Численное исследование турбулентных режимов конвективно- радиационного теплопереноса в наклонной полости c локальным источником энергии

Podrobná bibliografie
Parent link:Перспективы развития фундаментальных наук=Prospects of Fundamental Sciences Development: сборник научных трудов XIV Международной конференции студентов, аспирантов и молодых ученых, г. Томск, 25-28 апреля 2017 г./ Национальный исследовательский Томский политехнический университет (ТПУ) ; под ред. И. А. Курзиной, Г. А. Вороновой.— , 2017
Т. 3 : Математика.— 2017.— [С. 71-73]
Hlavní autor: Мирошниченко И. В.
Další autoři: Шеремет М. А. (научный руководитель)
Shrnutí:Заглавие с экрана
A numerical study of turbulent natural convection with thermal surface radiation inside an inclined square enclosure with a local heat source has been performed. Two-dimensional equations of conservation of mass, momentum and energy have been solved using finite difference method. Localized heating is simulated by a centrally located heat source on the bottom wall. The angle of inclination is used as a control parameter for heat transfer. It was changed from 0 till π. The main attention has been paid to the effect of the inclination angle on the fluid flow and heat transfer patterns.
Jazyk:ruština
Vydáno: 2017
Témata:
On-line přístup:http://earchive.tpu.ru/handle/11683/44578
Médium: Elektronický zdroj Kapitola
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=624933
Popis
Shrnutí:Заглавие с экрана
A numerical study of turbulent natural convection with thermal surface radiation inside an inclined square enclosure with a local heat source has been performed. Two-dimensional equations of conservation of mass, momentum and energy have been solved using finite difference method. Localized heating is simulated by a centrally located heat source on the bottom wall. The angle of inclination is used as a control parameter for heat transfer. It was changed from 0 till π. The main attention has been paid to the effect of the inclination angle on the fluid flow and heat transfer patterns.