RAS Energy, Mechanics & ControlТеплофизика высоких температур High Temperature

  • ISSN (Print) 0040-3644
  • ISSN (Online) 3034-610X

Естественная конвекция псевдопластичной наножидкости в замкнутой полости при наличии источника энергии объемного тепловыделения и теплопроводной подложки

PII
10.31857/S0040364424010101-1
DOI
10.31857/S0040364424010101
Publication type
Article
Status
Published
Authors
Volume/ Edition
Volume 62 / Issue number 1
Pages
72-82
Abstract
Теплофизика высоких температур, Естественная конвекция псевдопластичной наножидкости в замкнутой полости при наличии источника энергии объемного тепловыделения и теплопроводной подложки
Keywords
Date of publication
15.02.2024
Year of publication
2024
Number of purchasers
0
Views
9

References

  1. 1. Hu Y.-P., Wang F.-J., Zhang Y.-Ch., Li Y.-R., Li M.-H. Oscillatory Natural Convection of Al2O3-Water Nanofluid near its Density Maximum in a Narrow Horizontal Annulus // Int. Commun. Heat Mass Transfer. 2020. V. 136. 106207.
  2. 2. Yousefzadeh Sh., Eskandari M., Montazerifar F., Akbari O.A., Kahbandeh F., Khalili M., Baghaei Sh. Natural Convection of Water/MWCNT Nanofluid Flow in an Enclosure for Investigation of the First and Second Laws of Thermodynamics // Alexandria Eng. J. 2022. V. 61. № 12. P. 11687.
  3. 3. Wu Y., Mansir I.B., Althobaiti A., Cao Y., Dahari M., Nguyen D.T., Mohamed A., Huynh Ph.H., Wae-hayee M. Employing Numerical Method for Evaluating the Heat Transfer Rate of a Hot Tube by Nanofluid Natural Convection // Case Studies in Thermal Engineering. 2020. V. 35. № 11. 102006.
  4. 4. Tayebi T., Chamkha A.J. Analysis of The Effects of Local Thermal Non-Equilibrium (LTNE) on Thermo-Natural Convection in an Elliptical Annular Space Separated by a Nanofluid-Saturated Porous Sleeve // Int. Commun. Heat Mass Transfer. 2021. V. 129. 105725.
  5. 5. Мебарек-Удина Ф., Бессаи Р. Численное моделирование естественного конвективного теплообмена в вертикально ориентированном цилиндрическом кольцевом канале с источниками тепла для наножидкости на основе воды с наночастицами меди // Теплофизика и аэромеханика. 2019. T. 26. № 3. С. 351.
  6. 6. Dutta Sh., Pati S., Baranyi L. Numerical Analysis of Magnetohydrodynamic Natural Convection in a Nanofluid Filled Quadrantal Enclosure // Case Studies in Thermal Engineering. 2021. V. 28. 101507.
  7. 7. Khan N.H., Paswan M.K., Hassan M.A. Natural Convection of Hybrid Nanofluid Heat Transport and Entropy Generation in Cavity by Using Lattice Boltzmann Method // J. Ind. Chem. Society. 2022. V. 99. № 3. 100344.
  8. 8. Rahman A., Redwan D.A., Thohura Sh., Kamrujjaman Md., Molla M. Natural Convection and Entropy Generation of Non-newtonian Nanofluids with Different Angles of External Magnetic Field Using GPU Accelerated MRT-LBM // Case Studies in Thermal Engineering. 2022. V. 30. 101769.
  9. 9. Reddy P.B.A., Salah T., Jakeer Sh., Mansour M.A., Rashad A.M. Entropy Generation Due to Magneto-Natural Convection in a Square Enclosure with Heated Corners Saturated Porous Medium Using Cu/ Water Nanofluid // Chin. J. Phys. 2022. V. 77. P. 1863.
  10. 10. Cao Y., Mansir I.B., Mouldi A., Gepreel Kh.A., Dahari M., Le T.H., Badran M.F., Nguyen V.N., Wae-Hayee M. Using Natural Convection Mechanism of Nanofluid for Cooling an Embedded Hot Plate in Corner of a Square Enclosure: A Numerical Simulation // Case Studies in Thermal Engineering. 2022. V. 33. 101926.
  11. 11. Nayak M.K., Karimi N., Chamkha A.J., Dogonchi A.S., El-Sapa Sh., Galal A.M. Efficacy of Diverse Structures of Wavy Baffles on Heat Transfer Amplification of Double-Diffusive Natural Convection Inside a C-Shaped Enclosure Filled with Hybrid Nanofluid // Sustainable Energy Technologies and Assessments. 2022. V. 52. № B. 102180.
  12. 12. Abdulkadhim A., Hamzah H.K., Ali F.H., Yıldız Ç., Abed A.M., Abed E.M., Arici M. Effect of Heat Generation and Heat Absorption on Natural Convection of Cu-Water Nanofluid in a Wavy Enclosure Under Magnetic Field // Int. Commun. Heat Mass Transfer. 2021. V. 120. 105024.
  13. 13. Geridonmez B.P., Oztop H.F. The Effect of Inclined Periodic Magnetic Field on Natural Convection Flow of Al2O3‒Cu/Water Nanofluid Inside Right Isosceles Triangular Closed Spaces // Eng. Analysis Boundary Elements. 2022. V. 141. P. 222.
  14. 14. Raza A., Khan I., Farid S., My A., Khan A., Alotaibi H. Non-singular Fractional Approach for Natural Convection Nanofluid with Damped Thermal Analysis and Radiation // Case Studies in Thermal Engineering. 2021. V. 28. 101373.
  15. 15. Акбарзаде П., Фарди А.Х. Теплоперенос при естественной конвекции в замкнутых двумерных и трехмерных камерах, заполненных наножидкостью // ПМиТФ. 2018. Т. 59. № 2. С. 121.
  16. 16. Ghozlani B., Hadj-Salah S., Bezi S., Souayeh B. Интенсификация теплообмена и характеристики потока наножидкости при обтекании усеченного конуса в неограниченной полости // ТВТ. 2023. Т. 61. № 2. С. 265.
  17. 17. Maleki H., Safaei M.R., Alrashed A.A., Kasaeian A. Flow and Heat Transfer in Non-Newtonian Nanofluids Over Porous Surfaces // J. Thermal Analysis Calorimetry. 2019. V. 135. № 3. P. 1655.
  18. 18. Astanina M., Sheremet M., Mahabaleshwar U.S., Singh J. Effect of Porous Medium and Copper Heat Sink on Cooling of Heat-Generating Element // Energies. 2020. V. 13. № 10. 2538.
  19. 19. Khezzar L., Siginer D., Vinogradov I. Natural Convection of Power Law Fluids in Inclined Cavities // Int. J. Therm. Sci. 2012. V. 53. P. 8.
  20. 20. Guo S.S., Luo Z.Y., Tao W., Zhao J.F., Cen K.F. Viscosity of Monodisperse Silica Nanofluids // Bull. Chin. Ceram. Soc. 2006. V. 25. № 5. P. 52.
  21. 21. Jang S.P., Choi S.U.S. Effects of Various Parameters on Nanofluid Thermal Conductivity // J. Heat Transfer. 2007. V. 129. № 5. P. 617.
  22. 22. Bercovier M., Engleman M.A. A Finite-Element Method for Incompressible Non-Newtonian Flows // J. Comput. Phys. 1980. V. 36. № 3. P. 313.
  23. 23. Turan O., Sachdeva A., Poole R.J., Chakraborty N. Laminar Natural Convection of Power-Law Fluids in a Square Enclosure with Differentially Heated Side Walls Subjected to Constant Temperatures // J. Non-Newtonian Fluid Mechanics. 2011. V. 166. № 17–18. P. 1049.
QR
Translate

Индексирование

Scopus

Scopus

Scopus

Crossref

Scopus

Higher Attestation Commission

At the Ministry of Education and Science of the Russian Federation

Scopus

Scientific Electronic Library