Research on a Combined System with a Hybrid Solar Collector

Development, Energy and Resource Saving in the Chemical and Food Technologies
pp.
94-98
Анотація

The authors have developed a model of a system with a hybrid solar collector that can simultaneously produce thermal and electrical energy. The dependencies of heat transfer fluid temperature changes in the hybrid thermal photovoltaic solar collector on its solar radiation exposure time were obtained, and the patterns of their changes over time were characterized. Additionally, the temperature change of the heat transfer fluid in the thermal storage tank was studied.

Ключові слова (англійською)
Автор (співавтори)
Ім'я Прізвище Приналежність до організації E-mail Номер телефону ORCID ID Вчене звання, посада Адреса організації Внесок автора(ів) Приналежність до організації
Stepan
Mysak
s.mysak750@gmail.com
S.Bandera str.12
Концептуалізація
Робота з даними
Формальний аналіз
Lviv Polytechnic National University
Stepan
Shapoval
shapovalstepan@gmail.com
S.Bandera str.12
Залучення фінансування
Дослідження
Lviv Polytechnic National University
Anna
Hyvlyud
anna.hyvlyud@gmail.com
S.Bandera str.12
Методологія
Lviv Polytechnic National University
References

[1]     Bondarchuk, A. S., Gogolyuk, O. P., & Shulle, Yu. A. (2019). Study of the effectiveness of hybrid solar collectors as a source of electrical and thermal energy for a residential neighborhood of the city. Genetics and biotechnology: 14.

[2]     Zaitsev, R. V., Kirichenko, M. V., Minakova, K. O., & Styslo, B. O. (2022). Autonomous hybrid photovoltaic power plant with intelligent power selection system. 

[3]     Sharma, C., & Jain, A. (2014). Solar panel mathematical modelling using Simulink. International Journal of Engineering Research and Applications, 4(5), 67-72. URL: https://www.slideshare.net/Chandanivinny/j045046772

[4]     Boiarchuk, V., Syrotiuk, S., Syrotiuk, V., Ptashnyk, V., Baranovych, S., & Sheremeta, R. (2022). Моделювання фотоелектричної панелі в середовищі LabVIEW. Bulletin of Lviv National Environmental University. Agroengineering Research, (26), 71-76. DOI: 10.31734/agroengineering2022.26.071

[5]     Herrando, M., Coca-Ortegón, A., Guedea, I., & Fueyo, N. (2023). Experimental validation of a solar system based on hybrid photovoltaic-thermal collectors and a reversible heat pump for the energy provision in non-residential buildings. Renewable and Sustainable Energy Reviews, 178, 113233.

[6]     Mausam, K., Singh, S., Ghosh, S. K., Singh, R. P., & Tiwari, A. K. (2024). Experimental analysis of the thermal performance of traditional parallel tube collector (PTC) and cutting-edge spiral tube collector (STC): A comparative study for sustainable solar energy harvesting. Thermal Science and Engineering Progress, 47, 102295.

[7]     Rosales-Pérez, J. F., Villarruel-Jaramillo, A., Pérez-García, M., Cardemil, J. M., & Escobar, R. (2024). Techno-economic analysis of hybrid solar thermal systems with flat plate and parabolic trough collectors in industrial applications. Alexandria Engineering Journal, 86, 98-119.

[8]     Al-Rabeeah, A. Y., Seres, I., & Farkas, I. (2024). Experimental and numerical investigation of parabolic trough solar collector thermal efficiency enhanced by graphene–Fe3O4/water hybrid nanofluid. Results in Engineering, 101887.

[9]       Yang, H., Wang, X., & Yao, S. (2023). Thermodynamic analysis of a novel solar photovoltaic thermal collector coupled with switchable air source heat pump system. Applied Thermal Engineering, 218, 119410.

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