Enhancing photovoltaic panel efficiency with innovative cooling Technologies: An experimental approach

被引:5
|
作者
Nabil, Tamer [1 ]
Mansour, Tamer M. [1 ]
机构
[1] Suez Canal Univ, Fac Engn, Mech Engn Dept, Ismailia 41522, Egypt
关键词
Cooling system; Photovoltaic (PV); Efficiency; Thermoelectric cooler (TEC); Marble; Palm fibers; PHASE-CHANGE MATERIALS; SILICON SOLAR-CELL; PERFORMANCE; PV; TEMPERATURE; ENERGY; PARAMETERS; SYSTEMS;
D O I
10.1016/j.applthermaleng.2024.123846
中图分类号
O414.1 [热力学];
学科分类号
摘要
The increase in photovoltaic panel temperature brought on by solar radiation absorption lowers performance, power output, energy efficiency, and panel longevity (a rise in temperature of just one degree causes power drop of 0.41 %). In an effort to alleviate this problem, this thorough study multiple novel cooling strategies to enhance solar system efficiency, especially photovoltaic panels in Egyptian climates remote areas. The three main routines for photovoltaic panel cooling are contingent on the following techniques: (1) evaporative cooling using marble, (2) evaporative cooling using palm fibers with fan-assisted airflow, and (3) thermoelectric cooler modules. These materials that used in the studied system as coolants are characterized by, abundant local availability in nature and low cost, especially in Egypt. Every method has been designed with a control system. According to the study, starting the cooling process at the greatest temperature that is permitted-45 degrees C-produces the maximum energy output from photovoltaic panels while balancing the need for cooling and energy production. Using these cooling methods causes the average temperature to be lowered by 16, 11.62, and 9.8 degrees Celsius for thermoelectric, marble, and palm fiber cooling respectively while the voltage output is enhanced by 2.58, 0.94, and 0.7 V. The recorded values indicate 4.59 %, 3.95 %, 2.15 % increase in photovoltaic panel exit power and 25.29 %, 15.79 %, and 15.1 % increase in photovoltaic panel energy conversion efficiency when thermoelectric, marble, and palm fibers cooler modules are used, respectively. This study is a priceless resource for scholars looking to improve photovoltaic panel performance by executing efficient cooling strategies with annual costs 0.017, 0.02, 0.026, and 0.024 $/kWh and payback periods 1.69, 2.07, 2.71, and 2.48 years for reference panel, marble cooling panel, palm fiber cooling pane, and thermoelectric cooling panel respectively.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Innovative Hybrid Cooling Technologies
    Demakos, Peter G.
    POWER ENGINEERING, 2009, 113 (11) : 126 - +
  • [22] A Systematic Review for Enhancing Solar Photovoltaic System Efficiency by Reducing the Panel Temperature
    Raja, Mohammed Sanad
    Abid, Ahmed J.
    Al-Sagar, Zuhair S.
    2023 IEEE 3RD INTERNATIONAL CONFERENCE IN POWER ENGINEERING APPLICATIONS, ICPEA, 2023, : 77 - 81
  • [23] Enhancing data center cooling efficiency and ability: A comprehensive review of direct liquid cooling technologies
    Kong, Rui
    Zhang, Hainan
    Tang, Mingsheng
    Zou, Huiming
    Tian, Changqing
    Ding, Tao
    ENERGY, 2024, 308
  • [24] Enhancing Solar Photovoltaic System Efficiency: Recent Progress on Its Cooling Techniques
    Kumar, Vivek
    Gupta, Neeraj
    Yadav, Apurv
    Kumar, Nitesh
    Verma, Abhishek
    Kumar, Amit
    Dhasmana, Hrishikesh
    Jain, V. K.
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2024, 45 (08)
  • [25] Cooling of Photovoltaic Panel Equipped with Single Circular Heat Pipe: an Experimental Study
    Eshghi, H.
    Kahani, M.
    Zamen, M.
    RENEWABLE ENERGY RESEARCH AND APPLICATIONS, 2022, 3 (02): : 229 - 235
  • [26] Experimental analysis of innovative perforated heat sinks for enhanced photovoltaic efficiency
    Hudisteanu, Sebastian-Valeriu
    Chereches, Nelu-Cristian
    Turcanu, Florin-Emilian
    Hudisteanu, Iuliana
    Verdes, Marina
    Ancas, Ana-Diana
    ENERGY CONVERSION AND MANAGEMENT-X, 2025, 25
  • [27] An Innovative Approach to PMI Analysis and Enhancing Information Flow Efficiency
    Qiao, Hu
    Hu, Si-Bo
    Zhang, Li
    Li, Ji-Hang
    You, Liang
    IEEE ACCESS, 2023, 11 : 79861 - 79873
  • [28] Self-adaptive interfacial evaporation for high-efficiency photovoltaic panel cooling
    Li, Fuxiang
    Sui, Yunren
    Lin, Haosheng
    Sui, Zengguang
    Lee, Kwingfung
    Xie, Shangzhen
    Zeng, Weitao
    Ding, Zhixiong
    Yip, Hin-Lap
    Wu, Wei
    DEVICE, 2025, 3 (02):
  • [29] Improvement in electrical energy efficiency of solar photovoltaic panel by passive refrigeration cooling system
    Chandrasekar M.
    Rajkumar S.
    Varatharajulu M.
    International Journal of Energy and Water Resources, 2023, 7 (3) : 421 - 436
  • [30] Investigating the Effects of Cooling Options on Photovoltaic Panel Efficiency: State of the Art and Future Plan
    Ozkul, Feyzullah Behlul
    Kayabasi, Erhan
    Celik, Erdal
    Kurt, Huseyin
    Arcaklioglu, Erol
    2018 INTERNATIONAL CONFERENCE ON PHOTOVOLTAIC SCIENCE AND TECHNOLOGIES (PVCON), 2018,