Retrofit Analysis of City-Scale Residential Buildings in the Hot Summer and Cold Winter Climate Zone
Abstract
:1. Introduction
2. Methods
2.1. Data Collection and Building Classification
2.2. Baseline Model Establishment
2.3. ECM Identification
2.4. Retrofit Model Establishment
2.5. Economic Analysis
3. Results
3.1. Baseline Models of Residential Buildings in Changsha
3.2. Building Envelope Retrofitting
3.3. Lighting System Retrofitting
3.4. AC System Retrofitting
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Case | Building Type | Year Built | Footprint (Million m2) | Number of Buildings |
---|---|---|---|---|
1 | High-rise residential | Pre-2001 | 1.6 | 2626 |
2 | High-rise residential | 2002–2009 | 2.1 | 2991 |
3 | High-rise residential | 2010 and After | 2.7 | 3533 |
4 | High-rise residential–shops | Pre-2001 | 0.2 | 297 |
5 | High-rise residential–shops | 2002–2009 | 0.5 | 483 |
6 | High-rise residential–shops | 2010 and After | 0.4 | 447 |
7 | Mid-rise residential | Pre-2001 | 4.7 | 8441 |
8 | Mid-rise residential | 2002–2009 | 3.5 | 6631 |
9 | Mid-rise residential | 2010 and After | 2.4 | 4306 |
10 | Mid-rise residential–shops | Pre-2001 | 0.8 | 1147 |
11 | Mid-rise residential–shops | 2002–2009 | 0.7 | 880 |
12 | Mid-rise residential–shops | 2010 and After | 0.3 | 363 |
13 | Low-rise residential | Pre-2001 | 2.2 | 5735 |
14 | Low-rise residential | 2002–2009 | 2.2 | 6530 |
15 | Low-rise residential | 2010 and After | 2.8 | 7586 |
16 | Low-rise residential–shops | Pre-2001 | 0.5 | 620 |
17 | Low-rise residential–shops | 2002–2009 | 0.4 | 484 |
18 | Low-rise residential–shops | 2010 and After | 0.5 | 491 |
Case | Building Type | Year Built | Number of Buildings | Footprint (Million m2) | Floor Area (Million m2) |
---|---|---|---|---|---|
1 | High-rise apartment | Pre-2001 | 2923 | 1.88 | 17.4 |
2 | 2001–2010 | 3474 | 2.59 | 34.9 | |
3 | 2010 and After | 3980 | 3.09 | 56.0 | |
4 | Mid-rise apartment | Pre-2001 | 9588 | 5.47 | 28.8 |
5 | 2001–2010 | 7511 | 4.15 | 22.6 | |
6 | 2010 and After | 4669 | 2.73 | 15.2 |
ECMs | Study | |||||||
---|---|---|---|---|---|---|---|---|
[29] | [37] | [38] | [39] | [40] | [41] | [42] | [43] | |
Insulating roof or wall | √ | √ | √ | √ | √ | √ | √ | √ |
Replacing window | √ | √ | √ | √ | √ | √ | √ | √ |
Replacing door | × | × | × | × | √ | × | √ | × |
Using high-efficiency HVAC systems | √ | √ | √ | √ | √ | × | √ | √ |
Changing lighting system | × | √ | √ | √ | √ | × | √ | × |
Reducing air leakage | × | × | × | √ | √ | × | × | × |
Using renewable energy | × | × | √ | × | √ | × | √ | √ |
Utilizing energy-saving device | × | √ | √ | × | √ | √ | √ | × |
Lowering the heating set point temperature | × | × | × | √ | × | × | √ | × |
Increasing the cooling set point temperature | × | × | × | √ | × | × | × | × |
Adding window shading | √ | × | √ | √ | × | × | × | × |
Scenario | Construction | Indicator | Limit Values in Standards |
---|---|---|---|
1 | Exterior wall | U-value (W/(m2·K)) | ≤0.6 |
2 | Roof | U-value (W/(m2·K)) | ≤0.4 |
3 | window | U-value (W/(m2·K)) | ≤2.0 |
SHGC | ≤0.3 | ||
4 | Shading | Overhang depth (m) | - |
5 | Air sealing | Flow per exterior surface area (m3/(m2·s)) | ≤4.2 × 10−4 |
6 | Light | LPD (W/m2)) | ≤5.0 |
7 | Air condition | Cooling COP | 3.20 |
Heating COP | 2.40 |
Construction | Input Parameters |
---|---|
Exterior wall | EPS thickness |
Roof | EPS thickness |
Window | U value, SHGC |
Shading | Overhang depth |
Air sealing | Flow per exterior surface area |
Light | LPD |
Air condition | Cooling COP, heating COP |
Construction | Material Information | ||||||
---|---|---|---|---|---|---|---|
Exterior wall | Year built | Indicator | Settings | Measure | Specification | Material price | |
Baseline | Retrofit | ||||||
Pre-2001 | W/(m2·K) | 1.96 | 0.36 | Adding EPS layers | 80 mm | 42.07 CNY/m2 | |
2001–2010 | 1 | 0.39 | 60 mm | 34.15 CNY/m2 | |||
2010 and After | 0.8 | 0.39 | 50 mm | 30.19 CNY/m2 | |||
Roof | Pre-2001 | W/(m2·K) | 1.66 | 0.29 | Adding EPS layers | 90 mm | 46.03 CNY/m2 |
2001–2010 | 0.8 | 0.34 | 65 mm | 36.13 CNY/m2 | |||
2010 and After | 0.5 | 0.34 | 35 mm | 24.25 CNY/m2 | |||
Window | Pre-2001 | W/(m2·K) | 6.6 | 1.60 | Replacing existing windows with low-e glazing | 5+12Ar+ 5Low-e+ 12Ar+5low-e | 139 CNY/m2 |
2001–2010 | 3.2 | ||||||
2010 and After | 2.8 | ||||||
Pre-2001 | SHGC | 0.85 | 0.287 | ||||
2001–2010 | 0.48 | ||||||
2010 and After | 0.34 | ||||||
External shading | Pre-2001 | m | 0 | 0.75 | Adding 90° overhang to windows facing south | 504 CNY/m | |
2001–2010 | |||||||
2010 and After | |||||||
Air sealing | Pre-2001 | m3/(m2·s) | 0.001 | 0.004 | Adding PVC sealing strip | 60 CNY/m | |
2001–2010 | |||||||
2010 and After | |||||||
Light | Pre-2001 | W/(m2) | 7 | 5 | Replacing existing lights with LED | 7.5 CNY/m2 | |
2001–2010 | 7 | ||||||
2010 and After | 6 | ||||||
Air condition | Pre-2001 | Cooling/ Heating COP | 2.2/1 | 3.2/2.4 | Replacing existing air condition with high-efficiency air condition | 9000 CNY/h | |
2001–2010 | 2.3/1.9 | ||||||
2010 and After | 2.9/2.2 |
Building Type | Year Built | Construction | Energy-Saving Analysis | Economic Analysis | |||
---|---|---|---|---|---|---|---|
EUI (kWh/m2) | Energy-Savings (kWh/m2) | ESP (%) | PBP (Year) | NPV (Billion CNY) | |||
High-rise apartments | Pre–2001 | Exterior wall | 61.19 | 1.51 | 2.41 | 25 | −0.17 |
Roof | 61.85 | 0.85 | 1.36 | 15 | −0.005 | ||
Window | 53.53 | 9.17 | 14.63 | 7 | 0.83 | ||
Shading | 59.43 | 3.27 | 5.21 | 23 | −0.29 | ||
Air sealing | 61.50 | 1.19 | 1.91 | 45 | −0.39 | ||
2001–2010 | Exterior wall | 51.51 | 0.26 | 0.51 | 145 | −0.73 | |
Roof | 51.44 | 0.34 | 0.65 | 21 | −0.001 | ||
Window | 50.44 | 1.33 | 2.58 | 32 | −0.36 | ||
Shading | 48.45 | 3.33 | 6.43 | 19 | 0.003 | ||
Air sealing | 51.09 | 0.69 | 1.33 | 66 | −0.70 | ||
2010 and After | Exterior wall | 42.41 | 4.16 | 8.94 | 9 | 2.06 | |
Roof | 42.45 | 4.12 | 8.84 | 1 | 3.25 | ||
Window | 42.73 | 0.13 | 8.26 | 242 | −1.01 | ||
Shading | 39.93 | 6.64 | 14.27 | 9 | 3.20 | ||
Air sealing | 42.40 | 4.17 | 8.96 | 11 | 1.83 | ||
Mid-rise apartments | Pre–2001 | Exterior wall | 77.99 | 7.29 | 8.54 | 5 | 1.28 |
Roof | 82.52 | 2.76 | 3.24 | 8 | 3.30 | ||
Window | 73.81 | 11.47 | 13.45 | 3 | 2.59 | ||
Shading | 78.09 | 7.19 | 8.43 | 12 | 0.39 | ||
Air sealing | 84.79 | 0.49 | 0.57 | 125 | −0.99 | ||
2001–2010 | Exterior wall | 60.23 | 10.98 | 15.42 | 4 | 2.53 | |
Roof | 68.81 | 2.41 | 3.38 | 7 | 0.43 | ||
Window | 68.78 | 2.43 | 3.41 | 11 | 0.28 | ||
Shading | 66.49 | 4.73 | 6.64 | 19 | 0.007 | ||
Air sealing | 70.59 | 0.62 | 0.87 | 100 | −0.72 | ||
2010 and After | Exterior wall | 54.23 | 3.10 | 5.41 | 12 | 0.32 | |
Roof | 56.70 | 0.63 | 1.11 | 18 | 0.003 | ||
Window | 57.31 | 0.02 | 0.04 | 1364 | −0.26 | ||
Shading | 54.26 | 3.07 | 5.36 | 27 | −0.12 | ||
Air sealing | 57.31 | 0.02 | 0.04 | 2632 | −0.57 |
Case | Construction | Energy-Saving Analysis | Economic Analysis | |||
---|---|---|---|---|---|---|
EUI (kWh/m2) | Energy-Savings (kWh/m2) | ESP (%) | PBP (Year) | NPV (Billion CNY) | ||
1 | Light | 58.97 | 3.73 | 5.95 | 5 | 0.40 |
2 | 47.79 | 3.98 | 7.69 | 5 | 1.28 | |
3 | 41.06 | 5.51 | 11.84 | 4 | 3.83 | |
4 | 80.65 | 4.63 | 5.43 | 4 | 0.90 | |
5 | 61.55 | 9.66 | 13.57 | 2 | 2.42 | |
6 | 55.64 | 1.69 | 2.95 | 12 | 0.18 |
Case | Construction | Energy-Saving Analysis | Economic Analysis | |||
---|---|---|---|---|---|---|
EUI (kWh/m2) | Energy-Savings (kWh/m2) | ESP (%) | PBP (Year) | NPV (Billion CNY) | ||
1 | AC | 51.41 | 11.29 | 18.00 | 26 | −1.33 |
2 | 45.42 | 6.35 | 12.27 | 39 | −2.67 | |
3 | 40.99 | 5.58 | 11.97 | 43 | −3.97 | |
4 | 76.10 | 9.18 | 10.76 | 36 | −3.53 | |
5 | 64.89 | 6.32 | 8.87 | 53 | −3.00 | |
6 | 55.83 | 1.50 | 2.61 | 215 | −2.70 |
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Ji, Y.; Li, G.; Su, F.; Chen, Y.; Zhang, R. Retrofit Analysis of City-Scale Residential Buildings in the Hot Summer and Cold Winter Climate Zone. Energies 2023, 16, 6152. https://doi.org/10.3390/en16176152
Ji Y, Li G, Su F, Chen Y, Zhang R. Retrofit Analysis of City-Scale Residential Buildings in the Hot Summer and Cold Winter Climate Zone. Energies. 2023; 16(17):6152. https://doi.org/10.3390/en16176152
Chicago/Turabian StyleJi, Yanfei, Guangchen Li, Fanghan Su, Yixing Chen, and Rongpeng Zhang. 2023. "Retrofit Analysis of City-Scale Residential Buildings in the Hot Summer and Cold Winter Climate Zone" Energies 16, no. 17: 6152. https://doi.org/10.3390/en16176152
APA StyleJi, Y., Li, G., Su, F., Chen, Y., & Zhang, R. (2023). Retrofit Analysis of City-Scale Residential Buildings in the Hot Summer and Cold Winter Climate Zone. Energies, 16(17), 6152. https://doi.org/10.3390/en16176152