A source–medium–receiver framework for modeling wind-driven vegetation cooling in urban landscapes

Vegetation cooling in cities is often represented as a local, isotropic effect, although atmospheric processes can redistribute cooling beyond individual vegetation patches. This simplification may overlook the nonlocal and directionally structured nature of cooling propagation. We developed a physics-guided source–medium–receiver (SMR) framework for the Greater Bay Area of China to compare multi-source isotropic connectivity with prevailing-wind-conditioned connectivity. Vegetation-source strength was represented by the VCSI, and parameters estimated from 2021 to 2023 were frozen for an independent 2024 holdout and contrasting monsoon assessments. Cooling connectivity was modeled using a spatially varying distance-decay function, controlled by the wind speed, moisture content, surface albedo, terrain, and directional constraints from prevailing winds. In 2024, isotropic connectivity showed a stronger relationship with LST (r = −0.8069) than wind-conditioned connectivity (r = −0.7780) and local VCSI (r = −0.7757), with the same general ordering across monsoon and built-up receiver assessments. The source-level decay lengths ranged from 0.504 to 0.518 km, whereas the wind-conditioned emergent multi-source persistence increased from 4.13 to 4.88 km, reflecting cumulative field behaviors. Wind-relative decomposition further showed that annual connectivity was distributed across downwind, crosswind, and upwind pathways. These findings indicate that regional vegetation cooling is primarily characterized by distance-mediated, multi-source connectivity, while prevailing-wind direction acts as a scale- and condition-dependent modifier. This shift in perspective provides a physically grounded framework for effective urban climate analysis and precision greening strategies.

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Publication Details

Journal
GIScience & Remote Sensing
Published
2026-09-18
DOI
https://doi.org/10.1080/15481603.2026.2733792
Primary Topic
Urban Heat Island Mitigation
Type
article
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article

A source–medium–receiver framework for modeling wind-driven vegetation cooling in urban landscapes

Xiaoli Ding, Sawaid Abbas, Hassan Qasim
GIScience & Remote Sensing
Urban Heat Island Mitigation
article

A source–medium–receiver framework for modeling wind-driven vegetation cooling in urban landscapes

Xiaoli Ding, Sawaid Abbas, Hassan Qasim
article en

Abstract

Vegetation cooling in cities is often represented as a local, isotropic effect, although atmospheric processes can redistribute cooling beyond individual vegetation patches. This simplification may overlook the nonlocal and directionally structured nature of cooling propagation. We developed a physics-guided source–medium–receiver (SMR) framework for the Greater Bay Area of China to compare multi-source isotropic connectivity with prevailing-wind-conditioned connectivity. Vegetation-source strength was represented by the VCSI, and parameters estimated from 2021 to 2023 were frozen for an independent 2024 holdout and contrasting monsoon assessments. Cooling connectivity was modeled using a spatially varying distance-decay function, controlled by the wind speed, moisture content, surface albedo, terrain, and directional constraints from prevailing winds. In 2024, isotropic connectivity showed a stronger relationship with LST (r = −0.8069) than wind-conditioned connectivity (r = −0.7780) and local VCSI (r = −0.7757), with the same general ordering across monsoon and built-up receiver assessments. The source-level decay lengths ranged from 0.504 to 0.518 km, whereas the wind-conditioned emergent multi-source persistence increased from 4.13 to 4.88 km, reflecting cumulative field behaviors. Wind-relative decomposition further showed that annual connectivity was distributed across downwind, crosswind, and upwind pathways. These findings indicate that regional vegetation cooling is primarily characterized by distance-mediated, multi-source connectivity, while prevailing-wind direction acts as a scale- and condition-dependent modifier. This shift in perspective provides a physically grounded framework for effective urban climate analysis and precision greening strategies.

GIScience & Remote SensingVol. 63(1)
Hong Kong Polytechnic University (HK), International Geographical Union (ZA)
Climate action
Openalex Percentile: Top 18%
Urban Heat Island Mitigation
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