Synergetic urban microclimate and energy simulation parametric workflow

Journal Article (2019)
Author(s)

Jonathan Natanian (Technische Universität München)

D. Maiullari (TU Delft - Environmental Technology and Design)

Abraham Yezioro (Technion Israel Institute of Technology)

Thomas Auer (Technische Universität München)

Research Group
Environmental Technology and Design
Copyright
© 2019 Jonathan Natanian, D. Maiullari, Abraham Yezioro, Thomas Auer
DOI related publication
https://doi.org/10.1088/1742-6596/1343/1/012006
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 Jonathan Natanian, D. Maiullari, Abraham Yezioro, Thomas Auer
Research Group
Environmental Technology and Design
Issue number
1
Volume number
1343
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Abstract

Although the interrelations between urban microclimates and energy demand have been acknowledged, few workflows integrate microclimatic boundary conditions to predict energy demand in parametric morphological studies. This paper helps bridge this gap by introducing a novel workflow which brings together energy and microclimatic modelling for a synergetic assessment at the block scale. The interrelation between form, energy and urban microclimatic conditions is explored here in the climatic context of Tel Aviv by coupling Envimet and EnergyPlus. The potential of this coupling is explored in three different block typologies, each tested for four different density scenarios focusing on the cooling demand on a typical hot day. Results show the substantial increase of as high as 50% in cooling demand when the microclimatic weather data is taken into account and indicate the potential to capitalize on new computational tools which allow to quantify the interrelations between urban form, microclimate and energy performance more accurately.