11. AE_2_2026_2(23)-119....pdf
Science ID: FQD-1225-0030
Mehrabi M., Goudarzi K., Davoodabadi Farahani S. Experimental study of the influence of pad angle on the thermal performance of a direct evaporative cooling system // Air-Conditioning and Refrigeration. – 2023. – Vol. 4, No. 1. – P. 88–100.
Jakubowski T., Boyacı S., Kocięcka J., Atılgan A. Determination of performance of different pad materials and energy consumption values of direct evaporative cooler // Energies. – 2024. – DOI: 10.3390/en17122811
Velasco-Gómez E., Tejero-González A., Rey-Martínez F. J. Experimental investigation of the potential of a new fabric-based evaporative cooling pad // Sustainability. – 2021. – DOI: 10.3390/su12177070.
Aziz R., Zamrud N., Rosli N. Comparison on cooling efficiency of cooling pad materials for evaporative cooling system // Journal of Modern Manufacturing Systems and Technology. – 2018. – Vol. 1. – P. 61–68. – DOI: 10.15282/jmmst.v1i1.199.
Niyomvas B., Potakarat B. Performance study of cooling pads // Advanced Materials Research. – 2013. – Vol. 664. – P. 931–935. – DOI: 10.4028/www.scientific.net/AMR.664.931
Djibrilla M. A. S., Abdoulkader H. A., Karimoun M., Illyassou, Aissetou Y., Adamou R. Performance of evaporative cooling pads made from different plant materials of Sub-Saharan Area (Niger) // LC International Journal of STEM. – 2021. – Vol. 2, No. 4. – DOI: 10.5281/zenodo.6412452.
Qiu G. Q., Riffat S. B. Novel design and modelling of an evaporative cooling system for buildings // Energy Research. – 2006. – Vol. 16, No. 2. – P. 38–56. – DOI: 10.1002/er.1199.
Al-Badri A. R., Farhan Z. M. A study on thermal effectiveness of multi-stage evaporative air cooling // Wasit Journal of Engineering Sciences. – 2021. – Vol. 8. – DOI: 10.31185/ejuow.Vol8.Iss2.163.
Velasco-Gómez E., Tejero-González A., Rey-Martínez F. J. Experimental characterization of a direct evaporative cooling system for air conditioning applications // Energy and Buildings. – 2012. – DOI: 10.1016/j.enbuild.2011.11.012.
Zhang P., Guo B., Wang L. An experimental study on the heat and mass transfer characteristics of an evaporative cooler // Energies. – 2023. – DOI: 10.3390/en16217330.
Gaeini M., Zondag H., Rindt C. Effect of kinetics on the thermal performance of a sorption heat storage reactor // Applied Thermal Engineering. – 2016. – Vol. 102. – P. 520–531. – DOI: 10.1016/j.applthermaleng.2016.03.055.
Xie X., He C., Xu T., Zhang B., Pan M., Chen Q. Deciphering the thermal and hydraulic performances of closed wet cooling towers with plain, oval, and longitudinal fin tubes // Applied Thermal Engineering. – 2017. – Vol. 120. – P. 203–218.
Zhou Y., Zhang P., Zhao J., Yang H., Bai Y. Experimental study on performance of a closed wet cooling tower for air wet-bulb temperature near 0 °C // Journal of Thermal Science. – 2019. – Vol. 28, No. 5. – P. 1015–1023. – DOI: 10.1007/s11630-018-1159-8.
Zhou Y., Zhu X., Ding X. Theoretical investigation on thermal performance of new structure closed wet cooling tower // Heat Transfer Engineering. – 2018. – Vol. 39. – P. 460–472.
Deng W., Sun F., Chen K., Zhang X. Numerical study on performance of hybrid mechanical draft wet cooling tower // International Journal of Heat and Mass Transfer. – 2023. – Vol. 201. – Art. 123574.
Komilov A. G‘., Reymov K. M., Nasrullayev Yu. Z. Bug‘lanishli sovitish tizimlari va an’anaviy maromlagichlarning Nukus iqlim sharoiti uchun solishtirma tahlili // Muqobil energetika. – 2025. – Vol. 23, No. 12. – P. 80–87.