Experimental Study on Low Carbonization of Green Building Based on New Membrane Structure Solar Sustainable Heat Collection
Abstract
:1. Introduction
2. Materials
2.1. Membrane Structure with Flat-Plate-Type Solar Collector
2.2. Thermal Performance Test System for Collectors
3. Methodology
3.1. Test Method
3.2. Thermal Performance Index
4. Results
4.1. Effective Transmission Absorption Area of the Collector
4.2. Collector Heat Loss
4.3. Experimental Test Results
5. Discussions
5.1. Calculation Conditions
5.2. Simulation Result
5.3. Simulation Validation
6. Conclusions
- The effective transmission absorption product of flat plate solar collectors with an ETFE membrane structure was theoretically derived, and the effect of different thicknesses of the ETFE membrane structure on the heat loss of the collector was analyzed. The double-layer transparent cover has better thermal insulation performance than the single-layer glass cover, and the convective heat exchange with the outside world is weaker, which can better maintain the internal temperature of the collector.
- Compared with ordinary single-layer glass flat plate solar collectors, ETFE film structured flat plate solar collectors have higher heat collection efficiency and lower heat loss coefficient. Under the standard mass flow rate, when the collector inlet mass temperature is equal to the ambient temperature, the maximum instantaneous heat collection efficiency of the ETFE film structured flat plate solar collector based on the light collection area is 72%. Its total heat loss coefficient is 3.94 W/(m2·K). The heat collection efficiency is 18.6% higher than that of ordinary flat plate collectors, and the heat loss is 27.3% lower.
- The instantaneous collector efficiency gradually increases by increasing the collector mass flow rate from 0.006 to 0.02 kg/(m2·s). However, the incremental magnitude gradually decreases, which is caused by the insufficient heat transfer due to the change of the mass flow state from laminar flow to turbulent flow in the collector tube after the mass flow rate increases.
- The numerical simulation verifies the mathematical model’s accuracy and proves high credibility. It is also deduced that when the thermal conductivity of the insulation material becomes more significant, or the thickness of the insulation material becomes smaller, the collector’s heat collection efficiency will show a continuous decrease trend, but the decrease rate will decrease. If the collector’s thermal performance needs to be improved, we should choose insulation materials with low thermal conductivity and large thickness.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Size (Material) | Parameters | Size (Material) |
---|---|---|---|
Dimension | 2000 × 1000 × 110 mm | Tube | 830 mm × 2 pcs |
Light harvesting area Ac | 1.85 m2 | Drain tube | 1700 mm × 8 pcs |
ETFE film cover | 2000 × 1000 × 2 mm | Pitch | 120 mm |
Distance between ETFE film cover and glass cover | 30 mm | Insulation layer | Glass wool composite insulation material |
Glass cover | 1950 × 950 × 5 mm super white fabric tempered glass | Insulation layer thickness | 40 mm |
Glass cover plate heat transfer coefficient (reference value) | 2.2 W/(m2·K) | Collector shell | Aluminized board |
Glass cover plate and heat-absorbing plate spacing | 30 mm | Weight | 25 kg |
Heat-absorbing surface | High selective absorption coating | Interface specification | G1/2 male thread |
Heat-absorbing plate | Copper and aluminum composite plate | Number of interfaces | 2 pcs |
Heat collector tube | Purple copper | Workpiece capacity | 0.8 L |
Heat collector tube outer diameter | 18 mm | Bonding agent | Ethylene/vinyl acetate copolymer (EVA) |
Thickness of collector tube | 0.5 mm | - |
Instrument | Uncertainty Percentage | Measurement Range | Type (Model) |
---|---|---|---|
Thermocouple | ±0.1% | −200–350 °C | Copper–copper T type Thermocouple |
Solar irradiator | ±0.5% | 0–2000 W/m2 | RS485 |
Flowmeter | ±1% | 0.03–3 m3/h | YNRC |
Anemometer | ±3% | 0.5–45 m/s | TSI 8360 |
Data collector | - | - | Agilent 34970A |
Air Interlayer Thickness | Top Thermal Resistance Rt (t) | Top Heat Transfer Coefficient Ut (t) | Total Heat Transfer Coefficient U | The Reduction Compared to Ordinary Collectors |
---|---|---|---|---|
10 mm | 0.2908 | 3.4388 | 5.5388 | 16.47% |
20 mm | 0.3347 | 2.9877 | 4.0877 | 27.42% |
30 mm | 0.3786 | 2.6413 | 3.7413 | 35.84% |
Parameters | Aluminum | Copper | ETFE Film | Glass | Polyurethane | Air |
---|---|---|---|---|---|---|
Density | 2770 | 8800 | 1750 | 2220 | 30 | 1.23 |
Specific thermal capacity | 875 | 420 | 1050 | 890 | 1700 | 1006.43 |
Thermal conductivity | 177 | 401 | 0.32 | 1.20 | 0.04 | 0.02 |
Reflectance | 0.08 | 0.08 | 0.02 | 0.07 | - | - |
Transmittance | - | - | 0.95 | 0.92 | - | - |
RMSD (%) | ETFE Membrane Collector | General Collector |
---|---|---|
Collector outlet mass temperature | 0.65 | 0.81 |
Temperature on the inside of the cover | 4.57 | 4.31 |
Temperature on the outside of the cover | 1.24 | 0.98 |
Thermal storage tank temperature | 1.46 | 1.82 |
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Sheng, J.; Qi, D.; Yan, H.; Wang, W.; Wang, T. Experimental Study on Low Carbonization of Green Building Based on New Membrane Structure Solar Sustainable Heat Collection. Sustainability 2022, 14, 16629. https://doi.org/10.3390/su142416629
Sheng J, Qi D, Yan H, Wang W, Wang T. Experimental Study on Low Carbonization of Green Building Based on New Membrane Structure Solar Sustainable Heat Collection. Sustainability. 2022; 14(24):16629. https://doi.org/10.3390/su142416629
Chicago/Turabian StyleSheng, Jianhao, Dianwei Qi, Hongchao Yan, Wanjiang Wang, and Tao Wang. 2022. "Experimental Study on Low Carbonization of Green Building Based on New Membrane Structure Solar Sustainable Heat Collection" Sustainability 14, no. 24: 16629. https://doi.org/10.3390/su142416629
APA StyleSheng, J., Qi, D., Yan, H., Wang, W., & Wang, T. (2022). Experimental Study on Low Carbonization of Green Building Based on New Membrane Structure Solar Sustainable Heat Collection. Sustainability, 14(24), 16629. https://doi.org/10.3390/su142416629