Thermal Behavior and Measures to Prevent Condensation of a Newly Developed External Wall Panel
Abstract
:1. Introduction
2. Development of External Wall Panel (EWP)
2.1. Introduction of the Developed EWP
2.2. Basic Performance Experiment of EWP (Methods and Results)
3. Thermal Properties of the Developed EWP
3.1. Model and Method
3.2. Conditions for Heat Transfer Simulation
3.3. Results
3.4. Measures for Improvement of Thermal Performance and Results
- ψ—linear thermal transmittance [W/(mK)],
- —heat conduction coefficient calculated by two-dimensional computation [W/(mK)],
- —thermal transmittance of computation [W/(m2K)],
- —length to thermal bridge [m].
4. Unsteady State Thermal Characteristics of the EWP
5. Discussion and Conclusions
- —effective thermal transmittance [W/(m2K)],
- —thermal transmittance calculated by one-dimensional computation [W/(m2K)],
- —area [m2],
- —linear thermal transmittance [W/mK],
- —length to thermal bridge [m].
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Type | Layers |
---|---|
Floor Unit/Unit | ECP 1 (35 mm) + PIR Board 2 (25 mm) + Glass Wool (85 mm + 85 mm) + PIR Board 2 (10 mm) + CRC Board 3 (9 mm) |
Items | Test Methods | Allowance | Measured Results | |
---|---|---|---|---|
Thermal cycling test | AAMA 501.5-07 | Hot cycle (+82 °C) Cold cycle (−18 °C) 3rd cycle | No damage | No damage |
Pre-load test | ASTM E330-14 | 50% of design wind load | No damage | No damage |
Air leakage | ASTM E283-04 (for window) | +7.6 kgf/m2 | 1.09 CMH/m2 | 1.06 CMH/m2 |
Water penetration | ASTM E 331 (uniform Static air difference)/AAMA 501.1-05 (dynamic pressure) | 20% of design wind load | No uncontrolled water leakage | No leakage |
Structural performance | ASTM E 330-14 | 1. 100% maximum displacement test (+50% → +100% → −50% → −100%) 2. 150% residual strain test (+75% → +150% → −75% → −150%) | 1. L/175 (=12.43 mm) 2. No permanent damage | 1.53 mm (OK) |
Story displacement | AAMA 501.4-09 | L/300 (high-occupancy assembly) | No wall components may fall off | No deflection |
Residual strain | ASTM E330-02 | 75% and 150% of positive and negative design wind load | 2L/1000 (=4.35 mm) | 1.33 mm (positive) 1.31 mm (negative) |
Full specimen area: 4064 mm (W) × 3405 mm (H), PVC sliding window: 1800 mm (W) × 2085 mm (H) |
Set-Point Temperatures | Set-Point Relative Humidity | Surface Heat Transfer Coefficient | |
---|---|---|---|
Outdoor | −20 °C | - | 23.25 W/(m2 K) |
Indoor | 25 °C | 50% | 9.09 W/(m2 K) |
Materials | Thermal Conductivity [W/(mK)] | Specific Heat Capacity [J/(kgK)] | Density [kg/(m2)] |
---|---|---|---|
Aluminum | 160.00 | 880 | 2700 |
Cement | 1.00 | 1000 | 1800 |
Concrete | 1.60 | 1000 | 2200 |
Gasket | 1.00 | 1000 | 1150 |
Sealant | 1.00 | 1000 | 1450 |
Gypsum board | 0.18 | 1000 | 900 |
Thermal breaker | 0.30 | 1000 | 1000 |
Expanded polystyrene | 0.028 | 1470 | 25 |
Improvement Measures | Simulation Models with Improved Insulation Performance | Results of Indoor Surface Temperature | |
---|---|---|---|
➊ EWP | |||
<Vertical Section> | |||
<Horizontal Section> | |||
➋ Alt-1 (added insulation at connection parts) | |||
<Vertical Section> | |||
<Horizontal Section> | |||
➌ Alt-2 (insertion of thermal breaker) | |||
<Vertical Section> | |||
<Horizontal Section> | |||
➍ Alt-3 (added insulation + insertion of thermal breaker) | |||
<Vertical Section> | |||
<Horizontal Section> |
➊ EWP | ➋ Alt-1 | ➌ Alt-2 | ➍ Alt-3 | Insulated Concrete Wall | ||
---|---|---|---|---|---|---|
Heat loss (W) | 68.0 | 49.2 | 51.9 | 42.1 | 40 | |
Linear thermal transmittance [W/(mK)] | Slab | 0.58 | 0.58 | 0.58 | 0.58 | 0.58 |
Horizontal connection parts | 0.57 | 0.18 | 0.15 | 0.03 | 0 | |
Vertical connection parts | 0.49 | 0.18 | 0.22 | 0.13 | 0 |
➊ EWP | ➋ Alt-1 | ➌ Alt-2 | ➍ Alt-3 | Insulated Concrete Wall | |
---|---|---|---|---|---|
Effective Thermal Transmittance [W/(m2K)] | 0.72 | 0.52 | 0.55 | 0.44 | 0.42 |
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Hong, G.; Lee, S.-W.; Kang, J.-Y.; Kim, H.-G. Thermal Behavior and Measures to Prevent Condensation of a Newly Developed External Wall Panel. Sustainability 2019, 11, 912. https://doi.org/10.3390/su11030912
Hong G, Lee S-W, Kang J-Y, Kim H-G. Thermal Behavior and Measures to Prevent Condensation of a Newly Developed External Wall Panel. Sustainability. 2019; 11(3):912. https://doi.org/10.3390/su11030912
Chicago/Turabian StyleHong, Goopyo, Suk-Won Lee, Ji-Yeon Kang, and Hyung-Geun Kim. 2019. "Thermal Behavior and Measures to Prevent Condensation of a Newly Developed External Wall Panel" Sustainability 11, no. 3: 912. https://doi.org/10.3390/su11030912
APA StyleHong, G., Lee, S. -W., Kang, J. -Y., & Kim, H. -G. (2019). Thermal Behavior and Measures to Prevent Condensation of a Newly Developed External Wall Panel. Sustainability, 11(3), 912. https://doi.org/10.3390/su11030912