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Improved mesoscopic meteorological modelling of the urban climate for building physics applications

Author(s):



Medium: journal article
Language(s): English
Published in: Journal of Physics: Conference Series, , n. 1, v. 2654
Page(s): 012147
DOI: 10.1088/1742-6596/2654/1/012147
Abstract:

A meteorological mesoscale model is used to predict the local urban climate at 250 m resolution. The authors propose a hybrid machine learning approach to improve the prediction accuracy and remove simulation bias. Two case studies are presented to show the improvements of the simulation accuracy. Based on the hybrid model results, using cooling degree hours is proposed as an insightful time-dependent index to map local hotspots and assess the difference of cooling loads between rural and urban environments.

Structurae cannot make the full text of this publication available at this time. The full text can be accessed through the publisher via the DOI: 10.1088/1742-6596/2654/1/012147.
  • About this
    data sheet
  • Reference-ID
    10777624
  • Published on:
    12/05/2024
  • Last updated on:
    12/05/2024
 
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