Nationwide recycled steel slag pavements can stimulate sustainable urban transportation

Urban road expansion supports economic growth but also locks in emissions and resource demand. A bottom-up, high-resolution framework was developed to assess national-scale climate, health and economic impacts of recycled steel slag pavements. Taking China as a representative case, the framework integrates pavement degradation with nationwide data on traffic demand, road networks, and steel slag availability to evaluate renovation and cross-regional allocation strategies. Here we show that durable recycled pavements extend service life, reduce use-phase emissions, and generate system-level benefits. Across assessment horizons accounting for phased deployment and two subsequent 15-year service cycles, replacing 25–100% of urban pavements is estimated to reduce greenhouse gas emissions by 19% (431–1741 million tonnes), cut fine particulate matter emissions by 13% (303–1229 million kilograms), avert approximately 31,802–128,980 premature deaths, and generate net economic benefits of 3.48–15.01 trillion Chinese Yuan. These findings identify recycled pavements as a strategy for sustainable urban transport and climate resilience. Recycled steel slag pavements could cut emissions by 19%, reduce fine particle pollution by 13%, prevent up to 128,980 premature deaths and deliver major economic gains, according to a national high-resolution model of roads, traffic, pavement degradation and steel slag supply.

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Publication Details

Journal
Communications Earth & Environment
Published
2026-09-24
DOI
https://doi.org/10.1038/s43247-026-04056-z
Primary Topic
Environmental Impact and Sustainability
Type
article
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article

Nationwide recycled steel slag pavements can stimulate sustainable urban transportation

Jia Sun, Paolo Santi, Sang Luo, Xiaoling Zhang et al.
Communications Earth & Environment
Environmental Impact and Sustainability
article

Nationwide recycled steel slag pavements can stimulate sustainable urban transportation

Jia Sun, Paolo Santi, Sang Luo, Xiaoling Zhang, Wei Wang, An Wang, Guoyang Lu, Hanxi Li, Carlo Ratti, Zhihan Zhang, Zixuan Ling, Shiu Tong Thomas Ng, Yuhao Du, Wanying Liu, Jing Hu, Wei Huang
article en

Abstract

Urban road expansion supports economic growth but also locks in emissions and resource demand. A bottom-up, high-resolution framework was developed to assess national-scale climate, health and economic impacts of recycled steel slag pavements. Taking China as a representative case, the framework integrates pavement degradation with nationwide data on traffic demand, road networks, and steel slag availability to evaluate renovation and cross-regional allocation strategies. Here we show that durable recycled pavements extend service life, reduce use-phase emissions, and generate system-level benefits. Across assessment horizons accounting for phased deployment and two subsequent 15-year service cycles, replacing 25–100% of urban pavements is estimated to reduce greenhouse gas emissions by 19% (431–1741 million tonnes), cut fine particulate matter emissions by 13% (303–1229 million kilograms), avert approximately 31,802–128,980 premature deaths, and generate net economic benefits of 3.48–15.01 trillion Chinese Yuan. These findings identify recycled pavements as a strategy for sustainable urban transport and climate resilience. Recycled steel slag pavements could cut emissions by 19%, reduce fine particle pollution by 13%, prevent up to 128,980 premature deaths and deliver major economic gains, according to a national high-resolution model of roads, traffic, pavement degradation and steel slag supply.

Communications Earth & EnvironmentVol. 7(1)
Hong Kong Baptist University (HK), Hong Kong Polytechnic University (HK), City University of Hong Kong (HK), Institute of Informatics and Telematics (IT), Massachusetts Institute of Technology (US), Southeast University (CN), University of Hong Kong (HK), Politecnico di Milano (IT)
Climate action
Openalex Percentile: Top 19%
Environmental Impact and Sustainability
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