Inscrição na biblioteca: Guest

MELTING AND CHEMICAL REACTION EFFECTS IN STAGNATION POINT FLOW OF MICROPOLAR FLUID OVER A STRETCHABLE POROUS MEDIUM IN THE PRESENCE OF NONUNIFORM HEAT SOURCE/SINK

Volume 23, Edição 8, 2020, pp. 767-781
DOI: 10.1615/JPorMedia.2020024600
Get accessGet access

RESUMO

In this present paper, we have investigated a numerical solution to the melting heat transfer on micropolar fluid flow over a stretchable porous medium. The partial differential equations of governing flow are changed to dimension-less ordinary differential equations by using similarity transformation and then solved by the Runge-Kutta-Fehlberg fourth- and fifth-order (RKF-45) method with shooting technique. The novelty of the present study is that it considers the influence of chemical reaction and nonuniform heat source/sink in stagnation point flow over a stretching sheet. The study looks at the impacts of different nondimensional parameters, namely chemical reaction parameter, melting parameter, stretching parameter, and space- and temperature-dependent heat source/sink parameters on velocity, microrotation, temperature, and concentration distributions. Additionally, the skin-friction coefficient, Nusselt number, and Sherwood number are examined in detail and the results are depicted graphically and in tabular form to illustrate the physical importance of the study. The results show that velocity enhances with stretching parameter. The temperature reduces as melting parameter rises, while temperature increases with the stretching parameter and the space- and temperature-dependent heat source/sink parameters. The impact of the chemical reaction parameter is to increase the mass transfer rate.

Referências
  1. Adegbie, S.K., Koriko, O.K., and Animasaun, I.L., Melting Heat Transfer Effects on Stagnation Point Flow of Micropolar Fluid with Variable Dynamic Viscosity and Thermal Conductivity at Constant Vortex Viscosity, J. Nigerian Math. Soc., vol. 35, pp. 34-47, 2016. .

  2. Ajayi, T.M., Omowaye, A.J., and Animasaun, I.L., Viscous Dissipation Effects on the Motion of Casson Fluid over an Upper Horizontal Thermally Stratified Melting Surface of a Paraboloid of Revolution: Boundary Layer Analysis, J. Appl. Math., vol. 2017, pp. 1-13,2017. .

  3. Animasaun, I.L., Double Diffusive Unsteady Convective Micropolar Flow past a Vertical Porous Plate Moving through Binary Mixture Using Modified Boussinesq Approximation, Ain Shams Eng. J, vol. 7, pp. 755-765, 2016. .

  4. Animasaun, I.L., Melting Heat and Mass Transfer in Stagnation Point Micropolar Fluid Flow of Temperature Dependent Fluid Viscosity and Thermal Conductivity at Constant Vortex Viscosity, J. Egyptian Math. Soc., vol. 25, no. 1, pp. 79-85, 2017. .

  5. Bakr, A.A., Effects of Chemical Reaction on MHD Free Convection and Mass Transfer Flow of a Micropolar Fluid with Oscillatory Plate Velocity and Constant Heat Source in a Rotating Frame of Reference, Commun. Nonlinear Sci. Numer. Simulat, vol. 16, no. 2, pp. 698-710,2011. .

  6. Cheng, W.T. and Lin, C.H., Transient Mixed Convective Heat Transfer with Melting Effect from the Vertical Plate in a Liquid Saturated Porous Medium, Int. J. Eng. Sci., vol. 44, pp. 1023-1036,2006. .

  7. Das, K., Effect of Chemical Reaction and Thermal Radiation on Heat and Mass Transfer Flow of MHD Micropolar Fluid in a Rotating Frame ofReference, Int. J. Heat Mass Transf., vol. 54, pp. 3505-3513, 2011. .

  8. Das, K., Influence of Thermophoresis and Chemical Reaction on MHD Micropolar Fluid Flow with Variable Fluid Properties, Int. J Heat Mass Transf., vol. 55, pp. 7166-7174, 2012. .

  9. El-Aziz, M.A., Dual Solutions in Hydromagnetic Stagnation Point Flow and Heat Transfer towards a Stretching/Shrinking Sheet with Non-Uniform Heat Source/Sink and Variable Surface Heat Flux, J. Egyptian Math. Soc., vol. 24, no. 3, pp. 479-486,2016. .

  10. Epstein, M. andCho, D.H., Melting Heat Transfer in Steady Laminar Flow over a Flat Plate, J. Heat Transf, vol. 98, pp. 531-533, 1976. .

  11. Eringen, A.C., Theory of Micropolar Fluid, J. Math. Mech., vol. 16, pp. 1-18, 1966. .

  12. Eringen, A.C., Theory of Thermomicrofluids, J. Math. Analysis Appl., vol. 38, pp. 480-496, 1972. .

  13. Ishak, A., Nazar, R., Bachok, N., and Pop, I., Melting Heat Transfer in Steady Laminar Flow over a Moving Surface, Heat Mass Transf., vol. 46, pp. 463-468, 2010. .

  14. Ishak, A., Nazar, R., and Pop, I., Heat Transfer over a Stretching Surface with Variable Heat Flux in Micropolar Fluids, Phys. Lett. A, vol. 372, pp. 559-561,2008. .

  15. Kandasamy, R., Muhaimin, I., Hashim, I., and Ruhaila, Thermophoresis and Chemical Reaction Effects on Non-Darcy Mixed Convective Heat and Mass Transfer past a Porous Wedge with Variable Viscosity in the Presence of Suction or Injection, Nuclear Eng. Design, vol. 238, no. 10, pp. 2699-2705, 2008. .

  16. Koriko, O.K. and Animasaun, I.L., New Similarity Solution of Micropolar Fluid Flow Problem over an UHSPR in the Presence of Quadratic Kind of Autocatalytic Chemical, Front. Heat Mass Transf., vol. 8, no. 26, pp. 1-13, 2017. .

  17. Koriko, O.K., Omowaye, A.J., Animasaun, I.L., and Babatunde, I.O., Boundary Layer Analysis of Exothermic and Endothermic Kind of Chemical Reaction in the Flow of Non-Darcian Unsteady Micropolar Fluid along an Infinite Vertical Surface, Int. J. Eng. Res. Africa, vol. 28, pp. 90-101,2017. .

  18. Lukaszewicz, G., Micropolar Fluids: Theory and Application, Basel: Birkhauser, 1999. .

  19. Mabood, F., Khan, W.A., and Ismail, A.M., MHD Stagnation Point Flow and Heat Transfer Impinging on Stretching Sheet with Chemical Reaction and Transpiration, Chem. Eng. J., vol. 273, pp. 430-437,2015. .

  20. Magyari, E. and Chamkha, A.J., Combined Effect of Heat Generation or Absorption and First-Order Chemical Reaction on Micropolar Fluid Flows over a Uniformly Stretched Permeable Surface: The Full Analytical Solution, Int. J. Therm. Sci., vol. 49, pp. 1821-1828,2010. .

  21. Mahmoud, M.A.A. and Waheed, S.E., Melting Heat Transfer Effects on Stagnation Point Flow of Micropolar Fluid Saturated in Porous Medium with Internal Heat Generation (Absorption), Appl. Math. Mech, vol. 35, no. 8, pp. 979-992, 2014. .

  22. Mohamed, R.A. and Abo-Dahab, S.M., Influence of Chemical Reaction and Thermal Radiation on the Heat and Mass Transfer in MHD Micropolar Flow over a Vertical Moving Porous Plate in a Porous Medium with Heat Generation, Int. J. Therm. Sci., vol. 48, pp. 1800-1813,2009. .

  23. Nadeem, S., Hussain, M., andNaz, M., MHD Stagnation Flow of a Micropolar Fluid through a Porous Medium, Meccanica, vol. 45, pp. 869-880, 2010. .

  24. Pal, D. and Chatterjee, S., Heat and Mass Transfer in MHD Non-Darcian Flow of a Micropolar Fluid over a Stretching Sheet Embedded in a Porous Media with Non-Uniform Heat Source and Thermal Radiation, Commun. Nonlinear Sci. Numer. Simulat., vol. 15, pp. 1843-1857,2010. .

  25. Pal, D. and Mondal, H., MHD Non-Darcy Mixed Convective Diffusion of Species over a Stretching Sheet Embedded in a Porous Medium with Non-Uniform Heat Source/Sink, Variable Viscosity and Soret Effect, Commun. Nonlinear Sci. Numer. Simulat., vol. 17, pp. 672-684, 2012a. .

  26. Pal, D. and Mondal, H., Soret and Dufour Effects on MHD Non-Darcian Mixed Convection Heat and Mass Transfer over a Stretching Sheet with Non-Uniform Heat Source/Sink, Phys. B, vol. 407, no. 4, pp. 642-651, 2012b. .

  27. Raptis, A., Boundary Layer Flow of a Micropolar Fluid through a Porous Medium, J. Porous Media, vol. 3, pp. 95-97, 2000. .

  28. Rashad, A.M., Abbasbandy, S., and Chamkha, A.J., Mixed Convection Flow of a Micropolar Fluid over a Continuously Moving Vertical Surface Immersed in a Thermally and Solutally Stratified Medium with Chemical Reaction, J. Taiwan Inst. Chem. Eng., vol. 45, pp. 2163-2169,2014. .

  29. Rosali, H., Ishak, A., and Pop, I., Micropolar Fluid Flow towards a Stretching/Shrinking Sheet in a Porous Medium with Suction, Int. Commun. Heat Mass Transf., vol. 39, pp. 826-829,2012. .

  30. Sankara, K.K. and Watson, L.T., Micropolar Flow past a Stretching Sheet, J. Appl. Math. Phys., vol. 36, pp. 845-853, 1985. .

  31. Sharma, R.C. and Gupta, U., Thermal Convection in Micropolar Fluids in Porous Medium, Int. J. Eng. Sci., vol. 33, pp. 1887-1892, 1995. .

  32. Siddheshwar, P.G. and Manjunath, S., Unsteady Convective Diffusion with Heterogeneous Chemical Reaction in a Plane Poiseuille Flow of a Micropolar Fluid, Int. J. Eng. Sci, vol. 38, pp. 765-783, 2000. .

  33. Siddiqa, S., Faryad, A., Begum, N., Hossain, M.A., and Gorla, R.S.R., Periodic Magnetohydrodynamic Natural Convection Flow of a Micropolar Fluid with Radiation, Int. J. Therm. Sci., vol. 111, pp. 215-222,2017. .

  34. Singh, K. and Kumar, M., Melting Heat Transfer in Boundary Layer Stagnation Point Flow of MHD Micro-Polar Fluid towards a Stretching/Shrinking Surface, Jordan J. Mech. Indust. Eng., vol. 8, no. 6, pp. 403-408, 2014. .

  35. Singh, K. and Kumar, M., The Effect of Chemical Reaction and Double Stratification on MHD Free Convection in a Micropolar Fluid with Heat Generation and Ohmic Heating, Jordan J. Mech. Indust. Eng., vol. 9, no. 4, pp. 279-288, 2015. .

  36. Tamayol, A. and Bahrami, M., Analytical Determination of Viscous Permeability of Fibrous Porous Media, Int. J. Heat Mass Transf, vol. 52, pp. 2407-2414,2009. .

  37. Tien, C. and Yen, Y.C., The Effect of Melting on Forced Convection Heat Transfer, J. Appl. Meteorol., vol. 4, pp. 523-527,1965. .

  38. Wang, C.Y., Stagnation Flow towards a Shrinking Sheet, Int. J. Nonlinear Mech, vol. 43, pp. 377-382,2008. .

  39. Yacob, N.A., Ishak, A., and Pop, I., Melting Heat Transfer in Boundary Layer Stagnation-Point Flow towards a Stretching/Shrinking Sheet in a Micropolar Fluid, Comput. Fluids, vol. 47, pp. 16-21,2011. .

CITADO POR
  1. Singh Khilap, Pandey Alok Kumar, Kumar Manoj, Numerical approach for chemical reaction and suction/injection impacts on magnetic micropolar fluid flow through porous wedge with Hall and ion-slip using Keller Box method, Waves in Random and Complex Media, 2021. Crossref

  2. Rout H., Mohapatra S. S., Shaw Sachin, Muhammad Taseer, Nayak M. K., Makinde Oluwole Daniel, Entropy optimization for Darcy–Forchheimer electro-magneto-hydrodynamic slip flow of ferronanofluid due to stretching/shrinking rotating disk, Waves in Random and Complex Media, 2021. Crossref

  3. Jamshed Wasim, Mohd Nasir Nor Ain Azeany, Qureshi Muhammad Amer, Shahzad Faisal, Banerjee Ramashis, Eid Mohamed R., Nisar Kottakkaran Sooppy, Ahmad Sohail, Dynamical irreversible processes analysis of Poiseuille magneto-hybrid nanofluid flow in microchannel: A novel case study, Waves in Random and Complex Media, 2021. Crossref

  4. Dawar Abdullah, Wakif Abderrahim, Saeed Anwar, Shah Zahir, Muhammad Taseer, Kumam Poom, Significance of Lorentz forces on Jeffrey nanofluid flows over a convectively heated flat surface featured by multiple velocity slips and dual stretching constraint: a homotopy analysis approach, Journal of Computational Design and Engineering, 9, 2, 2022. Crossref

  5. Nayak Manoj K., Agbaje Titilayo M., Mondal Sabyasachi, Makanda Gilbert, Darcy–Forchheimer electromagnetic flow of entropy optimized microrotating Casson–Carreau nanomaterials, Heat Transfer, 51, 3, 2022. Crossref

  6. Agbaje T. M., Makanda G., Shafiq Anum, A Chebyshev Spectral Collocation Method-Based Series Approach for Boundary Layer Flow and Heat Transfer in a Micropolar Fluid past a Permeable Flat Plate, Journal of Applied Mathematics, 2022, 2022. Crossref

  7. Rashed A. S., Mahmoud Tarek A., Wazwaz Abdul-Majid, Axisymmetric forced flow of nonhomogeneous nanofluid over heated permeable cylinders, Waves in Random and Complex Media, 2022. Crossref

  8. Lalitha Kora, Veeranna Yarranna, Sreenivasa Giriyajjara, Ashok Reddy Deshmukh, Active and passive control of nanoparticles in ferromagnetic Jeffrey fluid flow, Heat Transfer, 51, 1, 2022. Crossref

  9. Yasir Muhammad, Khan Masood, Ahmed Awais, Binary chemically reactive flow of time-dependent Oldroyd-B nanofluid with variable properties, Waves in Random and Complex Media, 2022. Crossref

  10. Ramzan Muhammad, Shahmir Nazia, Alotaibi Hammad, Ghazwani Hassan Ali S, Muhammad Taseer, Thermal performance comparative analysis of nanofluid flows at an oblique stagnation point considering Xue model: a solar application, Journal of Computational Design and Engineering, 9, 1, 2022. Crossref

  11. Khashi'ie Najiyah S., Wahid Nur S., Arifin Norihan Md, Pop Ioan, Insight into three‐dimensional flow of three different dynamics of nanofluids subject to thermal radiation: The case of water–cobalt ferrite, water–manganese–zinc ferrite, and water–magnetite, Heat Transfer, 51, 5, 2022. Crossref

  12. Mishra S. R., Tinker Seema, Sharma Ram Prakash, Study of a nonuniform heat source over a Riga plate using n th‐order chemical reaction on Oldroyd‐B nanofluid flow for two‐dimensional motion , Heat Transfer, 51, 2, 2022. Crossref

  13. Yaseen Moh, Rawat Sawan K., Kumar Manoj, Hybrid nanofluid (MoS 2 –SiO 2 /water) flow with viscous dissipation and Ohmic heating on an irregular variably thick convex/concave‐shaped sheet in a porous medium , Heat Transfer, 51, 1, 2022. Crossref

  14. Pandey Alok Kumar, Upreti Himanshu, Joshi Navneet, Uddin Ziya, Effect of natural convection on 3D MHD flow of MoS2–GO/H2O via porous surface due to multiple slip mechanisms, Journal of Taibah University for Science, 16, 1, 2022. Crossref

  15. Nandeppanavar Mahantesh M., Nagaraj Raveendra, Kemparaju M. Chandrashekhar, Unsteady MHD stream of Casson fluid over an elongating surface in the presence of thermal radiation and viscous dissipation, Heat Transfer, 51, 6, 2022. Crossref

  16. Krishna M. Veera, Hall and ion slip effects and chemical reaction on MHD rotating convective flow past an infinite vertical porous plate with ramped wall and uniform wall temperatures, Biomass Conversion and Biorefinery, 2022. Crossref

  17. Agrawal Rashmi, Saini Sonu Kumar, Kaswan Pradeep, Numerical modeling of MHD micropolar fluid flow and melting heat transfer under thermal radiation and Joule heating, International Journal for Computational Methods in Engineering Science and Mechanics, 2022. Crossref

  18. Dawar Abdullah, Islam Saeed, Shah Zahir, Lone Showkat Ahmad, Significance of the third‐order slip flow of graphene‐(100% water, 70% water + 30% ethylene glycol, and 50% water + 50% ethylene glycol) nanofluids flow over a stretching surface with a Cattaneo–Christov heat and mass flux model, ZAMM - Journal of Applied Mathematics and Mechanics / Zeitschrift für Angewandte Mathematik und Mechanik, 2022. Crossref

  19. Arif Muhammad, Suresh Kumar Raju S., Vajravelu K., Kumam Poom, Raju C. S. K., Siva Rama Raju S. V., Physical intuition of entropy generation in a mixed convective hybrid nanofluid flow with chemical reaction, cross‐diffusion, and transpiration, Heat Transfer, 51, 8, 2022. Crossref

  20. Kayalvizhi J., Vijaya Kumar A. G., Entropy Analysis of EMHD Hybrid Nanofluid Stagnation Point Flow over a Porous Stretching Sheet with Melting Heat Transfer in the Presence of Thermal Radiation, Energies, 15, 21, 2022. Crossref

1033 Visualizações do artigo 14 downloads de artigos Métricas
1033 VISUALIZAÇÕES 14 TRANSFERÊNCIAS 20 Crossref CITAÇÕES Google
Scholar
CITAÇÕES

Artigos com conteúdo semelhante:

HEAT AND MASS TRANSFER OF A NON-NEWTONIAN JEFFREY NANOFLUID OVER AN EXTRUSION STRETCHING SHEET WITH THERMAL RADIATION AND NONUNIFORM HEAT SOURCE/SINK Computational Thermal Sciences: An International Journal, Vol.12, 2020, issue 2
Gopinath Mandal, Dulal Pal
EFFECTS OF CHEMICAL REACTION ON THIRD-GRADE MHD FLUID FLOW UNDER THE INFLUENCE OF HEAT AND MASS TRANSFER WITH VARIABLE REACTIVE INDEX Heat Transfer Research, Vol.50, 2019, issue 11
Rahmat Ellahi, Syeda Rida Bukhari, Marin Marin, Ambreen Afsar Khan
INFLUENCE OF THERMAL RADIATION AND VISCOUS DISSIPATION ON MHD FLOW OF UCM FLUID OVER A POROUS STRETCHING SHEET WITH HIGHER ORDER CHEMICAL REACTION Special Topics & Reviews in Porous Media: An International Journal, Vol.12, 2021, issue 4
Vinodkumar Reddy Mulinti, Pallavarapu Lakshminarayana
THERMAL DIFFUSION EFFECTS ON UNSTEADY MAGNETOHYDRODYNAMIC BOUNDARY LAYER SLIP FLOW PAST A VERTICAL PERMEABLE PLATE Special Topics & Reviews in Porous Media: An International Journal, Vol.7, 2016, issue 1
B. Rushi Kumar, S. Vijaya Kumar Varma, M. C Raju, C. Veeresh
ANALYTICAL APPROACH TO STAGNATION-POINT FLOW AND HEAT TRANSFER OF A MICROPOLAR FLUID VIA A PERMEABLE SHRINKING SHEET WITH SLIP AND CONVECTIVE BOUNDARY CONDITIONS Heat Transfer Research, Vol.50, 2019, issue 8
Khilap Singh, Manoj Kumar, Alok Kumar Pandey

Próximos artigos

Study on Adsorption-desorption Characteristics and Mechanism of Gaseous Water in Shale Na Zhang, Shuaidong Wang, Xinyue Wang, Hao Wang, Can Huang, Zheng Li Heat And Mass Transfer of Oldroyd-B And Jeffery-Williamson Ternary-Hybrid Nanofluids Over A Stretching Sheet In A Porous Medium Ahmed M. Rashad, Hossam Nabwey, Waqar A. Khan, Zeinab Abdelrahman, shereen abdelnaiem, Miad Abu Hawsah Steady Newtonian fluid flow in nephritis with linear dripping at the walls Nosheen Zareen Khan, A. M Siddiqui, Mostafa Zahri Effects of Momentum Slip and Convective Boundary Condition on a Forced Convection in a Channel Filled with Bidisperse Porous Medium (BDPM) Vanengmawia PC, Surender Ontela ON THERMAL CONVECTION IN ROTATING CASSON NANOFLUID PERMEATED WITH SUSPENDED PARTICLES IN A DARCY-BRINKMAN POROUS MEDIUM Pushap Sharma, Deepak Bains, G. C. Rana Effect of Microstructures on Mass Transfer inside a Hierarchically-structured Porous Catalyst Masood Moghaddam, Abbas Abbassi, Jafar Ghazanfarian Insight into the impact of melting heat transfer and MHD on stagnation point flow of tangent hyperbolic fluid over a porous rotating disk Priya Bartwal, Himanshu Upreti, Alok Kumar Pandey Numerical Simulation of 3D Darcy-Forchheimer Hybrid Nanofluid Flow with Heat Source/Sink and Partial Slip Effect across a Spinning Disc Bilal Ali, Sidra Jubair, Md Irfanul Haque Siddiqui Application of Artificial Neural Network for Modeling of Motile Microorganism-Enhanced MHD Tangent Hyperbolic Nanofluid across a vertical Slender Stretching Surface Bilal Ali, Shengjun Liu, Hongjuan Liu ELASTIC INTERACTIONS BETWEEN EQUILIBRIUM PORES/HOLES IN POROUS MEDIA UNDER REMOTE STRESS Kostas Davanas Pore structure and permeability behavior of porous media under in-situ stress and pore pressure: Discrete element method simulation on digital core Jun Yao, Chunqi Wang, Xiaoyu Wang, Zhaoqin Huang, Fugui Liu, Quan Xu, Yongfei Yang Influence of Lorentz forces on forced convection of Nanofluid in a porous lid driven enclosure Yi Man, Mostafa Barzegar Gerdroodbary SUTTERBY NANOFLUID FLOW WITH MICROORGANISMS AROUND A CURVED EXPANDING SURFACE THROUGH A POROUS MEDIUM: THERMAL DIFFUSION AND DIFFUSION THERMO IMPACTS galal Moatimid, Mona Mohamed, Khaled Elagamy CHARACTERISTICS OF FLOW REGIMES IN SPIRAL PACKED BEDS WITH SPHERES Mustafa Yasin Gökaslan, Mustafa Özdemir, Lütfullah Kuddusi Numerical study of the influence of magnetic field and throughflow on the onset of thermo-bio-convection in a Forchheimer‑extended Darcy-Brinkman porous nanofluid layer containing gyrotactic microorganisms Arpan Garg, Y.D. Sharma, Subit K. Jain, Sanjalee Maheshwari A nanofluid couple stress flow due to porous stretching and shrinking sheet with heat transfer A. B. Vishalakshi, U.S. Mahabaleshwar, V. Anitha, Dia Zeidan ROTATING WAVY CYLINDER ON BIOCONVECTION FLOW OF NANOENCAPSULATED PHASE CHANGE MATERIALS IN A FINNED CIRCULAR CYLINDER Noura Alsedais, Sang-Wook Lee, Abdelraheem Aly Porosity Impacts on MHD Casson Fluid past a Shrinking Cylinder with Suction Annuri Shobha, Murugan Mageswari, Aisha M. Alqahtani, Asokan Arulmozhi, Manyala Gangadhar Rao, Sudar Mozhi K, Ilyas Khan CREEPING FLOW OF COUPLE STRESS FLUID OVER A SPHERICAL FIELD ON A SATURATED BIPOROUS MEDIUM Shyamala Sakthivel , Pankaj Shukla, Selvi Ramasamy
Portal Digital Begell Biblioteca digital da Begell eBooks Diários Referências e Anais Coleções de pesquisa Políticas de preços e assinaturas Begell House Contato Language English 中文 Русский Português German French Spain