Amended Calculation of Solar Heat Gain Coefficient Based on the Escape of Incident Solar Radiation
Abstract
:1. Introduction
2. Amended Calculation Models
2.1. Solar Radiation Transfer Model in Multilayer Transmission System
2.2. Amended Energy Balance Model
3. Results and Discussion
3.1. The Optical Performance of the Transmission Systems
3.2. Original SGHC in Different Standards
3.3. Amended Calculation of SHGC
3.3.1. Subsubsection
3.3.2. Escape Rate Reference Value and Corresponding SHGC-Amended Factor
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
Season | Standard | Windows | Room Orientation | Original SHGC | Amended SHGC | Amended Factor |
---|---|---|---|---|---|---|
Summer | NFRC 200 | Single-glazing | South | 0.834 | 0.763 | 91.52% |
East | 0.783 | 93.86% | ||||
Double-glazing | South | 0.717 | 0.671 | 93.52% | ||
East | 0.684 | 95.33% | ||||
Triple-glazing | South | 0.625 | 0.593 | 94.98% | ||
East | 0.602 | 96.38% | ||||
ISO 15099 | Single-glazing | South | 0.830 | 0.759 | 91.43% | |
East | 0.779 | 93.80% | ||||
Double-glazing | South | 0.712 | 0.665 | 93.35% | ||
East | 0.678 | 95.20% | ||||
Triple-glazing | South | 0.621 | 0.589 | 94.82% | ||
East | 0.597 | 96.27% | ||||
JGJ/T 151 | Single-glazing | South | 0.815 | 0.742 | 91.06% | |
East | 0.762 | 93.53% | ||||
Double-glazing | South | 0.697 | 0.649 | 93.08% | ||
East | 0.663 | 95.00% | ||||
Triple-glazing | South | 0.606 | 0.574 | 94.60% | ||
East | 0.583 | 96.11% | ||||
Winter | ISO 15099 | Single-glazing | South | 0.811 | 0.743 | 91.58% |
East | 0.739 | 91.18% | ||||
Double-glazing | South | 0.695 | 0.650 | 93.54% | ||
East | 0.648 | 93.22% | ||||
Triple-glazing | South | 0.604 | 0.574 | 94.97% | ||
East | 0.572 | 94.73% | ||||
JGJ/T 151 | Single-glazing | South | 0.815 | 0.747 | 91.67% | |
East | 0.744 | 91.27% | ||||
Double-glazing | South | 0.697 | 0.652 | 93.57% | ||
East | 0.650 | 93.26% | ||||
Triple-glazing | South | 0.606 | 0.587 | 96.93% | ||
East | 0.585 | 96.61% |
Season | Standard | TransmissionSystems | Room Orientation | Original SHGC | Amended SHGC | Amended Factor |
---|---|---|---|---|---|---|
Summer | NFRC 200 | Double-glazing with external shading | South | 0.201 | 0.200 | 99.63% |
East | 0.201 | 99.79% | ||||
Double-glazing with internal shading | South | 0.281 | 0.279 | 99.39% | ||
East | 0.280 | 99.58% | ||||
ISO 15099 | Double-glazing with external shading | South | 0.231 | 0.230 | 99.47% | |
East | 0.230 | 99.57% | ||||
Double-glazing with internal shading | South | 0.356 | 0.355 | 99.65% | ||
East | 0.355 | 99.77% | ||||
JGJ/T 151 | Double-glazing with external shading | South | 0.221 | 0.220 | 99.41% | |
East | 0.220 | 99.52% | ||||
Double-glazing with internal shading | South | 0.338 | 0.336 | 99.45% | ||
East | 0.337 | 99.58% | ||||
Winter | ISO 15099 | Double-glazing with external shading | South | 0.210 | 0.209 | 99.52% |
East | 0.209 | 99.45% | ||||
Double-glazing with internal shading | South | 0.311 | 0.310 | 99.62% | ||
East | 0.310 | 99.54% | ||||
JGJ/T 151 | Double-glazing with external shading | South | 0.211 | 0.210 | 99.45% | |
East | 0.210 | 99.39% | ||||
Double-glazing with internal shading | South | 0.312 | 0.311 | 99.61% | ||
East | 0.311 | 99.53% |
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Standards | NFRC 200 [10] | ISO 15099 [17] | JGJ/T 151 [24] | ||
---|---|---|---|---|---|
Summer | Summer | Winter | Summer | Winter | |
°C | 32 | 30 | 0 | 30 | −20 |
°C | 24 | 25 | 20 | 25 | 20 |
15 | 8 | 20 | 16 | 16 | |
7.7 | 2.5 | 3.6 | 2.5 | 3.6 | |
783 | 500 | 300 | 500 | 300 |
Optical Performances | |||
---|---|---|---|
White glass 6 mm | 0.771 | 0.07 | 0.159 |
Shading | 0.25 | 0.63 | 0.12 |
Multilayer Transmission Systems | Single-Glazing | Double-Glazing | Triple-Glazing | Double-Glazing with External Shading | Double-Glazing with Internal Shading |
---|---|---|---|---|---|
0.771 | 0.597 | 0.464 | 0.161 | 0.161 | |
0.07 | 0.112 | 0.137 | 0.638 | 0.354 | |
0.159 | 0.291 | 0.399 | 0.202 | 0.486 |
Minimum | Maximum | Average | ||
---|---|---|---|---|
Summer | South | 6.51% | 14.64% | 10.09% |
East | 3.98% | 10.18% | 7.30% | |
Winter | South | 4.85% | 15.42% | 9.40% |
East | 6.69% | 12.21% | 9.85% |
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Lu, S.; Yang, D.; Huang, X.; Chen, T.; Wang, Z. Amended Calculation of Solar Heat Gain Coefficient Based on the Escape of Incident Solar Radiation. Energies 2024, 17, 5779. https://doi.org/10.3390/en17225779
Lu S, Yang D, Huang X, Chen T, Wang Z. Amended Calculation of Solar Heat Gain Coefficient Based on the Escape of Incident Solar Radiation. Energies. 2024; 17(22):5779. https://doi.org/10.3390/en17225779
Chicago/Turabian StyleLu, Shunyao, Dongfang Yang, Xiaoqing Huang, Tao Chen, and Zhengzhi Wang. 2024. "Amended Calculation of Solar Heat Gain Coefficient Based on the Escape of Incident Solar Radiation" Energies 17, no. 22: 5779. https://doi.org/10.3390/en17225779
APA StyleLu, S., Yang, D., Huang, X., Chen, T., & Wang, Z. (2024). Amended Calculation of Solar Heat Gain Coefficient Based on the Escape of Incident Solar Radiation. Energies, 17(22), 5779. https://doi.org/10.3390/en17225779