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ISSIQ IQLIM SHAROITIDA NAM TO‘QIMACHILIK QATLAMI YORDAMIDA FOTOELEKTR MODULNING PASSIV BUG‘LATIB SOVITILISHINI MATEMATIK MODELLASHTIRISH

Fan yo'nalishi:Energetika muhandisligi va energiya texnologiyasiQayta tiklanadigan energiya, barqarorlik va atrof -muhit
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16. AE_2_2026_2(23)-170....pdf

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MAQOLA ANNOTATSIYASI

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Abstract. Introduction. The increase in the operating temperature of photovoltaic (PV) modules under intense solar radiation leads to a reduction in electrical efficiency and accelerates material degradation. In hot and arid climates, passive cooling techniques that do not require additional energy consumption are of particular interest. Methods and Materials. A one-dimensional steady-state mathematical model of passive evaporative cooling for a photovoltaic module employing a wet textile layer attached to the rear surface of the panel was developed. The model is based on the coupled analysis of heat conduction within the multilayer structure of the photovoltaic module, evaporative mass transfer, and the psychrometric properties of humid air. The calculations take into account ambient air temperature, relative humidity, humidity ratio, barometric pressure, airflow velocity, and the temperature dependence of photovoltaic conversion efficiency. Results. For the climatic conditions of Tashkent, with an ambient air temperature of 40 °C and a relative humidity of 20%, the wet-bulb temperature was determined to be approximately 24 °C. Based on heat-conduction equations, the temperature of the silicon layer of the photovoltaic module was found to decrease to approximately 26 °C. The resulting actual module efficiency was estimated at about 13.6%, which is close to the nominal design efficiency of 14%. Conclusion. The obtained results demonstrate that the application of a wet capillary-porous textile layer is an effective method of passive evaporative cooling for photovoltaic modules. The proposed approach reduces temperature-induced losses in photovoltaic energy conversion without additional energy consumption and is particularly promising for solar energy systems operating in

MUALIFLAR

Science ID: DQD-0525-0019

Science ID: FQD-0525-0069

Science ID: MQD-0525-0091

Science ID: FSD-0525-0080

Teglar

# температура# модель# эффективность# модуль# теплопроводность# слой# влажный# пассивное# фотоэлектрический# испарительное# охлаждение# текстильный# математическая# мокрого# термометра# кремниевый# энергетическая

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