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January 25, 2026Infrastructures3 citationsOpen Access

Low-Carbon Concrete Development Through Incorporation of Carbonated Recycled Aggregate and Carbon Dioxide During Concrete Batching and Curing

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HSHarish Kumar SrivastavaSCS. M. Clark

Key Points

  • The aim is to explore methods for incorporating carbon dioxide in concrete to enhance its properties and reduce carbon footprint.
  • Assessing technologies for CO2 storage in concrete.
  • Investigating CO2 curing and mixing processes.
  • Studying CO2 injection effects on recycled aggregates.
  • Developing best practice protocols for concrete production with CO2.
  • CO2 incorporation can enhance concrete strength and reduce reliance on Portland cement.
  • CO2 curing mitigates strength loss from recycled aggregates, allowing for similar properties to virgin concrete.
  • Approximately 30 kg of CO2 can be sequestered per cubic meter of concrete.

Abstract

The accelerated carbonation of fresh concrete and recycled aggregates is one of the safest methods of CO2 sequestration as it mineralizes CO2, preventing its escape into the atmosphere. CO2 injection during batching of concrete improves its strength and may partially replace Portland cement, as with supplementary cementitious materials (SCMs). The curing of concrete by incorporation of CO2 also accelerates early strength development, which may enable early stripping of formwork/moulds for precast and in situ construction. The carbonation process may also be used for the beneficiation of recycled aggregates sourced from demolition waste. The CO2 mineralization technique may also be used for producing low-carbon, carbon-neutral, or carbon-negative concrete constituents via the carbonation of mineral feedstock, including industrial wastes like steel slag, mine tailings, or raw quarried minerals. This research paper analyses various available technologies for CO2 storage in concrete, CO2 curing and mixing of concrete, and CO2 injection for improving the properties of recycled aggregates. Carbon dioxide can be incorporated into concrete both through reaction with hydrating cement and through incorporation in recycled aggregates, giving a product of similar properties to concrete made from virgin materials. In this contribution we explore the various methodologies available to incorporate CO2 in both hydrating cement and recycled aggregates and develop a protocol for best practice. We find that the loss of concrete strength due to the incorporation of recycled aggregates can be mitigated by CO2 curing of the aggregates and the hydrating concrete, giving no negative strength consequences and sequestering around 30 kg of CO2 per cubic metre of concrete.

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Cite This Study

Srivastava et al. (2026) studied this question.

synapsesocial.com/papers/6975b1a9feba4585c2d6d20ahttps://doi.org/10.3390/infrastructures11010036
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