Inclusion of building‐resolving capabilities into the FastEddy® GPU-LES model using an immersed body force method

As a first step toward achieving full physics urban weather simulation capabilities within the resident-GPU large-eddy simulation (LES) FastEddy (R) model, we have implemented and verified/validated a method for explicit representation of building effects. Herein, we extend the immersed body force method (IBFM) from Chan and Leach (2007, ) to (i) be scale independent and (ii) control building surface temperatures. Through a specific drag-like term in the momentum equations, the IBFM is able to enforce essentially zero velocities within the buildings, in turn resulting in a no-slip boundary condition at the building walls. In addition, we propose similar forcing terms in the energy and mass conservation equations that allow an accurate prescription of the building temperature. The extended IBFM is computationally efficient and has the potential to be coupled to building energy models. The IBFM exhibits excellent agreement with laboratory experiments of an array of staggered cubes at a grid spacing of Delta=1 mm, demonstrating the applicability of the method beyond the atmospheric scale. In addition, the IBFM is validated at atmospheric scale through simulations of downtown Oklahoma City ( Delta=2 m) using data collected during the Joint Urban 2003 (JU03) field campaign. Our LES IBFM results for mean wind speed, turbulence kinetic energy, and SF6 transport and dispersion compare well to observations and produce turbulence spectra that are in good agreement with sonic anemometer data. Statistical performance metrics for the JU03 simulations are within the range of other LES models in the literature.

To Access Resource:

Questions? Email Resource Support Contact:

  • opensky@ucar.edu
    UCAR/NCAR - Library

Resource Type publication
Temporal Range Begin N/A
Temporal Range End N/A
Temporal Resolution N/A
Bounding Box North Lat N/A
Bounding Box South Lat N/A
Bounding Box West Long N/A
Bounding Box East Long N/A
Spatial Representation N/A
Spatial Resolution N/A
Related Links N/A
Additional Information N/A
Resource Format PDF
Standardized Resource Format PDF
Asset Size N/A
Legal Constraints

Copyright author(s). This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.


Access Constraints None
Software Implementation Language N/A

Resource Support Name N/A
Resource Support Email opensky@ucar.edu
Resource Support Organization UCAR/NCAR - Library
Distributor N/A
Metadata Contact Name N/A
Metadata Contact Email opensky@ucar.edu
Metadata Contact Organization UCAR/NCAR - Library

Author Muñoz‐Esparza, Domingo
Sauer, Jeremy A.
Shin, Hyeyum Hailey
Sharman, Robert
Kosović, Branko
Meech, Scott
García‐Sánchez, Clara
Steiner, Matthias
Knievel, Jason
Pinto, James
Swerdlin, Scott
Publisher UCAR/NCAR - Library
Publication Date 2020-11-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
Alternate Identifier N/A
Resource Version N/A
Topic Category geoscientificInformation
Progress N/A
Metadata Date 2023-08-18T18:31:12.846669
Metadata Record Identifier edu.ucar.opensky::articles:23843
Metadata Language eng; USA
Suggested Citation Muñoz‐Esparza, Domingo, Sauer, Jeremy A., Shin, Hyeyum Hailey, Sharman, Robert, Kosović, Branko, Meech, Scott, García‐Sánchez, Clara, Steiner, Matthias, Knievel, Jason, Pinto, James, Swerdlin, Scott. (2020). Inclusion of building‐resolving capabilities into the FastEddy® GPU-LES model using an immersed body force method. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d72n55kw. Accessed 19 June 2025.

Harvest Source