Experimental and Numerical Study on the Dynamic Thermal Response of Building Interior Decoration Coatings during Intermittent Air-Conditioning in High U-Values Buildings in China
Abstract
:1. Introduction
2. Methods
3. Results
4. Discussion
- (1)
- The initial temperature of the studied system is Ti. In the initial state, when the time τ = 0, Tin = 45 °C. After starting air conditioning, the indoor air temperature changes stepwise, indicating that when τ > 0, Tin = 22 °C.
- (2)
- The outdoor air temperature Tout is constant at 45 °C. According to GB 50176-2016 [29], the heat transfer coefficient of the wall interior surface hin and exterior surface hout were set as 8.7 W/(m2·K) and 19 W/(m2·K).
- (3)
- The heat transfer coefficients of the internal insulation wall and external insulation wall are both 1.38 W/(m2·K).
4.1. Effect on Interior Surface Temperature
4.2. Effect on the Temperature Reduction in Interior Surfaces
5. Conclusions
- (1)
- Thermal response rates of the interior surface of the internal insulation wall and external insulation wall met the law of negative correlation with the thermal diffusivity of the IDCs. For the IDC with small thermal diffusivity, the surface temperature was always lower, making the indoor thermal environment more favorable.
- (2)
- The thermal response rate of the internal insulation wall was greater than that of the external insulation wall after stopping air conditioning. For the external insulation wall, reducing the thermal conductivity of the IDC had a significant effect on increasing the thermal response rate of the interior surface. However, the results could be affected by the choice of stepwise variations of the indoor air temperature.
- (3)
- Numerical calculation showed that the thick IDC with a volumetric specific heat capacity of less than 1 × 105 J/(m3·K) and a small thermal conductivity should be preferred to increase the thermal response rate of the interior surface and quickly restore the indoor thermal environment.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
IDC | Interior decoration coating |
R | Thermal resistance, m2·K/W |
HCA | Heat capacity, kJ/(m2·K) |
ρ | Density, kg/m3 |
C | Specific heat capacity, kJ/(kg·K) |
δ | Thickness, m |
α | Thermal diffusivity, m2/s |
λ | Thermal conductivity coefficient, W/(m·K) |
τ | Time, s |
x | Thickness of the wall unit, m |
y | Length of the wall unit, m |
z | Height of the wall unit, m |
Tout | Outdoor air temperature, °C |
Tin | Indoor air temperature, °C |
Tl,out | Exterior surface temperature, °C |
Tl,in | Interior surface temperature, °C |
hout | Heat transfer coefficients of the exterior surface, W/(m2∙K) |
hin | Heat transfer coefficients of the interior surface, W/(m2∙K) |
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Material | Thickness, m | Density, kg/m3 | Thermal Conductivity, W/(m·K) | Specific Heat, kJ/kg·K | U-Value, W/(m2·K) |
---|---|---|---|---|---|
Cement mortar | 0.015 | 1406 | 0.35 | 1.05 | 1.156 |
Brick | 0.2 | 1536 | 0.75 | 0.523 | |
Foamed concrete | 0.03 | 104.5 | 0.087 | 1.05 |
Material | Density, kg/m3 | Specific Heat Capacity (J/(kg·K)) | Thermal Conductivity, W/(m·K) | Thickness, m | Thermal Resistance, m2·K/W | HCA, J/m−2K−1 | Thermal Diffusivity, m2/s |
---|---|---|---|---|---|---|---|
Al sheet 1 | 2710 | 840 | 202.77 | 0.001 | 4.93 × 10−6 | 2276.4 | 8.9 × 10−5 |
Wall fabric 2 | 1300 | 1510 | 0.22 | 0.0015 | 0.0068 | 2944.5 | 1.1 × 10−7 |
Wallpaper 3 | 700 | 1469 | 0.17 | 0.0005 | 0.0029 | 514.15 | 1.7 × 10−7 |
Description | Instruments | Range | Accuracy |
---|---|---|---|
JTRG-II | | −20–100 °C; 0–2000 W/m2 | ±0.5 °C, ±5% |
T-type thermocouple | | −200–350 °C | ±0.5 °C |
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Li, Y.; Chen, Y.; Zhang, L.; Li, X. Experimental and Numerical Study on the Dynamic Thermal Response of Building Interior Decoration Coatings during Intermittent Air-Conditioning in High U-Values Buildings in China. Energies 2022, 15, 1934. https://doi.org/10.3390/en15051934
Li Y, Chen Y, Zhang L, Li X. Experimental and Numerical Study on the Dynamic Thermal Response of Building Interior Decoration Coatings during Intermittent Air-Conditioning in High U-Values Buildings in China. Energies. 2022; 15(5):1934. https://doi.org/10.3390/en15051934
Chicago/Turabian StyleLi, Yanru, Yong Chen, Lili Zhang, and Xinyi Li. 2022. "Experimental and Numerical Study on the Dynamic Thermal Response of Building Interior Decoration Coatings during Intermittent Air-Conditioning in High U-Values Buildings in China" Energies 15, no. 5: 1934. https://doi.org/10.3390/en15051934
APA StyleLi, Y., Chen, Y., Zhang, L., & Li, X. (2022). Experimental and Numerical Study on the Dynamic Thermal Response of Building Interior Decoration Coatings during Intermittent Air-Conditioning in High U-Values Buildings in China. Energies, 15(5), 1934. https://doi.org/10.3390/en15051934