New approach to the heat transfer modeling in the coolant layer on the lower cover of a thermosyphon; International Journal of Heat and Mass Transfer; Vol. 163

Detalles Bibliográficos
Parent link:International Journal of Heat and Mass Transfer
Vol. 163.— 2020.— [120555, 11 p.]
Corporate Authors: Национальный исследовательский Томский политехнический университет Исследовательская школа физики высокоэнергетических процессов, Национальный исследовательский Томский политехнический университет Инженерная школа энергетики Научно-образовательный центр И. Н. Бутакова (НОЦ И. Н. Бутакова)
Outros autores: Kuznetsov G. V. Geny Vladimirovich, Ponomarev K. O. Konstantin Olegovich, Feoktistov D. V. Dmitriy Vladimirovich, Orlova E. G. Evgeniya Georgievna, Ouerdane H. Henni, Lyulin Yu. V. Yury Vyacheslavovich
Summary:Title screen
It was hypothesized that the intensity of heat transfer (phase transitions in evaporation and condensation zones, heat conduction and convection in vapor channel) in a thermosyphon depends, first of all, on the intensity of heat transfer in coolant layer on the thermosyphon lower cover and on the free surface of this layer. We conducted experiments to determine the thermogravitational convection velocity in the coolant layer. The velocity averaged over a thickness was up to 0.63 mm/s in the range of heat fluxes from 0.18 to 1.3 kW/m2 and thicknesses of the coolant layer from 3.2 to 7.4 mm. We experimentally obtained temperature fields in a vertical thermosyphon in the range of heat fluxes from 0.18 to 2.6 kW/m2 and filling ratios of an evaporation section from 15 to 35%. We developed a mathematical model of heat transfer in the coolant layer on the thermosyphon lower cover based on our experimental studies. Our model differs from previous ones as it accounts for conduction and convection only in the coolant layer on the lower cover and conduction in the evaporation section of the thermosyphon. Calculated temperatures in characteristic points of the coolant layer are in a good agreement with the readings of thermocouples.
Режим доступа: по договору с организацией-держателем ресурса
Idioma:inglés
Publicado: 2020
Subjects:
Acceso en liña:https://doi.org/10.1016/j.ijheatmasstransfer.2020.120555
Formato: Electrónico Capítulo de libro
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=663040

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200 1 |a New approach to the heat transfer modeling in the coolant layer on the lower cover of a thermosyphon  |f G. V. Kuznetsov, K. O. Ponomarev, D. V. Feoktistov [et al.] 
203 |a Text  |c electronic 
300 |a Title screen 
320 |a [References: 48 tit.] 
330 |a It was hypothesized that the intensity of heat transfer (phase transitions in evaporation and condensation zones, heat conduction and convection in vapor channel) in a thermosyphon depends, first of all, on the intensity of heat transfer in coolant layer on the thermosyphon lower cover and on the free surface of this layer. We conducted experiments to determine the thermogravitational convection velocity in the coolant layer. The velocity averaged over a thickness was up to 0.63 mm/s in the range of heat fluxes from 0.18 to 1.3 kW/m2 and thicknesses of the coolant layer from 3.2 to 7.4 mm. We experimentally obtained temperature fields in a vertical thermosyphon in the range of heat fluxes from 0.18 to 2.6 kW/m2 and filling ratios of an evaporation section from 15 to 35%. We developed a mathematical model of heat transfer in the coolant layer on the thermosyphon lower cover based on our experimental studies. Our model differs from previous ones as it accounts for conduction and convection only in the coolant layer on the lower cover and conduction in the evaporation section of the thermosyphon. Calculated temperatures in characteristic points of the coolant layer are in a good agreement with the readings of thermocouples. 
333 |a Режим доступа: по договору с организацией-держателем ресурса 
461 |t International Journal of Heat and Mass Transfer 
463 |t Vol. 163  |v [120555, 11 p.]  |d 2020 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
610 1 |a thermosyphon 
610 1 |a heat flux 
610 1 |a filling ratio 
610 1 |a heat transfer 
610 1 |a thermogravitational convection 
610 1 |a тепловой поток 
610 1 |a теплопередача 
610 1 |a термогравитационная конвекция 
701 1 |a Kuznetsov  |b G. V.  |c Specialist in the field of heat power energy  |c Professor of Tomsk Polytechnic University, Doctor of Physical and Mathematical Sciences  |f 1949-  |g Geny Vladimirovich  |3 (RuTPU)RU\TPU\pers\31891  |9 15963 
701 1 |a Ponomarev  |b K. O.  |c specialist in the field of thermal engineering  |c engineer of Tomsk Polytechnic University  |f 1993-  |g Konstantin Olegovich  |3 (RuTPU)RU\TPU\pers\35642  |9 18811 
701 1 |a Feoktistov  |b D. V.  |c Specialist in the field of thermal engineering  |c Associate Professor; Deputy Director of Tomsk Polytechnic University, Candidate of technical sciences  |f 1983-  |g Dmitriy Vladimirovich  |3 (RuTPU)RU\TPU\pers\34158  |9 17698 
701 1 |a Orlova  |b E. G.  |c specialist in the field of thermal engineering  |c Associate Professor of Tomsk Polytechnic University, Candidate of Physical and Mathematical Sciences  |f 1991-  |g Evgeniya Georgievna  |3 (RuTPU)RU\TPU\pers\34157  |9 17697 
701 1 |a Ouerdane  |b H.  |g Henni 
701 1 |a Lyulin  |b Yu. V.  |g Yury Vyacheslavovich 
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