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Coupled effects of land use, spatial configuration, and energy fluxes on thermal resilience in mild-climate cities

  • P. Zhu
  • , S. Liu
  • , Z. Ma
  • , Y. Chen
  • , Y. Zhou
  • , W. Xing
  • , T. Li
  • , C. Dai
  • , Z. Wang*
  • *此作品的通讯作者
  • Kunming University of Science and Technology
  • Beijing Institute of Technology

科研成果: 期刊稿件文章同行评审

摘要

With extreme climate events becoming more frequent, strengthening thermal resilience in urban outdoor spaces has emerged as a priority for the built environment and spatial planning. Using Kunming (a temperate-climate city) as a case study, we first track the co-evolution of temperature and humidity along micro-scale transects. In 2024, disturbance-prone segments exhibited concurrent amplification of thermal and humidity variability (ΔT ≈ 1 °C; ΔRH = 3.59%), indicating that thermal response can serve as a practical proxy for coupled thermal–humidity fluctuations. We then investigate how land-cover composition and spatial configuration regulate surface energy exchange and, in turn, microclimate resilience. Results show that resilience depends less on land-cover shares per se than on the partitioning and spatial coupling of latent (LE) and sensible (H) heat. Higher-resilience segments show lower TSI values (0.131–0.149), stronger radiative cooling potential (ε/α > 5), and limited subsurface energy loss (Gratio ≈ 0.04), consistent with enhanced diurnal buffering; in the most buffered segment, ΔT remained below 0.32 °C. By contrast, fragmented green–blue patches and their proximity to high-sensible-heat surfaces (bare ground and built-up areas) erode cooling performance during heatwaves and sharpen intra-segment thermal contrasts. Landscape metrics further suggest that compact, regularly shaped, and evenly distributed patches support resilience, whereas fragmented, aggregated, and irregular configurations increase vulnerability under extreme heat.

源语言英语
期刊论文编号534
期刊International Journal of Environmental Science and Technology
23
7
DOI
出版状态已出版 - 7月 2026
已对外发布

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