Effect Evaluation of Large-Scale Energy Saving Renovation of Rural Buildings in Beijing and Implications for Other Cities in the Same Zone
Abstract
:1. Introduction
2. Materials and Methods
2.1. Large-Scale Energy Saving Renovation of Rural Buildings in Beijing
2.1.1. District-Level Survey
2.1.2. Household Survey
2.1.3. Field Test
2.1.4. Simulation of Energy Consumption
2.1.5. Estimation of Pollutant Emission Reduction
2.2. Implication to Other Cities in Same Zone
3. Technical Measures of Energy-Saving Renovation
3.1. Single Insulation Energy Saving Renovation
3.2. Anti-Seismic and Energy-Saving Comprehensive Renovation
3.3. New Construction and Renovation
4. Results and Discussion
4.1. Basic Situation in Beijing
4.1.1. Energy-Saving Renovation Technical Measures
4.1.2. Indoor Thermal Comfort
4.1.3. Rural Household Satisfaction
4.1.4. Energy Consumption for Heating in Winter
4.1.5. Estimation of Pollutant Emission Reduction
4.2. Implication to Other Cities in Same Zone
5. Conclusions
- Beijing has established a long-term mechanism, with policy and demonstration as the guide, and investment as the guarantee. Regional implementation of the mechanism effectively promoted the rural housing anti-seismic and energy-saving livelihood projects. In the promoting process, Beijing has adopted a scientific and effective multi-sectoral coordination, work linkage mechanism and management service system, which has strong reference significance;
- The average energy-saving rate of the thermal insulation renovation of rural houses in Beijing is about 30.0%, and the average room temperature has increased by 2.6 °C after the renovation. The total proportion of farmers who are satisfied and very satisfied with the operation process, construction quality, energy-saving effect and self-financing expenses is over 80%, while the proportion of dissatisfied farmers is below 10%;
- The large-scale energy-saving renovation of rural buildings promoted in Beijing can save millions of tons of standard coal and a large amount of pollutant emissions each year, achieving significant economic, environmental and social benefits;
- The success of the energy-saving renovation of rural buildings in Beijing depends on the policy guidance and the relatively high economic level of Beijing;
- Beijing’s experience concerning the large-scale energy-saving renovation of rural building envelopes has further analysis, verification, and optimization in other similar climatic zones; The average energy-saving rate in the promoted cities can reach 30.0% and above. Therefore, this experience can be further promoted and implemented in more cities in cold climate zones, especially in “2 + 26” cities.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Survey District | DX | TZ | SY | FS | MTG | PG | HR | MY | YQ | CP | Total |
---|---|---|---|---|---|---|---|---|---|---|---|
Ratio | 12.6% | 15.6% | 17.4% | 12.6% | 0.7% | 10.9% | 5.2% | 8.9% | 7.7% | 8.3% | 100% |
Sampled household No. | 150 | 180 | 200 | 150 | 40 | 130 | 60 | 100 | 90 | 100 | 1200 |
Sampled villages No. | 5 | 6 | 8 | 8 | 7 | 2 | 5 | 3 | 5 | 3 | 52 |
District | Insulation Material | Thickness | Window Type |
---|---|---|---|
1 | EPS | 80 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
2 | EPS | ≥50 mm | Plastic steel/bridge-cut aluminum alloy/ordinary aluminum alloy hollow double glass |
3 | XPS | ≥50 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
4 | XPS | ≥50 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
5 | EPS | 70 mm | Plastic steel/bridge-cut aluminum alloy/ordinary aluminum alloy hollow double glass |
6 | EPS, XPS | 60~80 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
7 | EPS | 70 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
8 | EPS, XPS | 60 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
9 | EPS | ≥70 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
10 | XPS | 60 mm | Plastic steel/bridge-cut aluminum alloy hollow double glass |
Type | Renovation Type | Renovation Ratio | Simulation Value of Energy Saving Rate |
---|---|---|---|
Single renovation | North wall | 7% | 12% |
North, east and west walls | 5% | 19% | |
North wall, door and window renovation | 36% | 26% | |
North, east and west walls, door and window renovation | 53% | 31% | |
New construction and renovation | North wall | 1% | 12% |
North, east and west walls | 1% | 19% | |
North wall, door and window renovation | 18% | 26% | |
North, east and west walls, door and window renovation | 81% | 31% | |
Comprehensive renovation | North wall | 2% | 12% |
North, east and west walls | 3% | 19% | |
North wall, door and window renovation | 16% | 26% | |
North, east and west walls, door and window renovation | 80% | 31% |
Pollutant Type | PM2.5 (Ton) | CO (Ton) | CO2 (Million Ton) | SO2 (Ton) | NOx (Ton) |
---|---|---|---|---|---|
Baseline emissions | 17,900 | 323,000 | 12.74 | 6900 | 11,000 |
Current emission reduction amount | 2400 | 43,000 | 1.70 | 900 | 1500 |
Total emission reduction amount for future | 5000 | 91,500 | 3.60 | 2000 | 3100 |
No. | Rural House | Heat Transfer Coefficient, W/m2·K | |
---|---|---|---|
Testing Value | Average Value | ||
1 | House 1,two-story sloping roof rural house | 0.55 | 0.61 (EPS insulation with 55 mm thickness) |
2 | House 2, single-story sloping roof rural house | 0.60 | |
3 | House 3 and 4, two-story side-by-side building | 0.65 | |
4 | House 5, single-story sloping roof rural house | 0.64 | |
5 | House 6, two-story side-by-side building | 0.57 | 0.56 (EPS insulation with 60 mm thickness) |
6 | House 7, two-story side-by-side building | 0.54 | |
7 | House 8, before renovation for base line | 2.13 | 2.13 |
8 | House 9, before renovation for base line | 2.14 |
No. | Rural House | Heat Consumption Index before Renovation | Heat Consumption Index after Renovation | EER(%) |
---|---|---|---|---|
1 | House 1,two-story sloping roof rural house | 40.0 W/m2 | 25.9 W/m2 | 35.2% |
2 | House 2, single-story sloping roof rural house | 42.5 W/m2 | 26.4 W/m2 | 37.8% |
3 | House 3 and 4, two-story side-by-side building | 37.1 W/m2 | 24.9 W/m2 | 32.8% |
4 | House 5, single-story sloping roof rural house | 49.9 W/m2 | 34.9 W/m2 | 30.0% |
5 | House 6, two-story side-by-side building | 42.9 W/m2 | 24.97 W/m2 | 41.8% |
6 | House 7, two-story side-by-side building | 42.9 W/m2 | 24.50 W/m2 | 42.9% |
The average ratio | 36.8% |
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Deng, Q.; Shan, M.; Zhang, G.; Zhang, S.; Liu, Y.; Yang, X. Effect Evaluation of Large-Scale Energy Saving Renovation of Rural Buildings in Beijing and Implications for Other Cities in the Same Zone. Sustainability 2023, 15, 5580. https://doi.org/10.3390/su15065580
Deng Q, Shan M, Zhang G, Zhang S, Liu Y, Yang X. Effect Evaluation of Large-Scale Energy Saving Renovation of Rural Buildings in Beijing and Implications for Other Cities in the Same Zone. Sustainability. 2023; 15(6):5580. https://doi.org/10.3390/su15065580
Chicago/Turabian StyleDeng, Qinqin, Ming Shan, Guangchuan Zhang, Shengnan Zhang, Yanqing Liu, and Xudong Yang. 2023. "Effect Evaluation of Large-Scale Energy Saving Renovation of Rural Buildings in Beijing and Implications for Other Cities in the Same Zone" Sustainability 15, no. 6: 5580. https://doi.org/10.3390/su15065580
APA StyleDeng, Q., Shan, M., Zhang, G., Zhang, S., Liu, Y., & Yang, X. (2023). Effect Evaluation of Large-Scale Energy Saving Renovation of Rural Buildings in Beijing and Implications for Other Cities in the Same Zone. Sustainability, 15(6), 5580. https://doi.org/10.3390/su15065580