The capillary flow of a ferrofluid in a single cylindrical capillary tube and through a sandy porous medium under the action of a nonuniform magnetic field is studied experimentally. The dynamics of the capillary rise and the static case have been considered. It has been shown that the nonuniform magnetic field with upward directed gradient accelerates the capillary rise; contrary, the nonuniform magnetic field with downward directed gradient decelerates the capillary rise. Time dependences of the ferrofluid height and maximum reachable height of ferrofluid have been analyzed. The method of the study of ferrofluid capillary rise based on the use of magnetic measurements has been proposed. It has been demonstrated that porous material parameters can be extracted from the results of measurements of the inductances of the solenoid with porous medium inside and the small sensing coil within a single experiment.
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January 2017
Research-Article
Ferrofluid Capillary Rise in Porous Medium Under the Action of Nonuniform Magnetic Field
Arthur Zakinyan,
Arthur Zakinyan
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
e-mail: zakinyan.a.r@mail.ru
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
e-mail: zakinyan.a.r@mail.ru
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Levon Mkrtchyan,
Levon Mkrtchyan
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Search for other works by this author on:
Victoria Grunenko,
Victoria Grunenko
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Search for other works by this author on:
Yuri Dikansky
Yuri Dikansky
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Search for other works by this author on:
Arthur Zakinyan
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
e-mail: zakinyan.a.r@mail.ru
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
e-mail: zakinyan.a.r@mail.ru
Levon Mkrtchyan
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Victoria Grunenko
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Yuri Dikansky
Department of General and Theoretical Physics,
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
Institute of Mathematics and Natural Sciences,
North Caucasus Federal University,
1 Pushkin Street,
Stavropol 355009, Russia
1Corresponding author.
Contributed by the Fluids Engineering Division of ASME for publication in the JOURNAL OF FLUIDS ENGINEERING. Manuscript received January 16, 2016; final manuscript received July 9, 2016; published online October 18, 2016. Assoc. Editor: Mark R. Duignan.
J. Fluids Eng. Jan 2017, 139(1): 011204 (7 pages)
Published Online: October 18, 2016
Article history
Received:
January 16, 2016
Revised:
July 9, 2016
Citation
Zakinyan, A., Mkrtchyan, L., Grunenko, V., and Dikansky, Y. (October 18, 2016). "Ferrofluid Capillary Rise in Porous Medium Under the Action of Nonuniform Magnetic Field." ASME. J. Fluids Eng. January 2017; 139(1): 011204. https://doi.org/10.1115/1.4034361
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