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Publication | Open Access

Assessing, Understanding and Unlocking Supplementary Cementitious Materials

311

Citations

45

References

2016

Year

TLDR

Partial replacement of Portland clinker with supplementary cementitious materials (SCM) reduces costs and CO₂ emissions, yet the cement industry still accounts for 5–8 % of global CO₂, a share that could rise above 25 % by 2050 without further action, and supply concerns for conventional high‑quality SCMs highlight the need for new materials and beneficiation technologies. This paper aims to outline the opportunities and challenges of emerging SCMs and to show how improved characterization techniques can better exploit their reactivity. The authors propose a strategy of further deploying blended cements where SCMs form the main binder complemented by activators such as Portland cement, supported by advanced, reliable characterization methods.

Abstract

The partial replacement of Portland clinker by supplementary cementitious materials (SCM) is one of the most popular and effective measures to reduce both costs and CO2 emissions related to cement production. An estimated 800 Mt/y of blast furnace slags, fly ashes and other materials are currently being used as SCM, but still the cement industry accounts for 5-8% of global CO2 emissions. If no further actions are taken, by the year 2050 this share might even rise beyond 25%. There is thus a clear challenge as to how emissions will be kept at bay and sustainability targets set by international commitments and policy documents will be met.Part of the solution will be a further roll-out of blended cements in which SCMs constitute the main part of the binder to which activators such as Portland cement are added. Since supply concerns are being raised for conventional high-quality SCMs it is clear that new materials and beneficiation technologies will need to step in to achieve further progress. This paper presents opportunities and challenges for new SCMs and demonstrates how advances towards more powerful and reliable characterisation techniques help to better understand and exploit SCM reactivity.

References

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