研究目的
To explore the feasibility of using APC cooling technique and porous media for thermal management and efficiency enhancement of the PV module and coolant recovery.
研究成果
The APC cooling system effectively controlled the PV panel's temperature, improved electrical efficiency, and demonstrated good temperature uniformity. The system showed potential for enhancing PV panel performance, with significant improvements in power output and efficiency.
研究不足
The study was conducted under controlled laboratory conditions, which may not fully replicate real-world environmental variations. The long-term durability and cost-effectiveness of the APC cooling system in practical applications were not evaluated.
1:Experimental Design and Method Selection
An active phase change (APC) cooling system was designed and fabricated to explore the possibility of cooling the PV panel, using ethanol as the working fluid. The system included a modified PV module with a porous layer and an NCG flow duct.
2:Sample Selection and Data Sources
A commercial monocrystalline silicon PV panel was used, with detailed performance parameters provided by the manufacturer. Temperature and electrical performance data were collected under controlled laboratory conditions.
3:List of Experimental Equipment and Materials
Equipment included a solar simulator, rotor flow meter, anemometer, I-V curve tracer, K-type thermocouples, global pyranometer, multimeter, and thermal IR imager. Materials included ethanol as the working fluid and spunlaced non-woven fabric as the porous media.
4:Experimental Procedures and Operational Workflow
The coolant was fed by gravity, evaporated in the porous layer to absorb heat, and the vapor was condensed and collected for recycling. Temperature and electrical performance were recorded at steady state.
5:Data Analysis Methods
Data analysis included calculating average temperature, temperature distribution, electrical performance, and energy and exergy efficiencies. Statistical techniques and software tools were used for analysis.
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Anemometer
TESTO405-V1
Testo SE & Co. KGaA
Determines the flow rate of NCG in the duct.
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Global pyranometer
PSP
Eppley Laboratory, Inc
Measures the incident radiation.
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Solar simulator
XGFZ18
Shanghai Aojia Electronics Co., Ltd
Provides necessary solar irradiation in the testing of modified PV module.
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Rotor flow meter
LZB-3WB(F)
Changzhou Shuang Huan Thermo-technical Instrument Co., Ltd
Measures the coolant flow rate.
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I-V curve tracer
DS-100c
Daystar, Inc
Collects I-V curves of the PV module.
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K-type thermocouple
5 TC-TT-K-36-36
Omega Company
Measures the outlet temperature of the coolant.
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Multimeter
VC890C+
Shengsheng Shengli Technology Co., Ltd
Monitors the current and voltage of the DC fan.
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Thermal IR imager
SAT-90
Guangzhou SAT Infrared Technology Co., Ltd
Obtains IR images of PV module.
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