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◆ Environmental science & technology2026-09-08

Coupled Energy-Industrial Transitions Shape Heterogeneous Carbon-Air Pollution Cobenefits and Spatial Emission Leakage in China's Steel Industry.

Xiahong Shi, Lina Li, Xiaowei Wu, Zhen Zhang, Yi Fang, Qizhen Liu, Zechen Yu, Xin Dong, Junfeng Zhang, Deming Han, Xin Wang, Jinping Cheng

原始摘要(英文原文)· Original abstract
The iron and steel industry is central to industrial decarbonization and air-quality improvement, yet the energy-industrial conditions shaping these outcomes remain insufficiently understood. We develop a unit-level emission database for China's steel industry, covering 2866 enterprises and ∼4030 units, to relate regional energy-industrial configurations to historical driving mechanisms and future mitigation priorities. The sector's CO2 emissions peaked at 1.99 gigatonnes in 2019, while SO2 and PM declined by more than 80% during 2011-2022. Over 2023-2050, production restraint provides the largest projected cumulative CO2 reductions (22.1%), whereas obsolete capacity retirement dominates air pollutant (AP) reductions (22.3%). These priorities vary across regional configurations, exemplified by the greater relevance of process upgrading and capacity restructuring in high-intensity regions. Combined mitigation could lower CO2 intensity to below 1.5 t/t by 2030 and ∼0.6 t/t by 2050. Regionally differentiated pathways may also induce spatial emission leakage, more strongly for CO2 than for APs, although the CO2 leakage ratio declines from 17.39% in 2030 to 2.38% in 2050. Air-quality responses are similarly uneven, with national mean AP concentrations in 2030 decreasing by 5.4-12.3% relative to 2022. The findings suggest that long-process-dependent steel economies require sequenced, regionally differentiated transitions beyond uniform short-process substitution.
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Coupled Energy-Industrial Transitions Shape Heterogeneous Carbon-Air Pollution Cobenefits and Spatial Emission Leakage in China's Steel Industry. — 科研速览 Science Skim