Evaluation of an urban canopy model in a tropical city: the role of tree evapotranspiration

A single layer urban canopy model (SLUCM) with enhanced hydrologic processes, is evaluated in a tropical city, Singapore. The evaluation was performed using an 11 month offline simulation with the coupled Noah land surface model/SLUCM over a compact low-rise residential area. Various hydrological pr...

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Published inEnvironmental research letters Vol. 12; no. 9; pp. 94008 - 94019
Main Authors Liu, Xuan, Li, Xian-Xiang, Harshan, Suraj, Roth, Matthias, Velasco, Erik
Format Journal Article
LanguageEnglish
Published Bristol IOP Publishing 01.09.2017
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Abstract A single layer urban canopy model (SLUCM) with enhanced hydrologic processes, is evaluated in a tropical city, Singapore. The evaluation was performed using an 11 month offline simulation with the coupled Noah land surface model/SLUCM over a compact low-rise residential area. Various hydrological processes are considered, including anthropogenic latent heat release, and evaporation from impervious urban facets. Results show that the prediction of energy fluxes, in particular latent heat flux, is improved when these processes were included. However, the simulated latent heat flux is still underestimated by ∼40%. Considering Singapore's high green cover ratio, the tree evapotranspiration process is introduced into the model, which significantly improves the simulated latent heat flux. In particular, the systematic error of the model is greatly reduced, and becomes lower than the unsystematic error in some seasons. The effect of tree evapotranspiration on the urban surface energy balance is further demonstrated during an unusual dry spell. The present study demonstrates that even at sites with relatively low (11%) tree coverage, ignoring evapotranspiration from trees may cause serious underestimation of the latent heat flux and atmospheric humidity. The improved model is also transferable to other tropical or temperate regions to study the impact of tree evapotranspiration on urban climate.
AbstractList A single layer urban canopy model (SLUCM) with enhanced hydrologic processes, is evaluated in a tropical city, Singapore. The evaluation was performed using an 11 month offline simulation with the coupled Noah land surface model/SLUCM over a compact low-rise residential area. Various hydrological processes are considered, including anthropogenic latent heat release, and evaporation from impervious urban facets. Results show that the prediction of energy fluxes, in particular latent heat flux, is improved when these processes were included. However, the simulated latent heat flux is still underestimated by ∼40%. Considering Singapore's high green cover ratio, the tree evapotranspiration process is introduced into the model, which significantly improves the simulated latent heat flux. In particular, the systematic error of the model is greatly reduced, and becomes lower than the unsystematic error in some seasons. The effect of tree evapotranspiration on the urban surface energy balance is further demonstrated during an unusual dry spell. The present study demonstrates that even at sites with relatively low (11%) tree coverage, ignoring evapotranspiration from trees may cause serious underestimation of the latent heat flux and atmospheric humidity. The improved model is also transferable to other tropical or temperate regions to study the impact of tree evapotranspiration on urban climate.
Author Liu, Xuan
Harshan, Suraj
Li, Xian-Xiang
Velasco, Erik
Roth, Matthias
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  surname: Liu
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  orcidid: 0000-0002-8688-6206
  surname: Li
  fullname: Li, Xian-Xiang
  email: lixx@smart.mit.edu
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  organization: Department of Geography National University of Singapore , Singapore
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  givenname: Erik
  surname: Velasco
  fullname: Velasco, Erik
  organization: CENSAM Singapore-MIT Alliance for Research and Technology , Singapore
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Snippet A single layer urban canopy model (SLUCM) with enhanced hydrologic processes, is evaluated in a tropical city, Singapore. The evaluation was performed using an...
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SubjectTerms Anthropogenic factors
Canopies
Coverage
Energy balance
Evaporation
Evapotranspiration
Fluctuations
Heat
Heat flux
Heat transfer
Human influences
hydrological
Hydrology
Latent heat
Residential areas
Simulation
Surface energy
Surface properties
Systematic errors
Temperature
tree evapotranspiration
Trees
tropical
urban canopy model
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Title Evaluation of an urban canopy model in a tropical city: the role of tree evapotranspiration
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Volume 12
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