Consideration of Thermal Comfort, Daylighting Comfort, and Life-Cycle Decarbonization in the Retrofit of Kindergarten Buildings in China: A Case Study
Abstract
:1. Introduction
1.1. Background
1.2. Literature Review
1.2.1. Study on the Thermal Comfort of Children
1.2.2. Study on the Daylighting Comfort of Children
1.2.3. Energy Conservation and Emission Reduction of Kindergarten Buildings
1.3. Research Gaps and Main Contributions
2. Methodology
2.1. Information Acquisition and Evaluation before Retrofit Design
2.1.1. Information about the Thermal Comfort of Occupants
2.1.2. Information on Occupant Daylighting Comfort
2.1.3. Information on Weather Data, Occupant Scheduling Data, and Material Data
2.1.4. Information on the Original Building Envelope and Energy System
2.2. Optimization Calculation for the Comprehensive Optimal Scheme
2.2.1. Selection of Optimization Objectives and Variables
2.2.2. Model Establishment and Parameter Setting
2.2.3. Fast Optimization Calculation
3. Case Study
3.1. Case Information
3.2. Information Acquisition and Evaluation of the Case Kindergarten
3.3. Design Optimization of the Case Kindergarten Building
4. Results and Discussion
4.1. Analysis of the Research Results
4.2. Comparison with Similar Studies
4.3. Analysis of Research Limitations and Prospects for Future Directions
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameters | Values (Building 1) |
---|---|
Number of floors | 2 |
Number of classrooms per floor | 5 |
Floor height (m) | 3.5 |
Building area (m2) | 321 |
Total floor area (m2) | 664.8 |
Classroom length and width (m) | 6.4 |
Total number of children | 183 |
Number of teachers | 32 |
Vacation | Winter vacation: 31 January to 26 February Summer vacation: 1 July to 31 August |
Occupied period (weekdays) | 8:00–16:00 |
Seasons | Activity Types | Values [clo] |
---|---|---|
Summer | Play activities | 0.31 |
Classes | ||
Meals | ||
Noon break | 0.33 | |
Winter | Play activities | 1.52 |
Classes | ||
Meals | ||
Noon break | 1.80 |
Grades Parameters | 1 | 2 | 3 |
---|---|---|---|
Height [cm] | 101.3 | 107.6 | 115.1 |
Weight [kg] | 18.2 | 19.4 | 22.5 |
Basic metabolic rate [W/m2] | 62.5 | 60.2 | 58.0 |
Metabolic rate during the various activities [W/m2] | Play activities: 187.5 | Play activities: 180.6 | Play activities: 174 |
Classes: 90.6 | Classes: 87.3 | Classes: 84.1 | |
Meals: 154.4 | Meals: 148.7 | Meals: 143.3 | |
Noon break: 63.1 | Noon break: 60.8 | Noon break: 58.6 |
Grades | Average Number of People in Each Class | Play Activities | Classes | Meals | Noon Break |
---|---|---|---|---|---|
1 | 18 | 8:00–9:00; 10:00–11:30; | 9:00–10:00; 14:00–15:00 | 11:30–12:30 | 12:30–14:00 |
2 | 24 | 9:00–10:00; 15:00–16:00 | 8:00–9:00; 10:00–11:30; 14:00–15:00 | ||
3 | 24 |
Parameters | Main Materials and Thickness | Performance Indicator Value |
---|---|---|
External wall | Main material: concrete bricks + cement mortar + ceramic tile Total thickness: 240 mm | U value = 1.636 |
Floor | Main material: floated coat + concrete + plasterboard Total thickness: 150 mm | U value = 2.322 |
Roof | Main material: concrete + cement mortar + waterproof roll + artificial turf Total thickness: 300 mm | U value = 0.510 |
External window (sliding window) | Outside layer: clear_3 mm; middle layer: air, 6 mm; inside layer: clear, 3 mm | U value = 3.159; SHGC = 0.762; VT = 0.812 |
No. | Optimization Variables | Value Range |
---|---|---|
X1 | External wall insulation | EPS board: 20–50 mm (interval: 5 mm) |
X2 | External roof insulation | EPS board: 30–70 mm (interval: 5 mm) |
X3 | Glass types of the different facade windows (double-paned window; filling gas: air, 6 mm) | Outer/Inner glass: clear, 3 mm; clear, 6 mm; bronze, 3 mm; bronze, 6 mm; gray, 3 mm; gray, 6 mm; green, 3 mm; green, 6 mm |
X4 | WWR of the different facades | South: 0.2–0.8 (interval: 0.1) |
North: 0.2–0.8 (interval: 0.1) | ||
East: 0.2–0.8 (interval: 0.1) | ||
West: 0.2–0.8 (interval: 0.1) | ||
X5 | Fixed sunshades for the windows in the facades | South (overhanging depth): 0–2.0 m (interval: 0.1 m) |
X6 | Cooling set point in the classrooms during each activity period | Play activities: 24 °C–30 °C (interval: 0.5 °C) |
Classes: 24 °C–30 °C (interval: 0.5 °C) | ||
Meals: 24 °C–30 °C (interval: 0.5 °C) | ||
Noon break: 24 °C–30 °C (interval: 0.5 °C) | ||
X7 | Heating set point in the classrooms during each activity period | Play activities: 16 °C–22 °C (interval: 0.5 °C) |
Classes: 16 °C–22 °C (interval: 0.5 °C) | ||
Meals: 16 °C–22 °C (interval: 0.5 °C) | ||
Noon break: 16 °C–22 °C (interval: 0.5 °C) | ||
X8 | Proportion of the roof photovoltaic area | 0–1 (interval: 0.001) |
Parameters | Values |
---|---|
5220 kg CO2/t | |
135 kg CO2/t | |
500 kg CO2/t | |
600 kg CO2/t | |
600 kg CO2/t | |
600 kg CO2/t | |
158 kg CO2/m2 | |
0.59 kgCO2/kWh | |
50 | |
0.1 | |
0.3 | |
0.3 |
Hyperparameters | Optimal Values |
---|---|
Sample size | 1700 |
Solver | lbfgs |
Activation function | tanh |
Hidden layer sizes | (18, 12, 6) |
Hidden layer numbers | 3 |
Initial learning rate | 0.1 |
Maximum number of iterations | 20,000 |
MRE (%) | 0.98 |
R2 | 0.991 |
No. | Optimization Variables | Comprehensive Optimal Scheme | Benchmark Scheme |
---|---|---|---|
X1 | External insulation of wall | EPS board: 30 mm | EPS board: 30 mm |
(Total U value of the wall = 0.670) | (Total U value of the wall = 0.670) | ||
X2 | External insulation of roof | EPS board: 30 mm | EPS board: 30 mm |
(Total U value of the roof = 0.362) | (Total U value of the roof = 0.362) | ||
X3 | Glass types of different facade windows (double-paned window; filling gas: Air_6 mm) | Outer glass: bronze, 6 mm; | Outer glass: clear, 3 mm; |
Inner glass: gray, 6 mm | Inner glass: clear, 3 mm | ||
(U value = 3.111; SHGC = 0.442; VT = 0.526) | (U value = 3.159; SHGC = 0.762; VT = 0.812) | ||
X4 | WWR of different facades | South: 0.4 | South: 0.6 |
North: 0.4 | North: 0.6 | ||
East: 0.2 | East: 0.4 | ||
West: 0.2 | West: 0.4 | ||
X5 | Fixed sunshades for windows on south facade | Overhanging depth: 2.0 m | Overhanging depth: 2.0 m |
X6 | Cooling set point in classrooms of each activity period | Play activities: 25.5 °C | 26 °C |
Classes: 30 °C | |||
Meals: 25.5 °C | |||
Noon break: 30 °C | |||
X7 | Heating set point in classrooms of each activity period | Play activities: 16.5 °C | 18 °C |
Classes: 22 °C | |||
Meals: 16.5 °C | |||
Noon break: 17.5 °C | |||
X8 | Proportion of the roof photovoltaic area | 1 | 1 |
41.2% | 38.5% | ||
92.6% | 12.9% | ||
−4205.89 kWh | −2155.73 kWh | ||
−2481.48 kg | −1271.88 kg | ||
−9647.4 kg | 24,510.9 kg |
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Hu, K.; Xu, C.; Li, W.; Ye, J.; Yang, Y.; Xu, Y. Consideration of Thermal Comfort, Daylighting Comfort, and Life-Cycle Decarbonization in the Retrofit of Kindergarten Buildings in China: A Case Study. Buildings 2024, 14, 2703. https://doi.org/10.3390/buildings14092703
Hu K, Xu C, Li W, Ye J, Yang Y, Xu Y. Consideration of Thermal Comfort, Daylighting Comfort, and Life-Cycle Decarbonization in the Retrofit of Kindergarten Buildings in China: A Case Study. Buildings. 2024; 14(9):2703. https://doi.org/10.3390/buildings14092703
Chicago/Turabian StyleHu, Kai, Chao Xu, Wenjun Li, Jing Ye, Yankai Yang, and Yizhe Xu. 2024. "Consideration of Thermal Comfort, Daylighting Comfort, and Life-Cycle Decarbonization in the Retrofit of Kindergarten Buildings in China: A Case Study" Buildings 14, no. 9: 2703. https://doi.org/10.3390/buildings14092703
APA StyleHu, K., Xu, C., Li, W., Ye, J., Yang, Y., & Xu, Y. (2024). Consideration of Thermal Comfort, Daylighting Comfort, and Life-Cycle Decarbonization in the Retrofit of Kindergarten Buildings in China: A Case Study. Buildings, 14(9), 2703. https://doi.org/10.3390/buildings14092703