MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEM
A new porous cooling system in which the coolant supply is produced by the combined action of capillary and gravitational forces is proposed and studied for various technical devices and systems developed by the authors. The cooling surface is made of stainless steel, brass, copper, bronze, nickel,...
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Belarusian National Technical University
2017-11-01
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Series: | Izvestiâ Vysših Učebnyh Zavedenij i Ènergetičeskih ob Edinennij SNG. Ènergetika |
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Online Access: | https://energy.bntu.by/jour/article/view/1098 |
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doaj-2fe6ec89fe184506872ac12bafc77bc42021-07-29T08:45:40ZrusBelarusian National Technical UniversityIzvestiâ Vysših Učebnyh Zavedenij i Ènergetičeskih ob Edinennij SNG. Ènergetika1029-74482414-03412017-11-0160655857010.21122/1029-7448-2017-60-6-558-5701059MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEMA. A. Genbach0V. O. Baibekova1Almaty University of Power Engineering and TelecommunicationsAlmaty University of Power Engineering and TelecommunicationsA new porous cooling system in which the coolant supply is produced by the combined action of capillary and gravitational forces is proposed and studied for various technical devices and systems developed by the authors. The cooling surface is made of stainless steel, brass, copper, bronze, nickel, glass and alundum. The wall thickness is (0.05–2.00) ∙ 10⁻³m. Visual observations were carried out by using high-speed camera filming with the use of SCS-1M. Experiments were carried out with water at pressures ranging between 0.01–10.00 MPa, under-heating to 0–20 K, excess liquid of 1–14 of steam flow, thermal load of (1–60) ∙ 104 W/m², temperature pressure of 1–60 K and the system orientation of ±(0–90) degrees. Studies carried out on a model plant has identified two areas of the process of vaporization of the liquid and an influence of operating and design characteristics. The optimal coolant flow and the most effective form of reticulated porous structure are identified. Visual observations have made it possible to describe the physical picture of the processes and to generalize experimental data on the removed heat flows with an accuracy of ±20 % depending on the thermophysical properties of the fluid, wall, temperature difference, excess fluid, porous structures and heat exchange interface.https://energy.bntu.by/jour/article/view/1098bearings of turbinescapillary-porous structurecondensing zonevaporization zone |
collection |
DOAJ |
language |
Russian |
format |
Article |
sources |
DOAJ |
author |
A. A. Genbach V. O. Baibekova |
spellingShingle |
A. A. Genbach V. O. Baibekova MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEM Izvestiâ Vysših Učebnyh Zavedenij i Ènergetičeskih ob Edinennij SNG. Ènergetika bearings of turbines capillary-porous structure condensing zone vaporization zone |
author_facet |
A. A. Genbach V. O. Baibekova |
author_sort |
A. A. Genbach |
title |
MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEM |
title_short |
MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEM |
title_full |
MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEM |
title_fullStr |
MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEM |
title_full_unstemmed |
MODELING OF HEAT TRANSFER IN A POROUS TURBINE BEARING COOLING SYSTEM |
title_sort |
modeling of heat transfer in a porous turbine bearing cooling system |
publisher |
Belarusian National Technical University |
series |
Izvestiâ Vysših Učebnyh Zavedenij i Ènergetičeskih ob Edinennij SNG. Ènergetika |
issn |
1029-7448 2414-0341 |
publishDate |
2017-11-01 |
description |
A new porous cooling system in which the coolant supply is produced by the combined action of capillary and gravitational forces is proposed and studied for various technical devices and systems developed by the authors. The cooling surface is made of stainless steel, brass, copper, bronze, nickel, glass and alundum. The wall thickness is (0.05–2.00) ∙ 10⁻³m. Visual observations were carried out by using high-speed camera filming with the use of SCS-1M. Experiments were carried out with water at pressures ranging between 0.01–10.00 MPa, under-heating to 0–20 K, excess liquid of 1–14 of steam flow, thermal load of (1–60) ∙ 104 W/m², temperature pressure of 1–60 K and the system orientation of ±(0–90) degrees. Studies carried out on a model plant has identified two areas of the process of vaporization of the liquid and an influence of operating and design characteristics. The optimal coolant flow and the most effective form of reticulated porous structure are identified. Visual observations have made it possible to describe the physical picture of the processes and to generalize experimental data on the removed heat flows with an accuracy of ±20 % depending on the thermophysical properties of the fluid, wall, temperature difference, excess fluid, porous structures and heat exchange interface. |
topic |
bearings of turbines capillary-porous structure condensing zone vaporization zone |
url |
https://energy.bntu.by/jour/article/view/1098 |
work_keys_str_mv |
AT aagenbach modelingofheattransferinaporousturbinebearingcoolingsystem AT vobaibekova modelingofheattransferinaporousturbinebearingcoolingsystem |
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1721251763646889984 |