Research on Technology System Adaptability of Nearly Zero-Energy Office Buildings in the Hot Summer and Cold Winter Zone of China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Determination of Climate Zones and Typical Cities
2.2. Office Building Description
2.3. Baseline Modeling and Energy Simulation
2.3.1. Model Establishment and Parameter Setting
2.3.2. Energy Simulation Results for Baseline Buildings in Different Cities (Sub-Climate Zones)
2.4. Optimization of Technical System and Energy-Saving Rate of Nearly Zero-Energy Office Buildings
2.4.1. Optimization of Technology System of Nearly Zero-Energy Office Buildings
2.4.2. Energy-Saving Rate and Renewable Energy Utilization Rate
3. Results and Discussion
3.1. Adaptability of Passive Technologies in Different Sub-Climatic Zones
3.1.1. Orthogonal Experiment Design
3.1.2. Recommended Thermal Performance Parameters for Envelopes
3.2. Adaptability of Active Technologies in Different Sub-Climatic Zones
3.3. Adaptability of Renewable Energy in Different Sub-Climatic Zones
3.4. Determination of Technology Systems for Nearly Zero-Energy Office Buildings
- For the CT zone, the appropriate heat insulation of the exterior wall and the use of high-efficiency, heat-insulating windows can reduce the heat losses considering the cold winter. The value of WWR should be taken as 0.30, the value of KWALL should be taken as 0.20 W/(m2·K), the value of KROOF should be taken as 0.15 W/(m2·K), and the value of KWIN should be taken as 1.00 W/(m2·K);
- For the HSCWC zone, the building envelope should be designed and applied according to the local climate characteristics of different zones considering the summer sun protection and winter heat collection. The building envelope should adopt appropriate parameters. WWR takes the value of 0.30, KWALL takes the value of 0.20 W/(m2·K), KROOF takes the value of 0.25 W/(m2·K), and KWIN takes the value of 1.00 W/(m2·K);
- For the HSWWT zone, to facilitate indoor heat dissipation in the summer night and reduce the air-conditioning load, WWR takes the value of 0.30, KWALL takes the value of 0.30 W/(m2·K), KROOF takes the value of 0.25 W/(m2·K), and KWIN takes the value of 1.00 W/(m2·K).
4. Conclusions
- Passive technologies are greatly affected by the complexity and diversity of climates. The thermal performance of the envelope in different sub-climatic zones plays an extremely important role in realizing nearly zero-energy office buildings, with windows having the greatest impact. Subsequently, based on orthogonal experiments, the optimal envelope thermal parameters and WWR for different sub-climatic zones were obtained. The results of this study found optimal performance parameters of the building envelop for different climate zones, which suggests the relevance of climate sub-division for the HSCW zone, especially in terms of the adaptability of passive technologies in different climate zones;
- Optimizing active technology is also a way to realize nearly zero-energy consumption. In this study, according to the main energy use of office buildings in lighting, heating, and cooling, ED, HR, and TS were selected. A comparison of the technology systems in different sub-climatic zones reveals the same rate of energy savings. This suggests that the energy savings of active technologies are mainly dependent on equipment efficiency and system control;
- Renewable energy applications are vital for achieving nearly zero-energy office buildings. In this research, GSHP, ASHP, and BIPV were selected as renewable energy technologies that could be applied in office buildings. GSHP was more applicable to the CT zone, and ASHP was more applicable to the HSWWT zone. In HSCWC zones, both GSHP and ASHP were suitable. In addition, BIPV significantly reduced electrical energy consumption. In the HSCWC zone, by integrating ED and BIPV, the electricity consumption was only 5.43 kWh/m2/a. Most renewable energy technologies can be rationally utilized based on the local resource conditions to achieve nearly zero-energy office buildings.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter Category | Particular Description | |
---|---|---|
Envelop | WWR | 0.4 |
KWALL | 0.40 W/(m2·K) | |
KROOF | 0.35 W/(m2·K) | |
KWIN | 2.2 W/(m2·K) | |
District heating | Winter: on (temperature maintained constant at 20 °C) | 1 December to 28 February |
Winter: off | 1 March to 30 November | |
District cooling | Summer: on (temperature maintained constant at 26 °C) | 1 June to 30 September |
Summer: off | 1 October to 31 May | |
Ventilation | Mechanical ventilation | 1.00 ACH |
Infiltration | 0.60 ACH | |
Lighting | Maximum power consumption | 9.00 W/m2 |
Luminous energy conversion efficiency | 25% of electricity can be converted into luminous | |
Schedule | 8:00 a.m.–18:00 p.m. |
Room Type | Floor Space per Capita (m2) | Room Occupancy Rate (%) | Equipment Power Density (W/m2) | Equipment Utilization Rate (%) | Lighting Power Density (W/m2) | Lighting on Hours (h/month) |
---|---|---|---|---|---|---|
Office | 10.0 | 32.7 | 13.0 | 32.7 | 9.0 | 240.0 |
Intensive office | 4.0 | 32.7 | 20.0 | 32.7 | 15.0 | 240.0 |
Meeting rooms | 3.3 | 16.7 | 5.0 | 61.8 | 9.0 | 180.0 |
Lobby foyer | 20.0 | 33.3 | 0.0 | 0.0 | 5.0 | 270.0 |
Lounge | 3.3 | 16.7 | 0.0 | 0.0 | 5.0 | 150.0 |
Equipment room | 0.0 | 0.0 | 0.0 | 0.0 | 5.0 | 0.0 |
Technology | Efficient Measures | Nomenclature | Technical Specification |
---|---|---|---|
Passive technologies | Window-to-wall ratio | WWR | 0.4 |
Wall insulation | WI | K = 0.35 W/m2·K | |
Roof insulation | RI | K = 0.30 W/m2·K | |
Window insulation | DI | K = 1.5 W/m2·K | |
Active technologies | Fresh air heat recovery system | HR | Effectiveness: 75% |
Efficient lighting device | ED | LED lighting with 40% electricity consumption reduction | |
Temperature sensor | TS | Temperature set decrease to 21 °C in winter | |
Renewable energy technologies | Air-source heat pump | ASHP | Heat capacity of 18.7 kW, COP: 3.4 |
Ground-source heat pump | GSHP | Heat capacity of 18.7 kW, COP: 3.4 | |
Building-integrated photovoltaics | BIPV | A = 2700 m2, Tilt angle 25°, 28.9 kWp, PV electricity generation efficiency: 18.8% |
Zone | Technology System | Passive Technologies | Active Technologies | Renewable Energy Technologies | |||||||
---|---|---|---|---|---|---|---|---|---|---|---|
CT | C-SYST01 | √ | √ | √ | |||||||
C-SYST02 | √ | √ | √ | √ | √ | ||||||
C-SYST03 | √ | √ | √ | √ | √ | √ | √ | ||||
C-SYST04 | √ | √ | √ | √ | √ | √ | √ | ||||
C-SYST05 | √ | √ | √ | √ | √ | √ | √ | √ | √ | √ | |
HSCWC | HC-SYST01 | √ | √ | √ | |||||||
HC-SYST02 | √ | √ | √ | √ | √ | ||||||
HC-SYST03 | √ | √ | √ | √ | √ | √ | √ | ||||
HC-SYST04 | √ | √ | √ | √ | √ | √ | √ | √ | |||
HC-SYST05 | √ | √ | √ | √ | √ | √ | √ | √ | √ | √ | |
HSWWT | HW-SYST01 | √ | √ | √ | |||||||
HW-SYST02 | √ | √ | √ | √ | √ | ||||||
HW-SYST03 | √ | √ | √ | √ | √ | √ | √ | ||||
HW-SYST04 | √ | √ | √ | √ | √ | √ | √ | √ | |||
HW-SYST05 | √ | √ | √ | √ | √ | √ | √ | √ | √ | √ |
Zone | Technology System | Energy Consumption for Heating and Cooling (kWh/m2/a) | Energy Consumption for Electricity (kWh/m2/a) | Primary Energy Consumption (kWh/m2/a) |
---|---|---|---|---|
CT | Baseline | 107.21 | 38.86 | 146.01 |
C-SYST01 | 87.63 | 38.86 | 126.49 | |
C-SYST02 | 65.59 | 24.72 | 90.31 | |
C-SYST03 | 31.92 | 38.86 | 70.78 | |
C-SYST04 | 40.32 | 38.86 | 79.18 | |
C-SYST05 | 18.65 | 11.97 | 30.62 | |
HSCWC | Baseline | 111.33 | 38.80 | 150.13 |
HC-SYST01 | 85.21 | 38.80 | 124.01 | |
HC-SYST02 | 61.43 | 24.66 | 86.09 | |
HC-SYST03 | 38.11 | 38.80 | 76.91 | |
HC-SYST04 | 33.00 | 38.80 | 71.80 | |
HC-SYST05 | 15.68 | 5.43 | 21.11 | |
HSWWT | Baseline | 106.38 | 38.75 | 145.18 |
HW-SYST01 | 80.65 | 38.75 | 119.40 | |
HW-SYST02 | 63.48 | 24.61 | 88.09 | |
HW-SYST03 | 38.83 | 38.75 | 77.58 | |
HW-SYST04 | 32.14 | 38.75 | 70.89 | |
HW-SYST05 | 19.49 | 9.01 | 28.50 |
Working Conditions | WWR (A) | KWALL (B) W/(m2·K) | KROOF (C) W/(m2·K) | KWIN (D) W/(m2·K) |
---|---|---|---|---|
1 | 1 | 1 | 1 | 1 |
2 | 1 | 2 | 3 | 2 |
3 | 1 | 3 | 2 | 3 |
4 | 2 | 1 | 3 | 3 |
5 | 2 | 2 | 2 | 1 |
6 | 2 | 3 | 1 | 2 |
7 | 3 | 1 | 2 | 2 |
8 | 3 | 2 | 1 | 3 |
9 | 3 | 3 | 3 | 1 |
Factors | Level 1 | Level 2 | Level 3 |
---|---|---|---|
WWR(A) | 0.50 | 0.40 | 0.30 |
KWALL (B) W/(m2·K) | 0.40 | 0.30 | 0.20 |
KROOF (C) W/(m2·K) | 0.35 | 0.25 | 0.15 |
KWIN (D) W/(m2·K) | 2.00 | 1.50 | 1.00 |
(a) Working Conditions | Factors | Load Index (kWh/m2) | |||||
---|---|---|---|---|---|---|---|
A | B | C | D | Heating Load | Cooling Load | Total Load | |
1 | 1 | 1 | 1 | 1 | 9.98 | 56.33 | 66.31 |
2 | 1 | 2 | 3 | 2 | 4.63 | 51.67 | 56.30 |
3 | 1 | 3 | 2 | 3 | 0.84 | 50.46 | 51.30 |
4 | 2 | 1 | 3 | 3 | 0.35 | 45.24 | 45.59 |
5 | 2 | 2 | 2 | 1 | 6.75 | 49.20 | 55.95 |
6 | 2 | 3 | 1 | 2 | 4.18 | 48.14 | 52.32 |
7 | 3 | 1 | 2 | 2 | 3.16 | 42.82 | 45.98 |
8 | 3 | 2 | 1 | 3 | 0.43 | 42.03 | 42.46 |
9 | 3 | 3 | 3 | 1 | 2.06 | 41.49 | 43.55 |
(b) Working Conditions | Factors | Load Index (kWh/m2) | |||||
A | B | C | D | Heating Load | Cooling Load | Total Load | |
1 | 1 | 1 | 1 | 1 | 11.49 | 62.06 | 73.55 |
2 | 1 | 2 | 3 | 2 | 6.11 | 56.32 | 62.43 |
3 | 1 | 3 | 2 | 3 | 2.24 | 54.41 | 56.65 |
4 | 2 | 1 | 3 | 3 | 6.36 | 52.43 | 58.79 |
5 | 2 | 2 | 2 | 1 | 8.07 | 53.92 | 61.99 |
6 | 2 | 3 | 1 | 2 | 5.59 | 52.34 | 57.93 |
7 | 3 | 1 | 2 | 2 | 4.53 | 46.79 | 51.32 |
8 | 3 | 2 | 1 | 3 | 1.80 | 45.52 | 47.32 |
9 | 3 | 3 | 3 | 1 | 3.36 | 45.31 | 48.67 |
(c) Working Conditions | Factors | Load Index (kWh/m2) | |||||
A | B | C | D | Heating Load | Cooling Load | Total Load | |
1 | 1 | 1 | 1 | 1 | 6.53 | 58.72 | 65.25 |
2 | 1 | 2 | 3 | 2 | 1.17 | 53.43 | 54.6 |
3 | 1 | 3 | 2 | 3 | 2.35 | 51.85 | 54.2 |
4 | 2 | 1 | 3 | 3 | 2.73 | 46.74 | 49.47 |
5 | 2 | 2 | 2 | 1 | 3.32 | 51.26 | 54.58 |
6 | 2 | 3 | 1 | 2 | 0.50 | 49.90 | 50.4 |
7 | 3 | 1 | 2 | 2 | 0.36 | 44.65 | 45.01 |
8 | 3 | 2 | 1 | 3 | 2.69 | 43.62 | 46.31 |
9 | 3 | 3 | 3 | 1 | 1.29 | 43.19 | 44.48 |
(a) | K-Value | A | B | C | D |
---|---|---|---|---|---|
Heating load | K1 | 5.15 | 4.50 | 4.86 | 6.26 |
K2 | 3.76 | 3.94 | 3.58 | 3.99 | |
K3 | 1.88 | 2.36 | 2.35 | 0.54 | |
Cooling load | K1 | 52.82 | 48.13 | 48.83 | 49.01 |
K2 | 47.53 | 47.63 | 47.49 | 47.54 | |
K3 | 42.11 | 46.70 | 46.13 | 45.91 | |
Total load | K1 | 57.97 | 52.63 | 53.70 | 55.27 |
K2 | 51.29 | 51.57 | 51.08 | 51.53 | |
K3 | 44.00 | 49.06 | 48.48 | 46.45 | |
(b) | K-Value | A | B | C | D |
Heating load | K1 | 6.61 | 7.46 | 6.29 | 7.64 |
K2 | 6.67 | 5.33 | 4.95 | 5.41 | |
K3 | 3.23 | 3.73 | 5.28 | 3.47 | |
Cooling load | K1 | 52.82 | 57.60 | 53.76 | 53.31 |
K2 | 47.53 | 52.90 | 51.92 | 51.71 | |
K3 | 42.11 | 45.87 | 50.69 | 51.35 | |
Total load | K1 | 57.60 | 53.76 | 53.31 | 53.76 |
K2 | 52.90 | 51.92 | 51.35 | 51.82 | |
K3 | 45.87 | 50.69 | 51.71 | 50.79 | |
(c) | K-Value | A | B | C | D |
Heating load | K1 | 3.35 | 3.21 | 3.24 | 3.71 |
K2 | 2.18 | 2.39 | 2.01 | 0.68 | |
K3 | 1.45 | 1.38 | 1.73 | 2.59 | |
Cooling load | K1 | 54.67 | 50.04 | 50.75 | 51.06 |
K2 | 49.30 | 49.44 | 49.25 | 49.33 | |
K3 | 43.82 | 48.31 | 47.79 | 47.40 | |
Total load | K1 | 58.02 | 53.24 | 53.99 | 54.77 |
K2 | 51.48 | 49.69 | 49.52 | 50.00 | |
K3 | 46.58 | 51.83 | 51.26 | 49.99 |
CT Zone | HSCWC Zone | HSWWT Zone | |
---|---|---|---|
WWR | 0.30 | 0.30 | 0.30 |
KWALL | 0.20 W/(m2·K) | 0.20 W/(m2·K) | 0.30 W/(m2·K) |
KROOF | 0.15 W/(m2·K) | 0.25 W/(m2·K) | 0.25 W/(m2·K) |
KWIN | 1.00 W/(m2·K) | 1.00 W/(m2·K) | 1.00 W/(m2·K) |
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Jia, X.; Zhang, H.; Yao, X.; Yang, L.; Ke, Z.; Yan, J.; Huang, X.; Jin, S. Research on Technology System Adaptability of Nearly Zero-Energy Office Buildings in the Hot Summer and Cold Winter Zone of China. Sustainability 2023, 15, 13061. https://doi.org/10.3390/su151713061
Jia X, Zhang H, Yao X, Yang L, Ke Z, Yan J, Huang X, Jin S. Research on Technology System Adaptability of Nearly Zero-Energy Office Buildings in the Hot Summer and Cold Winter Zone of China. Sustainability. 2023; 15(17):13061. https://doi.org/10.3390/su151713061
Chicago/Turabian StyleJia, Xueying, Hui Zhang, Xin Yao, Lei Yang, Zikang Ke, Junle Yan, Xiaoxi Huang, and Shiyu Jin. 2023. "Research on Technology System Adaptability of Nearly Zero-Energy Office Buildings in the Hot Summer and Cold Winter Zone of China" Sustainability 15, no. 17: 13061. https://doi.org/10.3390/su151713061
APA StyleJia, X., Zhang, H., Yao, X., Yang, L., Ke, Z., Yan, J., Huang, X., & Jin, S. (2023). Research on Technology System Adaptability of Nearly Zero-Energy Office Buildings in the Hot Summer and Cold Winter Zone of China. Sustainability, 15(17), 13061. https://doi.org/10.3390/su151713061