Dynamics of rising of an air bubble in a magnetic fluid shell in a magnetic field

Мұқаба

Дәйексөз келтіру

Толық мәтін

Ашық рұқсат Ашық рұқсат
Рұқсат жабық Рұқсат берілді
Рұқсат жабық Тек жазылушылар үшін

Аннотация

The process of rising of an air bubble enclosed in a magnetic fluid shell in an external homogeneous magnetic field directed horizontally is investigated experimentally. It is shown that the magnetic field acting on the magnetic fluid shell leads to a change in the shape of the bubble, which in turn is reflected in the quantitative characteristics of the rising process. Oscillations in the shape of the air bubble during the rising process were also found. The obtained results indicate the possibility of realizing the control of small gas volumes, which may have practical applications.

Толық мәтін

Рұқсат жабық

Авторлар туралы

А. Simonovsky

North Caucasus Federal University; Stavropol State Agrarian University

Хат алмасуға жауапты Автор.
Email: simonovchkij@mail.ru
Ресей, Stavropol; Stavropol

A. Zakinyan

Stavropol State Agrarian University

Email: simonovchkij@mail.ru
Ресей, Stavropol

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Әрекет
1. JATS XML
2. Fig. 1. Schematic diagram of the experimental setup: 1 — vessel, 2 — magnetic fluid, 3 — glycerin, 4 — tube for blowing out an air bubble, 5 — Helmholtz coils, 6 — digital video camera.

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3. Fig. 2. Sequential frames of the transition of an air bubble during its ascent through the boundary of magnetic and non-magnetic liquids. The time interval between images is 20 ms. The magnetic field strength is 1.9 kA/m.

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4. Fig. 3. Stages of the ascent of an air bubble in a magnetic fluid shell in a magnetic field of 9 kA/m.

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5. Fig. 4. Time dependence of the angle of deviation of the major semi-axis of the bubble on the direction of the magnetic field.

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6. Fig. 5. Dependence of the time it takes for a bubble to cross the boundary of magnetic and non-magnetic liquids on the magnetic field strength.

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7. Fig. 6. Dependence on the magnetic field strength of the length of the leg connecting the rising bubble with the volume of magnetic fluid at which the rupture occurs.

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8. Fig. 7. Dependence of the amplitude of air bubble oscillations on the intensity of the alternating magnetic field at different values ​​of the field frequency.

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9. Fig. 8. Dependence of the ratio of the semiaxes of a compound bubble on the intensity of the external magnetic field. The dots are experimental data, the solid line is the calculation according to expression (1).

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