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Evaluating the carbon capture potential of industrial waste as a feedstock for enhanced weathering

delete2025-04-01
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OA
AI
P
Pengxiao Xu *
C
Christopher T. Reinhard
DOI:10.1088/1748-9326/adc020delete
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Abstract

Abstract

En 中文
Limiting anthropogenic global climate warming since the start of the industrial period to less than 2 degrees C will very likely require both deep and rapid reductions in anthropogenic greenhouse gas emissions and a range of approaches toward carbon dioxide removal (CDR). One prominent CDR approach is enhanced weathering (EW), in which crushed silicate rock is applied on land or in the open ocean to accelerate natural weathering processes that absorb carbon dioxide from Earth's ocean-atmosphere system. However, in addition to a range of potential environmental, socioeconomic, and ethical issues associated with this pathway, bottlenecks in feedstock sourcing represent a key barrier for deployment of EW at scale. Here, we evaluate the potential of silicate wastes produced from industrial processes-such as steel slag and cement waste-as feedstocks for the EW process. An empirical model that links industrial alkaline waste production to gross domestic product at purchase power parity is developed to forecast waste production in the alternative futures described by the shared socioeconomic pathway (SSP) framework. By incorporating these results into an intermediate-complexity Earth system model, we also explore the impacts of EW using industrial waste on changes to global temperature, ocean pH, and ocean aragonite saturation state, while also quantifying overall CDR efficiency through the end of the century. We estimate a maximum cumulative end-of-century capture potential of similar to 400 GtCO2 for industrial waste, which could represent a significant fraction of the projected CDR requirement of many mitigation scenarios in the SSP framework. However, feedstock-dependent environmental impacts and the technoeconomics of feedstock redistribution may ultimately limit deployment scope.
Keywords:
enhanced weathering
climate mitigation
carbon dioxide removal
industrial waste
Earth system modeling

Journal

Environmental Research Letters cover
Environmental Research Letters
IF:
5.6
Papers:
9.5K
Citations:
5.0W

Organization

U
university system of georgia
Scholars:
7.2W
Papers: 6.5W
Citations: 101