Potential of Utilizing Different Natural Cooling Sources to Reduce the Building Cooling Load and Cooling Energy Consumption: A Case Study in Urumqi
Abstract
:1. Introduction
2. Methodology
2.1. Description of the Synthetic Pipe-Embedded Envelope
2.2. Physical Model
2.3. Numerical Method and Validation
2.4. Evaluation Index
3. Results and Discussion
3.1. Temperature Distribution in the Envelope
3.2. Dynamic Heat Transfer with Different Cooling Sources
3.3. Seasonal Electricity Consumption under Different WWRs and Orientations
4. Conclusions
- In windows, cooling pipes can remove 60% of the solar radiation directly and only less than 15% of the radiation can transfer into the room. The insulated glass should be installed to the external skin of a pipe-embedded double window to reduce the heat dissipation. The pipe effectiveness η is around 60%.
- In walls, cooling pipes can reduce the internal surface temperature by more than 4 °C. The pipe-embedded wall becomes an efficient radiant cooling panel absorbing the heat from the room. The pipe effectiveness η is around 83%.
- The seasonal cooling energy consumption of the office with pipes is reduced by 25%–50%. A large WWR is acceptable with the cooling effect of pipes.
- The performance of GSHE is the best among the three sources in Urumqi. The effectiveness of DEC and IEC is also satisfactory, with an average energy saving rate of 27%. IEC can reduce more heat flux through the envelope, but it consumes more energy to provide the cooling water.
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
A | area, m2 |
E | electricity consumption, W/m2 |
q | heat gain, W/m2 |
Q | cooling load, W/m2 |
ε | electricity reduction rate of pipe-embedded envelope |
η | effectiveness of pipes |
Abbreviations | |
DEC | direct evaporative cooling |
DSF | double skin façade |
EER | energy efficiency ratio |
GSHE | ground-source heat exchanger |
IEC | indirect evaporative cooling |
WWR | window-to-wall ratio |
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Components | Internal Skin | External Skin | Venetian Blinds |
---|---|---|---|
Material | Double glazing | Stalinite | Aluminum alloy |
Thickness (mm) | 6 + 12 (air) + 6 | 9 | 2 |
Specific heat (J/kg·K) | 100 | 840 | 880 |
Density (kg/m3) | 1000 | 2200 | 2700 |
Heat conductivity coefficient (W/(m·K)) | 0.09 | 0.28 | 180 |
Transmissivity-SW 1 (%) | 65 | 86 | 0 |
Absorptivity-SW (%) | 17 | 7 | 80 |
Reflectivity-SW (%) | 18 | 7 | 20 |
Transmissivity-LW 2 (%) | 34 | 50 | 0 |
Absorptivity-LW (%) | 48 | 40 | 90 |
Reflectivity-LW (%) | 18 | 10 | 10 |
Materials | Cement Plaster | Crushed Stone Concrete | Expanded Perlite | Clay Brick |
---|---|---|---|---|
Thermal conductivity (W/(m·K)) | 0.93 | 1.51 | 0.065 | 0.81 |
Density (kg/m3) | 1800 | 2400 | 670 | 1800 |
Specific heat (J/(kg·K)) | 837 | 920 | 250 | 1050 |
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Shen, C.; Li, X. Potential of Utilizing Different Natural Cooling Sources to Reduce the Building Cooling Load and Cooling Energy Consumption: A Case Study in Urumqi. Energies 2017, 10, 366. https://doi.org/10.3390/en10030366
Shen C, Li X. Potential of Utilizing Different Natural Cooling Sources to Reduce the Building Cooling Load and Cooling Energy Consumption: A Case Study in Urumqi. Energies. 2017; 10(3):366. https://doi.org/10.3390/en10030366
Chicago/Turabian StyleShen, Chong, and Xianting Li. 2017. "Potential of Utilizing Different Natural Cooling Sources to Reduce the Building Cooling Load and Cooling Energy Consumption: A Case Study in Urumqi" Energies 10, no. 3: 366. https://doi.org/10.3390/en10030366
APA StyleShen, C., & Li, X. (2017). Potential of Utilizing Different Natural Cooling Sources to Reduce the Building Cooling Load and Cooling Energy Consumption: A Case Study in Urumqi. Energies, 10(3), 366. https://doi.org/10.3390/en10030366