Experimental Study on a Photovoltaic Direct-Drive and Municipal Electricity-Coupled Electric Heating System for a Low-Energy Building in Changchun, China
Abstract
:1. Introduction
- Firstly, the solar radiation-related parameter monitoring system was built to test the power generation performance of the photovoltaic system under typical climate conditions.
- According to the experimental building conditions of the school, two kinds of heating cable mode (AC/DC switching heating cable, AC/DC synthetic heating cable) were set up in the test room, and the power generation and heating characteristics under typical working conditions were obtained.
- Through TRNSYS dynamic simulation calculation, the dynamic characteristics and energy consumption of the heating system under the coupling mode of the two heating cables and mains in the heating period were determined, and their economy is briefly compared.
2. Theoretical Model of the PVDD and GC Electric Heating System
2.1. Photovoltaic Surface Radiation Intensity
2.2. Intensity of Direct Solar Radiation
2.3. Intensity of Sky-Scattered Radiation
2.4. Ground-Scattered Radiation Intensity
2.5. Photovoltaic Panel Output Power
2.6. The Calculation of the Photovoltaic Conversion Efficiency
2.7. Load Calculation of the Experimental Room
3. The Establishment of the PVDD and GC Electrical Heating System
3.1. System Structure and Working Mode
- (1)
- When the solar irradiation intensity is high, the DC power is sufficient, and the photovoltaic direct current alone provides electric energy for the indoor heating device.
- (2)
- When the solar radiation intensity and the DC power are insufficient and the photovoltaic direct current alone is not enough to meet the indoor temperature demand, the photovoltaic direct current supplies the indoor heating device, while the municipal AC power provides part of the electric power, and the photovoltaic direct current and AC power supply the heating terminal device at the same time.
- (3)
- At night (or on overcast days), when the irradiation intensity is zero or very poor and there is no DC power, the indoor heating load is solely borne by the municipal AC power.
3.2. Construction of the Experimental PVDD and GC Electric Heating System
- 1.
- Project profile
- 2.
- Photovoltaic panel selection
- 3.
- Inverter selection
- 4.
- Heating cables
3.3. Determination of Solar Radiation Intensity
4. Research and Analysis of the System Heating Performance
4.1. Photovoltaic Power Generation System
4.2. Heating System
5. Results and Analysis
5.1. AC/DC Switching Heating Cable Mode
5.2. AC/DC Synthetic Heating Cable Mode
6. System Simulation Results
6.1. Power Generation and Radiation Intensity
6.2. Comparative Analysis of Temperature
6.3. Electricity Consumption Analysis
7. Comparison of Test Results
System Economic Performance Analysis
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Type | Construction | Heat Transfer Coefficient (W/(m2·K) |
---|---|---|
External wall | 190 mm aerated concrete block + 80 mm thick rock wool + 140 mm thick benzene board + 50 mm thick thermal insulation mortar + exterior finish | 0.1 |
Roof | 200 mm reinforced concrete roof + 300 mm EPS insulation board | 0.1 |
Window | Three-glass two-chamber double low-E argon- filled insulating glass and warm edge spacer | 1.0 |
Roofing | 200 mm reinforced concrete roof + 300 mm EPS insulation board | 0.1 |
Type | Parameter |
---|---|
Type | SFM-450 W |
Peak power (Pmax) | 450 W |
Peak voltage (Vmp) | 41 V |
Open-circuit voltage (Voc) | 49.6 V |
Peak current (Imp) | 10.98 A |
Short-circuit current (Isc) | 11.53 A |
External dimensions | 2094×1034×35×35 mm |
Type | Parameter |
---|---|
Type | GW6000-DNS-30 |
Maximum efficiency | 97.1% |
Maximum output current | 28.8 A |
Rated output voltage | 220 V |
Rated output power | 6000 W |
Type | Cable Length (m) | Rated Power (W/m) | Cable Spacing (mm) | Covered Area (m2) |
---|---|---|---|---|
Value | 1776 | 17 | 113 | 20 |
Heating Mode | Total Electricity Consumption (kWh) | Alternating Current Power (kWh) | Direct Current Power (kWh) |
---|---|---|---|
AC/DC switching heating cable mode | 4017.12 | 2043.16 | 1973.96 |
AC/DC synthetic heating cable mode | 4034.15 | 1110.71 | 2923.44 |
Project Name | Specification | Total Price (RMB) |
---|---|---|
Photovoltaic panel | Single-crystal silicon 450 W | 4680 |
Grid-connected inverter | GW6000-DNS-30-6 kW | 1650 |
Heating cable | AC/DC switching/synthesis | 4800 |
Distribution box | Power protection, switching circuit | 7500 |
Construction | Wiring, construction, and installation | 1750 |
Total cost | 20,380 |
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Zhao, Q.; Liu, X.; Gu, S.; Tao, J.; Wu, W.; Ma, S.; Jin, H. Experimental Study on a Photovoltaic Direct-Drive and Municipal Electricity-Coupled Electric Heating System for a Low-Energy Building in Changchun, China. Energies 2024, 17, 2048. https://doi.org/10.3390/en17092048
Zhao Q, Liu X, Gu S, Tao J, Wu W, Ma S, Jin H. Experimental Study on a Photovoltaic Direct-Drive and Municipal Electricity-Coupled Electric Heating System for a Low-Energy Building in Changchun, China. Energies. 2024; 17(9):2048. https://doi.org/10.3390/en17092048
Chicago/Turabian StyleZhao, Qi, Xiaoyue Liu, Shijie Gu, Jin Tao, Wende Wu, Shuang Ma, and Hongwen Jin. 2024. "Experimental Study on a Photovoltaic Direct-Drive and Municipal Electricity-Coupled Electric Heating System for a Low-Energy Building in Changchun, China" Energies 17, no. 9: 2048. https://doi.org/10.3390/en17092048
APA StyleZhao, Q., Liu, X., Gu, S., Tao, J., Wu, W., Ma, S., & Jin, H. (2024). Experimental Study on a Photovoltaic Direct-Drive and Municipal Electricity-Coupled Electric Heating System for a Low-Energy Building in Changchun, China. Energies, 17(9), 2048. https://doi.org/10.3390/en17092048