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Heat Transfer Research

Publicou 18 edições por ano

ISSN Imprimir: 1064-2285

ISSN On-line: 2162-6561

The Impact Factor measures the average number of citations received in a particular year by papers published in the journal during the two preceding years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) IF: 1.7 To calculate the five year Impact Factor, citations are counted in 2017 to the previous five years and divided by the source items published in the previous five years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) 5-Year IF: 1.4 The Immediacy Index is the average number of times an article is cited in the year it is published. The journal Immediacy Index indicates how quickly articles in a journal are cited. Immediacy Index: 0.6 The Eigenfactor score, developed by Jevin West and Carl Bergstrom at the University of Washington, is a rating of the total importance of a scientific journal. Journals are rated according to the number of incoming citations, with citations from highly ranked journals weighted to make a larger contribution to the eigenfactor than those from poorly ranked journals. Eigenfactor: 0.00072 The Journal Citation Indicator (JCI) is a single measurement of the field-normalized citation impact of journals in the Web of Science Core Collection across disciplines. The key words here are that the metric is normalized and cross-disciplinary. JCI: 0.43 SJR: 0.318 SNIP: 0.568 CiteScore™:: 3.5 H-Index: 28

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SIGNIFICANCE OF HEAT AND MASS PROCESS IN PERISTALSIS OF A RHEOLOGICAL MATERIAL

Volume 50, Edição 16, 2019, pp. 1561-1580
DOI: 10.1615/HeatTransRes.2019026167
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RESUMO

This article investigates the thermal-diffusion and diffusion-thermo effects in the peristaltic flow of non-Newtonian fluid in an asymmetric convectively heated channel. The asymmetric nature of the channel here is due to different amplitudes and phases of propagation waves. Mathematical formulation is based on the constitutive relations of third-grade fluid. The solutions of the resulting equations through lubrication approach are given for the stream function, temperature, and concentration. Effects of several parameters of interest are displayed and discussed through plots.

Referências
  1. Abbasi, F.M., Hayat, T., Alsaedi, A., and Ahmed, B., Soret and Dufour Effects on Peristaltic Transport of MHD Fluid with Variable Viscosity, Appl. Math. Inf. Sci., vol. 8, pp. 211-219, 2014.

  2. Abd elmaboud, Y., Influence of Induced Magnetic Field on Peristaltic Flow in an Annulus, Commun. Nonlinear Sci. Numer. Simul, vol. 17, pp. 685-698, 2012.

  3. Bhatti, M.M., Abbas, M.A., and Rashidi, M.M., Entropy Generation in Blood Flow with Heat and Mass Transfer for the Ellis Fluid Model, Heat Transf. Res, vol. 49, pp. 747-760 2018.

  4. Bhatti, M.M., Ellahi, R., and Zeeshan, A., Study of Variable Magnetic Field on the Peristaltic Flow of Jeffrey Fluid in a Non-Uniform Rectangular Duct Having Compliant Walls, J. Mol. Liq, vol. 222, pp. 101-108, 2016.

  5. Ellahi, R., Riaz, A., and Nadeem, S., Three-Dimensional Peristaltic Flow of Williamson Fluid in a Rectangular Duct, Indian J. Phys., vol. 87, pp. 1275-1281, 2013.

  6. Fakour, M., Ganji, D.D., Khalili, A., and Bakhshi, A., Heat Transfer in Nanofluid MHD Flow in a Channel with Permeable Walls, Heat Transf. Res, vol. 48, pp. 221-238, 2017.

  7. Farooq, S., Alsaedi, A., Hayat, T., and Ahmad, B., Peristaltic Transport of Johnson-Segalman Fluid with Homogeneous-Heterogeneous Reactions: A Numerical Analysis, J. Brazilian Soc. Mech. Sci. Eng., vol. 40, p. 242, 2018a.

  8. Farooq, S., Awais, M., Naseem, M., Hayat, T., and Ahmad, B., Magnetohydrodynamic Peristalsis of Variable Viscosity Jeffrey Liquid with Heat and Mass Transfer, Nuclear Eng. Tech., vol. 49, pp. 1396-1404, 2017.

  9. Farooq, S., Hayat, T., Ahmad, B., and Alsaedi, A., MHD Flow of Eyring-Powell Liquid in Convectively Curved Configuration, J. Brazilian Soc. Mech. Sci. Eng., vol. 40, pp. 159(1-14), 2018b.

  10. Hayat, T., Farooq, S., Alsaedi, A., and Ahmad, B., Hall and Radial Magnetic Field Effects on Radiative Peristaltic Flow of Carreau-Yasuda Fluid in a Channel with Convective Heat and Mass Transfer, J. Mag. Mag. Mater., vol. 412, pp. 207-216, 2016.

  11. Hayat, T., Farooq, S., Alsaedi, A., and Ahmad, B., Numerical Study for Soret and Dufour Effects on Mixed Convective Peristalsis of Oldroyd 8-Constants Fluid, Int. J. Therm. Sci., vol. 112, pp. 68-81, 2017a.

  12. Hayat, T., Farooq, S., Mustafa, M., and Ahmad, B., Peristaltic Transport of Bingham Plastic Fluid Considering Magnetic Field, Soret and Dufour Effects, Results Phys, vol. 7, pp. 2000-2011, 2017b.

  13. Hayat, T., Khan, M.I., Waqas, M., Alsaedi, A., and Yasmeen, T., Diffusion of Chemically Reactive Species in Third-Grade Fluid Flow over an Exponentially Stretching Sheet Considering Magnetic Field Effects, Chinese J. Chem. Eng., vol. 25, pp. 257-263, 2017c.

  14. Hayat, T., Khan, M.I., Waqas, M., and Alsaedi, A., Stagnation Point Flow of Hyperbolic Tangent Fluid with Soret-Dufour Effects, Results Phys., vol. 7, pp. 2711-2717, 2017d.

  15. Hayat, T., Yasmin, H., Ahmed, B., and Chen, B., Simultaneous Effects of Convective Conditions and Nanoparticles on Peristaltic Motion, J. Mol. Liq, vol. 193, pp. 74-82, 2014a.

  16. Hayat, T., Yasmin, H., Alhuthali, M.S., and Kutbi, M.A., Peristaltic Flow of a Non-Newtonian Fluid in an Asymmetric Channel with Convective Boundary Conditions, J. Mech., vol. 29, pp. 599-607, 2013a.

  17. Hayat, T., Yasmin, H., and Al-Yami, M., Soret and Dufour Effects in Peristaltic Transport of Physiological Fluids with Chemical Reaction: A Mathematical Analysis, Comp. Fluids, vol. 89, pp. 242-253, 2014b.

  18. Hayat, T., Yasmin, H., Asghar, S., and Hendi, A.A., Slip Effects on Peristaltic Transport in an Inclined Channel with Mass Transfer and Chemical Reaction, Appl. Bionics Biomech., vol. 10, pp. 41-58, 2013b.

  19. Hussain, Q., Latif, T., Alvi, N., and Asghar, S., Nonlinear Radiative Peristaltic Flow of Hydromagnetic Fluid through Porous Medium, Results Phys., vol. 9, pp. 121-134, 2018.

  20. Khabazi, N.P., Taghavi, S.M., and Sadeghy, K., Peristaltic Flow of Bingham Fluids at Large Reynolds Numbers: A Numerical Study, J. Non-Newtonian Fluid Mech, vol. 227, pp. 30-44, 2016.

  21. Lakshmi, K.L.K., Gireesha, B.J., Gorla, R.S.R., and Mahanthesh, B., Effects of Diffusion-Thermo and Thermo-Diffusion on Two-Phase Boundary Layer Flow past a Stretching Sheet with Fluid-Particle Suspension and Chemical Reaction: A Numerical Study, J. Nigerian Math. Soc., vol. 35, pp. 66-81, 2016.

  22. Mahanthesh, B., Gireesha, B.J., and Gorla, R.S.R., Heat and Mass Transfer Effects on the Mixed Convective Flow of Chemically Reacting Nanofluid past a Moving/Stationary Vertical Plate, Alexandria Eng. J., vol. 55, pp. 569-581, 2016a.

  23. Mahanthesh, B., Gireesha, B.J., and Gorla, R.S.R., Nanoparticles Effect on 3D Flow, Heat and Mass Transfer of Nanofluid with Nonlinear Radiation, Thermal-Diffusion and Diffusion-Thermo Effects, J. Nanofluids, vol. 5, pp. 669-678, 2016b.

  24. Mahanthesh, B., Gireesha, B.J., and Gorla, R.S.R., Nonlinear Radiative Heat Transfer in MHD Three-Dimensional Flow of Water Based Nanofluid over a Non-Linearly Stretching Sheet with Convective Boundary Condition, J. Nigerian Math. Soc., vol. 35, pp. 178-198, 2016c.

  25. Mahanthesh, B., Gireesha, B.J., and Gorla, R.S.R., Unsteady Three-Dimensional MHD Flow of a Nano Eyring-Powell Fluid past a Convectively Heated Stretching Sheet in the Presence of Thermal Radiation, Viscous Dissipation and Joule Heating, J. Assoc. Arab Univ. Basic Appl. Sci., vol. 23, pp. 75-84, 2017.

  26. Mekheimer, Kh.S., Saleem, N., Hayat, T., and Hendi, A.A., Simultaneous Effects of Induced Magnetic Field and Heat and Mass Transfer on the Peristaltic Motion of Second-Order Fluid in a Channel, Int. J. Numer. Meth. Fluids, vol. 70, pp. 342-358, 2012.

  27. Mekheimer, Kh.S., Husseny, S.Z.A., and Abd Elmaboud, Y., Effects of Heat Transfer and Space Porosity on Peristaltic Flow in a Vertical Asymmetric Channel, Numer. Meth. Partial Diff. Eqs., vol. 26, pp. 747-770, 2010.

  28. Srinivas, S., Gayathri, R., and Kothandapani, M., Mixed Convective Heat and Mass Transfer in an Asymmetric Channel with Peristalsis, Commun. Nonlin. Sci. Numer. Simul., vol. 16, pp. 1845-1862, 2011.

  29. Sucharitha, G., Lakshminarayana, P., and Sandeep, N., Joule Heating and Wall Flexibility Effects on the Peristaltic Flow of Magnetohydrodynamic Nanofluid, Int. J. Mech. Sci., vol. 131-132, pp. 52-62, 2017.

  30. Thammanna, G.T., Gireesha, B.J., and Mahanthesh, B., Partial Slip and Joule Heating on Magnetohydrodynamic Radiated Flow of Nanoliquid with Dissipation and Convective Condition, Results Phys., vol. 7, pp. 2728-2735, 2017.

  31. Tripathi, D., Pandey, S.K., and Beg, O.A., Mathematical Modeling of Heat Transfer Effects on Swallowing Dynamics of Visco-elastic Food Bolus through the Human Oesophagus, Int. J. Therm. Sci., vol. 70, pp. 41-53, 2013.

  32. Vajravelu, K., Sreenadh, S., Rajanikanth, K., and Lee, C., Peristaltic Transport of a Williamson Fluid in Asymmetric Channels with Permeable Walls, Nonlinear Analysis: Real World Appl., vol. 13, pp. 2804-2822, 2012.

  33. Yasmin, H., Hayat, T., Alotaibi, N., and Gao, H., Convective Heat and Mass Transfer Analysis on Peristaltic Flow of Williamson Fluid with Hall Effects and Joule Heating, Int. J. Bio-Math., vol. 7, p. 1450058 (27 pages), 2014.

CITADO POR
  1. Yasmin Humaira, Iqbal Naveed, Tanveer Anum, Engineering Applications of Peristaltic Fluid Flow with Hall Current, Thermal Deposition and Convective Conditions, Mathematics, 8, 10, 2020. Crossref

  2. Yasmin Humaira, Iqbal Naveed, Hussain Aiesha, Convective Heat/Mass Transfer Analysis on Johnson-Segalman Fluid in a Symmetric Curved Channel with Peristalsis: Engineering Applications, Symmetry, 12, 9, 2020. Crossref

  3. Iqbal Naveed, Yasmin Humaira, Kometa Bawfeh K., Attiya Adel A., Effects of Convection on Sisko Fluid with Peristalsis in an Asymmetric Channel, Mathematical and Computational Applications, 25, 3, 2020. Crossref

  4. Yasmin Humaira, Iqbal Naveed, Zeeshan Ahmed, Convective Mass/Heat Analysis of an Electroosmotic Peristaltic Flow of Ionic Liquid in a Symmetric Porous Microchannel with Soret and Dufour, Mathematical Problems in Engineering, 2021, 2021. Crossref

  5. Iqbal Naveed, Yasmin Humaira, Bibi Aneela Bibi, Kometa Bawfeh K., Attiya Adel A., Impact of Homogeneous/Heterogeneous Reactions and Convective Conditions on Peristaltic Fluid Flow in a Symmetric Channel, Punjab University Journal of Mathematics, 2021. Crossref

  6. Choudhari Rajashekhar, Makinde Oluwole D., Mebarek‐Oudina Fateh, Vaidya Hanumesh, Prasad Kerehalli V., Devaki Palluru, Analysis of third‐grade liquid under the influence of wall slip and variable fluid properties in an inclined peristaltic channel, Heat Transfer, 2022. Crossref

  7. Iqbal Naveed, Yasmin Humaira, Bibi Aneela, Attiya Adel A., Peristaltic motion of Maxwell fluid subject to convective heat and mass conditions, Ain Shams Engineering Journal, 12, 3, 2021. Crossref

  8. Vaidya Hanumesh, Choudhari Rajashekhar, Baleanu Dumitru, Prasad K. V., Shivaleela , Khan M. Ijaz, Guedri Kamel, Jameel Mohammed, Galal Ahmed M., On electro-osmosis in peristaltic blood flow of magnetohydrodynamics carreau material with slip and variable material characteristics, International Journal of Modern Physics B, 37, 04, 2023. Crossref

  9. Khushi Saba, Abbasi F. M., Hall current and Joule heating effects on peristalsis of TiO2–Ag/EG hybrid nanofluids via a curved channel with heat transfer, Waves in Random and Complex Media, 2022. Crossref

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