 2
Обзор технологий минерализации углекислого газа для его секвестрации
2014-01-01
SCID: 54.1/e5rb8ggb
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CO2 sequestrationcarbon capture and storageex situ mineral carbonationin situ mineral carbonationmineral carbonation
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Abstract (AI)
Carbon dioxide (CO2) capture and sequestration includes a portfolio of technologies that can potentially sequester billions of tonnes of CO2 per year. Mineral carbonation (MC) is emerging as a potential CCS technology solution to sequester CO2 from smaller/medium emitters, where geological sequestration is not a viable option. In MC processes, CO2 is chemically reacted with calcium- and/or magnesium-containing materials to form stable carbonates. This work investigates the current advancement in the proposed MC technologies and the role they can play in decreasing the overall cost of this CO2 sequestration route. In situ mineral carbonation is a very promising option in terms of resources available and enhanced security, but the technology is still in its infancy and transport and storage costs are still higher than geological storage in sedimentary basins ($17 instead of $8 per tCO2). Ex situ mineral carbonation has been demonstrated on pilot and demonstration scales. However, its application is currently limited by its high costs, which range from $50 to $300 per tCO2 sequestered. Energy use, the reaction rate and material handling are the key factors hindering the success of this technology. The value of the products seems central to render MC economically viable in the same way as conventional CCS seems profitable only when combined with EOR. Large scale projects such as the Skyonic process can help in reducing the knowledge gaps on MC fundamentals and provide accurate costing and data on processes integration and comparison. The literature to date indicates that in the coming decades MC can play an important role in decarbonising the power and industrial sector.
Key Findings
1
Energy consumption, reaction rate, and material handling are the principal technical barriers hindering ex situ mineral carbonation.
2
Ex situ mineral carbonation has reached pilot and demonstration scales, yet current costs of $50–$300 per tCO2 limit widespread application.
3
In situ mineral carbonation offers abundant resources and enhanced storage security, but remains immature and costs approximately $17 per tCO2 versus $8 for sedimentary-basin geological storage.
4
Mineral carbonation chemically converts CO2 with calcium- or magnesium-bearing materials into stable carbonates, offering sequestration for smaller and medium emitters lacking viable geological storage.
5
Product-value creation is central to improving mineral carbonation economics, while large-scale projects can reduce knowledge gaps and support process integration and cost comparisons.
Research Object
Mineral carbonation technologies for CO2 sequestration (in situ and ex situ mineral carbonation processes)
Research Subject
The advancement, cost, scalability, and economic viability of in situ and ex situ mineral carbonation processes, including the effects of energy use, reaction rate, and material handling
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2014-01-01
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