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Hydraulic assessment
of nanofluids based on mineral oil and natural ester in windings
of power transformers
A.
Santisteban, A. Ortiz, F. Delgado, C. Fernández, J. Sanz
2018/04/20
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Abstract
It is common for electric power transformers
to be cooled by mineral oil. However, this type of oil has begun to be
replaced by oils of natural origin (esters), due to environmental and
fire safety reasons. The latter are biodegradable and have an ignition
point much higher than that of mineral oils. On the other hand, different
authors have found that the dielectric and refrigerant properties of the
oils used in transformers can be improved when some types of nanoparticles
are added. In order to assess this improvement, this work presents the
results obtained by a research in which different nanofluids, produced
through commercial dielectric oils (mineral and natural), nanoparticles
of titanium (IV) oxide and magnetite, were thermally characterized. The
results of this characterization have been used to perform simulations
based on computational fluid dynamics. This comparison has allowed to
observe the pressure drops and the mass flows in the internal channels
of the windings of a real power transformer.
| Published in: Renewable Energy
& Power Quality Journal (RE&PQJ, Nº. 16) |
| Pages: 628-631 |
Date of Publication: 2018/04/20 |
| ISSN: 2172-038X |
Date of Current Version:2018/03/23 |
| REF: 413-18 |
Issue Date: April 2018 |
| DOI:10.24084/repqj16.413 |
Publisher: EA4EPQ |
Authors and affiliations
A. Santisteban, A. Ortiz, F. Delgado, C. Fernández,
J. Sanz
Department of Electrical Engineering. E.T.S.I.I., Cantabria University.
Santander (Spain)
Key words
Transformer, nanofluids, biodegradable oils, pressure
drop, mass flow.
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