SUVNING BUG‘LANISH JARAYONIGA SiO 2 NANOZARRALARINING TA’SIRI
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Ushbu maqolada chiziqli o‘lchami 16 nm bo‘lgan SiO 2 nanozarralari va suvdan tashkil topgan nanosuyuqlikning sirtiy
bug‘lanish paytidagi massa almashinuv jarayoni eksperimental tadqiqot natijalari taqdim etilgan. Nanosuyuqliklardagi
nanozarralarning turli massaviy (0.05, 0.1, 0.2, 0.3, 0.4, 0.5, 1, 3, 5)% konsentratsiyalarda bug‘lanish tezligi o‘zgarmas bosim
va 40 0C temperaturada STA PT1600 (LINSEIS) sinxron termal analizatorda o‘rganildi. Tadqiqot natijalaridan ma’lum
bo‘ldiki, barcha o‘rganilgan konsentratsiyalar uchun asos suyuqligi bo‘lgan suv va nanosuyuqlikning massa almashinuv
jarayoni chiziqli qonuniyatga bo‘ysinadi. SiO 2 nanozarralari o‘zlarining asosiy suyuqligi ya’ni suvning bug‘lanish tezligini,
0.1 % massaviy konsentratsiyagacha kamaytirishi kuzatildi, ammo nanozarrachalarning suvdagi oraliq konsentratsiyasida 0.5
% massaviy konsentratsiyagacha bug‘lanish tezligini oshib, nanozarralarning yuqori, 1 % massaviy konsentratsiyalaridan
keyin, o‘zgarmasligi aniqlandi.
1. Erbil H.Y. Evaporation of pure liquid sessile and spherical suspended drops: A review. Adv. Colloid Interface.Sci. 2012,
170, 67–86.
2. Deegan R.D. Pattern formation in drying drops. Phys. Rev. E 2000, 61, 475–485.
3. Sefiane K.,Wilson S.K., David S., Dunn G.J., Duy B.R. On the efect of the atmosphere on the evaporation of sessile
droplets of water. Phys. Fluids 2009, 21, 062101.
4. Meng S., Meng X., Fan W., Liang D., Wang L., Zhang W., Liu Y. The role of transparent exopolymer particles (TEP) in
membrane fouling: A critical review. Water Res. 2020, 181, 115930.
5. Wang R., Fan W., Liu X., Fan W., Liang D., Cai W. Efect of magnesium ion on polysaccharide fouling. Chem. Eng. J.
2020, 379, 122351.
6. Yao X., Zhang H., Lemckert Ch., Brook A., Schouten P. Evaporation reduction by suspended and floating covers:
overview, modelling and efficiency, Urban Water Security Research Alliance Technical Australia, 2010, pp. 1-23.
7. Coleman M. Review and discussion on the evaporation rate of brines, mundijong, 2000, pp. 1-12.
8. Ali H., Madramootoo C.A. and Abdel Gwad S. Evaporation model of lake qaroun as influenced by lake salinity. Irrigation
And Drainage, 2001, 50, 9–17.
9. Chen R.H., Phuoc T.X. and Martello D., Effects of nanoparticles on nanofluid droplet evaporation. International Journal
of Heat and Mass Transfe, 2010, 53, 3677-3682.
10. Madhusoodanan M.R., Sajith V. and Sobhan C.B. “Experimental Investigation of Phase Change Phenomena in
Nanofluids” Thermal Engineering Heat Transfer Summer Conference, Canada, 2007, 859-863.
11. Sefiane K. and Bennacer R. Nanofluids droplets evaporation kinetics and wetting dynamics on rough heated substrates.
Advances in Colloid and Interface Science, 2009,147–148, 263–271.
12. Payzullayev A.N., Gafurova M.V., Allayev B.A., Tellyayev S.K., Mirzayev S.Z. Nanosuyuqlikning qovushqoqligi va
barqarorligining kremniy dioksidi nanozarrachalari chiziqli o‘lchamiga bog‘liqligi. SamDU ilmiy axborotnomasi, 2022-
yil, 3-son 171-175.
13. Gan Y. and Qiao L. Evaporation characteristics of fuel droplets with the addition of nanoparticles under natural and
forced convections. International Journal of Heat and Mass Transfer, 2011,54, 4913–4922.
14. Dominguez-Ontiveros E., Fortenberry S. and Hassan Y.A. Experimental observations of flow modifications in nanofluid
boiling utilizing particle image velocimetry. Nuclear Engineering and Design, 2010, 240, 299–304.
15. Wen D. Mechanisms of thermal nanofluids on enhanced critical heat flux (CHF). International Journal of Heat and Mass
Transfer, 2008, 51, 4958–4965.
16. Xuan Y. and Li Q. Heat transfer enhancement of nanofluids. Heat Fluid Flow, 2000, 21, 58– 64.
17. Nazarov A.D., Miskiv N.B., Bochkareva E.M. // J. Phys. Conf. Ser. 2018. Vol. 1105. 012095.
18. Prime R.B., Bair H.E., Vyazovkin S., Gallagher P.K., Riga A. Thermogravimentric analysis (TGA). In Thermal Analysis
of Polymers: Fundamentals and Applications; Menczel J., Prime R., Eds.; JohnWiley & Sons, Inc.: New Jersey, NJ, USA,
2009.
19. Zareei M., Yoozbashizadeh H., Hosseini H.R.M. Investigating the e ects of pH, surfactant and ionic strength on the
stability of alumina/water nanofluids using DLVO theory. J. Therm. Anal. Calorim. 2018, 135,1185–1196.
20. Brown M.E. Introduction to Thermal Analysis: Techniques and Applications; Kluwer Academic Publishers: Boston, MA,
USA, 2001.
21. Rahman R., Hamdan S., Hui J.L.C. Differential Scanning Calorimetry (DSC) and Thermogravimetric Analysis (TGA)
of Wood polymer nanocomposites. MATEC Web Conf. 2017, 87, 03013.
22. Kazuo Hisatake, Satoko Tanaka, Youko Aizawa; Evaporation rate of water in a vessel. Journal of Applied Physics 1 June
1993; 73 (11): 7395–7401.
23. Mohammad Moghiman, Bentolhoda Aslani, Influence of nanoparticles on reducing and enhancing evaporation mass
transfer and its efficiency, International Journal of Heat and Mass Transfer, Volume 61, 2013, Pages 114-118.
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