Coupled Outdoor and Indoor Airflow Prediction for Buildings Using Computational Fluid Dynamics (CFD)
Abstract
:Nomenclature
Inlet opening area | (m2) | |
Outlet opening area | (m2) | |
Opening area | (m2) | |
Opening area, refer to Equation (5) | (m2) | |
Opening discharge coefficient | (-) | |
Constant (windward/ parallel wind: 0.0012 and, leeward wind: 0.0026) | (-) | |
Pressure coefficient | (-) | |
Opening effectiveness | (-) | |
Wind speed | (ms−1) | |
Reference wind speed | (ms−1) | |
Pressure | (Nm−2) | |
Ventilation rate | (m3s−1) | |
Greek Letters or other Symbols | ||
Air density | (kgs−3) |
1. Introduction
2. Methodology
- Approach A: Fully empirical models;
- Approach B: Physical models (small or full scale) models;
- Approach C: Combination of physical and empirical models;
- Approach D: Combination of CFD and empirical models;
- Approach E: Fully CFD models (coupled or de-coupled).
3. Empirical Models
4. Building Configurations
5. Computational Fluid Dynamics (CFD)
CFD Setup
6. Results and Findings
6.1. Single-Cell Building
Model | Wind angles | ||
---|---|---|---|
0° | 45° | 135° | |
G01 | A (Eqn. 4) | A (Eqn. 4) | A (Eqn. 4) |
G02 | A (Eqn. 4) | D (Eqn. 2) | D (Eqn. 2) |
G03 | D (Eqn. 2) | D (Eqn. 2) | D (Eqn. 2) |
G04 | D (Eqn. 2) | D (Eqn. 2) | D (Eqn. 2) |
G05 | D (Eqn. 2) | D (Eqn. 2) | D (Eqn. 2) |
G06 | D (Eqn. 2) | D (Eqn. 2) | D (Eqn. 2) |
G07 | D (Eqn. 2) | D (Eqn. 2) | D (Eqn. 2) |
G08 | A (Eqn. 4) | A (Eqn. 4) | A (Eqn. 4) |
6.1.1. Modification of Facade Treatment
6.1.2. Wind Direction and Ventilation Strategy
Model | Wind angles | ||
---|---|---|---|
0° | 45° | 135° | |
G01 | 3.2 | 37.8 | 191.0 |
G02 | 21.3 | 20.8 | 22.4 |
G03 | 28.6 | 22.8 | 44.0 |
G04 | 29.8 | 28.2 | 50.7 |
G05 | 6.0 | 9.0 | 58.6 |
G06 | 11.5 | 1.1 | 1.1 |
G07 | 2.0 | 27.7 | 10.9 |
G08 | 67.9 | 30.7 | 491.7 |
6.1.3. Prediction Accuracy
6.2. 12-Storey Building
6.2.1. Validation of Wind Pressure Distribution
Facade treatment | Percentage of differences (%) | |
---|---|---|
Line A | Line B | |
Flat (0°) | 5.3* | 37.8* |
Balcony (0°) | 6.6* | 27.2* |
Flat 45°) | 12.9^ | 37.9* |
Balcony (45°) | 30.8^ | 21.1* |
Flat (90°) | 27.7* | 13.0* |
Balcony (90°) | 14.1* | 15.5* |
6.2.2. Validation for Cross Ventilation Strategies
Model | Percentage of differences (%) | ||
---|---|---|---|
0° | 45° | 90° | |
S01 | C & D (Eqn. 2) | C & D (Eqn. 2) | - |
S02 | C & D (Eqn. 2) | C & D (Eqn. 2) | - |
S03 | - | A (Eqn. 1) | D (Eqn. 2) |
S04 | - | D (Eqn. 2) | D (Eqn. 2) |
S05 | - | D (Eqn. 2) | D (Eqn. 2) |
S06 | - | D (Eqn. 2) | D (Eqn. 2) |
6.2.3. Validation of Single-Sided Ventilation Strategies
7. Conclusions
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Mohamed, M.F.; King, S.; Behnia, M.; Prasad, D. Coupled Outdoor and Indoor Airflow Prediction for Buildings Using Computational Fluid Dynamics (CFD). Buildings 2013, 3, 399-421. https://doi.org/10.3390/buildings3020399
Mohamed MF, King S, Behnia M, Prasad D. Coupled Outdoor and Indoor Airflow Prediction for Buildings Using Computational Fluid Dynamics (CFD). Buildings. 2013; 3(2):399-421. https://doi.org/10.3390/buildings3020399
Chicago/Turabian StyleMohamed, Mohd Farid, Steve King, Masud Behnia, and Deo Prasad. 2013. "Coupled Outdoor and Indoor Airflow Prediction for Buildings Using Computational Fluid Dynamics (CFD)" Buildings 3, no. 2: 399-421. https://doi.org/10.3390/buildings3020399