Related Experiment Video
Updated: May 8, 2026

09:29
An Air-liquid Interface Bronchial Epithelial Model for Realistic, Repeated Inhalation Exposure to Airborne Particles for Toxicity Testing
Published on: May 13, 2020
Microscale obstacle resolving air quality model evaluation with the Michelstadt case
1Department of Fluid Mechanics, Budapest University of Technology and Economics, Budapest 1111, Hungary.
Thescientificworldjournal
|September 13, 2013
Summary
Computational Fluid Dynamics (CFD) models can simulate pollutant dispersion in cities. Evaluating OpenFOAM in Michelstadt showed a turbulent Schmidt number of 0.7 yields best results for urban air quality modelling.
Area of Science:
- Environmental Science
- Fluid Dynamics
- Atmospheric Chemistry
Background:
- Urban obstacles significantly impact air flow and pollutant dispersion, posing challenges for traditional air quality models.
- Computational Fluid Dynamics (CFD) models offer a potential solution by resolving urban canopy flow fields and explicitly accounting for building effects on dispersion.
Purpose of the Study:
- To evaluate the performance of an open-source CFD code, OpenFOAM, for modelling pollutant dispersion in a complex urban geometry.
- To assess the reliability of CFD models for regulatory use in intricate urban environments.
Main Methods:
- Utilized OpenFOAM, a general-purpose CFD code, to simulate pollutant dispersion in the Michelstadt urban geometry.
- Employed a scalar transport equation alongside CFD to model dispersion, considering building effects.
- Performed verification and validation against available flow field and dispersion measurement data.
Main Results:
- The study analyzed continuous release dispersion results, highlighting the strengths and weaknesses of the CFD modelling approach.
- The turbulent Schmidt number was identified as a critical parameter, with a value of 0.7 providing the best statistical metric results.
- OpenFOAM demonstrated capability in simulating dispersion within a complex urban setting.
Conclusions:
- CFD models, specifically OpenFOAM, show promise for simulating pollutant dispersion in complex urban geometries.
- Rigorous verification and validation are essential for building confidence in CFD models for regulatory applications.
- Optimizing parameters like the turbulent Schmidt number is crucial for enhancing the accuracy of urban air quality predictions.
Related Concept Videos
Laminar Flow: Problem Solving
Laminar flow occurs when a fluid moves smoothly in parallel layers with minimal mixing and turbulence. In fluid mechanics, ensuring laminar flow within a pipe is essential for precise control of flow characteristics, especially in engineering applications. The key factor in determining whether flow remains laminar is the Reynolds number, a dimensionless quantity that depends on the fluid's velocity, density, viscosity, and the pipe's diameter. A Reynolds number of 2100 or lower indicates...
Application of Integration: Problem Solving
The process of breathing involves the periodic intake and expulsion of air, known as the respiratory cycle, which typically lasts about five seconds. Modeling the volume of air inhaled into the lungs as a function of time provides insight into both the dynamics and efficiency of pulmonary ventilation. This volume is determined by integrating the airflow rate over time, which captures the cumulative effect of air entering the lungs.Sinusoidal Model of AirflowAirflow during respiration is not...

