Should we care about the level of detail in trees when running urban microscale simulations
Datos Bibliográficos
| ID | 21233554 |
|---|---|
| Autores | Runnan Fu (0000-0001-5559-6401, Delft University of Technology, autor de correspondencia), Ivan Pađen (0000-0002-2702-3689, Delft University of Technology), Clara García-Sánchez (0000-0002-5355-4272, Delft University of Technology) |
| Año | 2024 |
| Volumen | 101 |
| Páginas | 105143 |
| Fecha de publicación | 2024-02-01 |
| Peer Reviewed | Sí |
| Open Access | Sí |
| Tipo | ARTICLE |
| Revista | Sustainable Cities and Society (JOURNAL) |
| Identificadores de la revista | ISSN: 2210-6707 • E-ISSN: 2210-6715 |
| Editorial | Elsevier BV (PUBLISHER) |
| DOI | 10.1016/j.scs.2023.105143 |
| OpenAlex | W4390561478 |
| Idioma | EN |
| Citas recibidas | 6 |
| Referencias citadas | 43 |
Due to lack of information and long geometry generation times, tree geometries are usually oversimplified or even ignored in Computational Fluid Dynamic (CFD) simulations that predict wind and pollutant dispersion in urban areas. Nevertheless, trees are known to impact local wind patterns and air quality levels. Thus, in this paper we explore the effects that tree models automatically reconstructed at diverse Level of Detail (LoD) (1, 2 and 3) have in numerical wind predictions. We address this by comparing the non-dimensional velocity magnitude differences between simulations with multiple tree LoDs. To further understand these differences in changing environmental contexts we use three morphologies: an isolated tree, an idealized street, canyon, and a real urban geometry from Rotterdam, The Netherlands The numerical results show that the velocity magnitude differences between the cases with LoD1 tree models and those with LoD2 tree models can be over 1.0 m/s while the differences between LoD2 and LoD3 cases are rather limited, usually lower than 0.2 m/s. Consequently, through this study we highlight the importance of using tree models in LoD2 or LoD3 at least for CFD simulations of wind flows in urban areas. To further support this conclusion we also analyze the impact of changing wind directions and tree Leaf Area Density (LAD) values in the impact of tree LoDs on wind. The differences found in this work linked to the level of realism in your tree models can support future studies where researchers want to make an informed choice
Air quality index · Canyon · Cartography · Computational fluid dynamics · Geography · Mechanics · Meteorology · Microscale chemistry · Physics · Wind speed · Computer Science · Environmental Science · Mathematics · Noise Effects and Management · Urban Heat Island Mitigation · Wind and Air Flow Studies
Refined definition of level-of-detail for tree models in support of microclimate simulation
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Excess mortality related to the August 2003 heat wave in France
CFD simulations of wind flow and pollutant dispersion in a street canyon with traffic flow
CFD modelling of vegetation barrier effects on the reduction of traffic-related pollutant concentration in an avenue of Pamplona, Spain
Urban heat island mitigation strategies
| Obras citantes distintas | 6 |
|---|---|
| Citas por año | 3 |
| Intervalo de citas | 2024 - 2025 (2) |
| Velocidad de citación | recent |
| Altamente citado | No |
| Tipos de cita | Neutras: 6 |