Importance of Spatially Continuous Urban Surface Properties in Urban‐Resolving Earth System Modeling

Cheng, Y., Zhao, L., Oleson, K. W., Chakraborty, T., Zhang, K., et al. (2026). Importance of Spatially Continuous Urban Surface Properties in Urban‐Resolving Earth System Modeling. Journal of Advances in Modeling Earth Systems, doi:https://doi.org/10.1029/2025MS005573

Title Importance of Spatially Continuous Urban Surface Properties in Urban‐Resolving Earth System Modeling
Genre Article
Author(s) Y. Cheng, L. Zhao, Keith W. Oleson, T. Chakraborty, K. Zhang, Cenlin He, J. Yang
Abstract Accurate representation of urban properties and processes at higher resolutions in global modeling systems is essential for advancing our ability to capture the complexities of urban systems and informing effective resilience strategies. However, the prescription of coarse global‐scale urban properties in most state‐of‐the‐art Earth system models (ESMs) is limiting their potential for capturing urban signals as they advance toward kilometer‐scale simulation capabilities. To bridge this gap in inadequate urban property representation and to advance urban‐resolving Earth system modeling, this work integrates the newly‐developed global 1 km‐resolution facet‐level urban surface property data set, U‐Surf, into the land component of Community Earth System Model (CESM)—Community Terrestrial System Model (CTSM). The land‐only CTSM simulations are validated against satellite measurements, ground‐based urban weather stations, flux tower observations, and reanalysis data. Results demonstrate that the enhanced urban properties allow improved simulations of urban meteorology and surface energy fluxes compared to the default coarse‐resolution categorical urban canopy parameters. Spatial scaling analysis reveals regime‐dependent information loss during resolution aggregation, as well as substantial scale‐dependent variations in urban surface energy flux representation. These findings have critical implications for coupled Earth system modeling when including the effect of land‐atmosphere interaction. This work establishes a foundation for future urban‐resolving kilometer‐scale ESM development, which will enable systematic intra‐ and inter‐city comparisons that inform urban adaptation strategies across diverse global urban environments.
Publication Title Journal of Advances in Modeling Earth Systems
Publication Date Jun 1, 2026
Publisher's Version of Record https://doi.org/10.1029/2025MS005573
OpenSky Citable URL https://n2t.net/ark:/85065/d79g5sbn
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RAL Affiliations WCAP

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