(Publisher of Peer Reviewed Open Access Journals)

International Journal of Advanced Technology and Engineering Exploration (IJATEE)

ISSN (Print):2394-5443    ISSN (Online):2394-7454
Volume-8 Issue-82 September-2021
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Paper Title : Effect of moisture and sonication time on dielectric strength and heat transfer performance of transformer oil based Al2O3 nanofluid
Author Name : S. Ravi Babu, N.V.A Ravi Kumar and P. Ramesh Babu
Abstract :

The dielectric breakdown strength of transformer oil plays an important role in the performance of transformers. The presence of moisture and excess heat in the transformer oil degrade its performance. In this study, the effect of moisture and sonication time on dielectric strength, stability, and heat transfer performance is investigated experimentally. Nanofluids are the colloidal homogenous suspensions, prepared by dispersing the nanoparticles (< 100 nm) in the required quantity. Nanoparticles consist of good thermo-physical properties like thermal conductivity, specific heat, etc. By dispersing nanoparticles into base fluids, nanofluid shows improved properties compared to base fluids. Al2O3 nanoparticles based nanofluid is a proven heat transfer fluid for the applications like automobile radiators, electronic cooling, nuclear cooling, etc. So, in the present study, transformer oil - Al2O3 nanofluid is considered to study the effect of moisture on the heat transfer performance and breakdown strength. Results indicated that the performance of transformer oil nanofluid was decreased with an increase in the moisture content present in it. Also, breakdown voltage and heat transfer coefficient were maximum at 0.1% volume fraction of nanofluid.

Keywords : Dielectric strength, Nanofluid, Moisture, Sonication time, Heat transfer.
Cite this article : Babu SR, Kumar NR, Babu PR. Effect of moisture and sonication time on dielectric strength and heat transfer performance of transformer oil based Al2O3 nanofluid. International Journal of Advanced Technology and Engineering Exploration. 2021; 8(82):1222-1233. DOI:10.19101/IJATEE.2021.874258.
References :
[1]Fernández I, Valiente R, Ortiz F, Renedo CJ, Ortiz A. Effect of TiO2 and ZnO nanoparticles on the performance of dielectric nanofluids based on vegetable esters during their aging. Nanomaterials. 2020; 10(4):1-18.
[Crossref] [Google Scholar]
[2]Farade RA, Wahab NI, Mansour DE, Azis NB, Jasni JB, Veerasamy V, et al. Investigation of the effect of sonication time on dispersion stability, dielectric properties, and heat transfer of graphene based green nanofluids. IEEE Access. 2021; 9:50607-23.
[Crossref] [Google Scholar]
[3]Xu F, Wang H, Xing S, Tang M, Zhang H, Wang Y. Seeking optimized transformer oil-based nanofluids by investigation of the modification mechanism of nano-dielectrics. Journal of Materials Chemistry C. 2020; 8(22):7336-43.
[Crossref] [Google Scholar]
[4]Rafiq M, Shafique M, Anam A, Ateeq M. Transformer oil-based nanofluid: the application of nanomaterials on thermal, electrical and physicochemical properties of liquid insulation-a review. Ain Shams Engineering Journal. 2021; 12(1):555-76.
[Crossref] [Google Scholar]
[5]Bhatt M, Bhatt P. A review on electrical characteristics of nanofluid based transformer oil. Indian Journal of Science and Technology. 2019; 12(27):1-20.
[Crossref] [Google Scholar]
[6]Suhaimi SN, Rahman AR, Din MF, Hassan MZ, Ishak MT, Jusoh MT. A review on oil-based nanofluid as next-generation insulation for transformer application. Journal of Nanomaterials. 2020.
[Crossref] [Google Scholar]
[7]Lv YZ, Li C, Sun Q, Huang M, Li CR, Qi B. Effect of dispersion method on stability and dielectric strength of transformer oil-based TiO2 nanofluids. Nanoscale Research Letters. 2016; 11(1):1-6.
[Crossref] [Google Scholar]
[8]Ghani SA, Muhamad NA, Chairul IS, Jamri N. A study of moisture effects on the breakdown voltage and spectral characteristics of mineral and palm oil-based insulation oils. ARPN Journal of Engineering and Applied Sciences. 2016; 11(8):5012-20.
[Google Scholar]
[9]Kiran MR, Babu SR. Experimental investigation on natural convection heat transfer enhancement using transformer oil-TiO2 nanofluid. International Research Journal of Engineering and Technology. 2018; 5(7):1412-8.
[Google Scholar]
[10]Ravi BS, Sambasiva RG. Buoyancy-induced natural convective heat transfer along a vertical cylinder using water–Al2O3 nanofluids. Journal of Thermal Science and Engineering Applications. 2018; 10(3):1-7.
[Crossref] [Google Scholar]
[11]Ashiquzzaman M, Mitra S, Molla NM, Chakma T, Nasrin KF. Testing of dielectric strength of transformer Oil, insulation paper and corona effect of wire. In region 10 symposium 2020 (pp. 1026-9). IEEE.
[Crossref] [Google Scholar]
[12]Danikas M, Sarathi R, Morsalin S. A short review of some of the factors affecting the breakdown strength of insulating oil for power transformers. Engineering, Technology & Applied Science Research. 2020; 10(3):5742-7.
[Crossref] [Google Scholar]
[13]Ghoneim SS, Sabiha NA, Hessien MM, Alahmadi A. Evaluation of dielectric breakdown strength of transformer oil with BaTiO3 and NiFe2O4 nanoparticles. Electrical Engineering. 2019; 101(2):369-77.
[Crossref] [Google Scholar]
[14]Sumathi S, Rajesh R, Subburaj P. Investigation of dielectric strength of transformer oil based on hybrid TiO2/Al2O3/MoS2 nanofluid using taguchi and response surface methodology. IETE Journal of Research. 2019:1-9.
[Crossref] [Google Scholar]
[15]Kunju KB, Shemim SS. Dielectric properties of eco-friendly nanofluids. In journal of physics: conference series 2019 (pp. 1-6). IOP Publishing.
[Crossref] [Google Scholar]
[16]Abdi S, Harid N, Safiddine L, Boubakeur A, Haddad AM. The correlation of transformer oil electrical properties with water content using a regression approach. Energies. 2021; 14(8):1-14.
[Crossref] [Google Scholar]
[17]Safiddine L, Zafour HZ, Rao UM, Fofana I. Regeneration of transformer insulating fluids using membrane separation technology. Energies. 2019; 12(3):1-13.
[Google Scholar]
[18]Ali AR, Salam B. A review on nanofluid: preparation, stability, thermophysical properties, heat transfer characteristics and application. SN Applied Sciences. 2020; 2(10):1-17.
[Crossref] [Google Scholar]
[19]Ji J, Lu W, Si C, Zhang S, Yao X, Wang W, et al. Overview on the preparation and heat transfer enhancement of nanofluids. In journal of physics: conference series 2020 (pp. 1-9). IOP Publishing.
[Crossref] [Google Scholar]
[20]Zhou Y, Peng N, Wang Z, Cui W, Chen W, Sui S, et al. Modified propagating behavior of creeping streamers at TiO2 nanofluid/pressboard interface. Journal of Molecular Liquids. 2019.
[Crossref] [Google Scholar]
[21]Mansoor DE, Elsaeed AM. Heat transfer properties of transformer oil-based nanofluids filled with Al 2 O 3 nanoparticles. In international conference on power and energy 2014 (pp. 123-7). IEEE.
[Crossref] [Google Scholar]
[22]Williams W, Buongiorno J, Hu LW. Experimental investigation of turbulent convective heat transfer and pressure loss of alumina/water and zirconia/water nanoparticle colloids (nanofluids) in horizontal tubes. Journal of Heat Transfer. 2008; 130(4).
[Crossref] [Google Scholar]
[23]Maxwell JC. Electricity and magnetism. New York: Dover; 1954.
[Google Scholar]
[24]Das SK, Choi SU, Patel HE. Heat transfer in nanofluids—a review. Heat Transfer Engineering. 2006; 27(10):3-19.
[Crossref] [Google Scholar]
[25]Orozco D, Del CLF. Hydrodynamic behavior of suspension of polar particles. Encyclopedia Surface Colloid Science. 2005; 4:2375-96.
[Google Scholar]
[26]Einstein A. Investigations on the theory of the brownian movement. Courier Corporation; 1956.
[Google Scholar]
[27]Nguyen CT, Desgranges F, Galanis N, Roy G, Maré T, Boucher S, et al. Viscosity data for Al2O3–water nanofluid—hysteresis: is heat transfer enhancement using nanofluids reliable?. International Journal of Thermal Sciences. 2008; 47(2):103-11.
[Crossref] [Google Scholar]
[28]Maiga SE, Palm SJ, Nguyen CT, Roy G, Galanis N. Heat transfer enhancement by using nanofluids in forced convection flows. International Journal of Heat and Fluid Flow. 2005; 26(4):530-46.
[Crossref] [Google Scholar]