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March 19, 2026Applied Sciences0 citationsOpen Access

Assessment of Wind–Thermal Environments in Urban Cultural Blocks Integrating Remote Sensing Data with Fluid Dynamics Simulations

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HHHongyuan HuoLZLingying ZhouHZHan Zhang

Key Points

  • The study aims to optimize microclimate responses in high-density urban areas by integrating remote sensing and fluid dynamics.
  • Developed a quantitative framework coupling thermal infrared remote sensing with computational fluid dynamics.
  • Assessed multiple renewal strategies (S1–S7) involving greenery, water bodies, and permeable pavements.
  • Evaluated pedestrian-level comfort indices based on micro-scale simulations.
  • Single-factor interventions showed little improvement in thermal comfort, often causing thermodynamic trade-offs.
  • The strategy combining greenery, water, and permeable pavement (S4) provided optimal cooling and spatial uniformity.
  • A 10% increase in water coverage correlated with a temperature reduction of approximately 5.17 °C.

Abstract

Mitigating heat stress in high-density historical districts remains a critical challenge in urban renewal due to complex morphological heterogeneity. Existing research often relies on isolated intervention measures, lacking systematic, multi-strategy assessments driven by high-precision spatial data. This study addresses this gap by establishing a quantitative framework that couples thermal infrared remote sensing with Computational Fluid Dynamics (CFD) to optimize microclimate responses in Beijing’s Liulichang Historic District. Remote sensing data were utilized to retrieve high-resolution Land Surface Temperature (LST), providing accurate thermal boundary conditions for micro-scale wind-thermal simulations. A baseline scenario (S0) and seven renewal strategies (S1–S7)—integrating varying configurations of greenery, water bodies, and permeable pavements—were evaluated using pedestrian-level comfort indices. Results reveal that single-factor interventions yield marginal improvements or thermodynamic trade-offs; specifically, adding greenery (S1) in narrow street canyons increased aerodynamic roughness, thereby obstructing ventilation and inducing localized warming. Conversely, composite strategies significantly enhanced microclimatic quality. The “greenery-water-permeable pavement” strategy (S4) achieved optimal synergistic effects, characterized by substantial cooling and spatial homogenization. Regression analysis identified water bodies as the dominant cooling driver, where a 10% increase in water coverage resulted in a temperature reduction of approximately 5.17 °C. Conversely, greenery alone showed no statistically significant cooling contribution (p > 0.05) without the synergistic presence of water or pavement modifications. This research suggests that urban renewal in high-temperature zones (>36 °C) should prioritize composite cooling networks. Furthermore, vegetation layouts near wind corridors must be precisely regulated to prevent ventilation degradation. These findings provide a scientific basis for the climate-adaptive sustainable regeneration of culturally significant, high-density urban blocks.

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Cite This Study

Huo et al. (2026) studied this question.

synapsesocial.com/papers/69bb92be496e729e6298052chttps://doi.org/10.3390/app16062889
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