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Published on: October 21, 2016
A Satellite-Driven Model for Monitoring Urban Material Metabolism, Embodied Emissions, and Carbonation
Yu Nie1,2,3, Ting Mao1,2,3, Yupeng Liu1,3,4
1State Key Laboratory of Regional and Urban Ecology, Institute of Urban Environment, Chinese Academy of Sciences, Xiamen, Fujian 361021, People's Republic of China.
None:
Urban systems are central to global material consumption and carbon emissions. However, systematically understanding urban metabolism remains a challenge due to the reliance on aggregated, top-down data which fails to capture fine-scale urban dynamics. To address this challenge, we developed an integrated, bottom-up framework and reconstructed the 30-year metabolic history of Xiamen, China. Our approach leverages a custom machine learning workflow on multitemporal, open-source satellite imagery to create a dynamic 3D Building Dynamics (3D-BD) model. This model accurately maps key building attributes (footprint, height, type, and construction/demolition year), achieving an R2 of 0.81 for height estimation and F1-scores of 0.89 and 0.81 for detecting construction and demolition years, respectively. This high-resolution database then drives a GIS-MFA and LCA model to quantify material stocks, flows, embodied emissions across key lifecycle stages, and the often-overlooked carbon sink from cement carbonation. Results for Xiamen revealed a 5-fold increase in building stock, with material inflows peaking in the early 2000s while demolition outflows steadily rise, signaling a shift to urban renewal. Over the study period, cement carbonation provided a significant, distributed carbon sink, offsetting an estimated 6.6% of the building stock's total lifecycle embodied emissions. This transferable framework provides a more complete accounting of the urban carbon budget, offering a powerful tool for guiding sustainable planning and net-zero transitions.
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