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Year 2024, Volume: 10 Issue: 5, 1137 - 1148, 10.09.2024

Abstract

References

  • [1] Choi SU, Eastman JA. Enhancing thermal conductivity of fluids with nanoparticles. Available at: https://ecotert.com/pdf/196525_From_unt-edu.pdf. Accessed Aug 7, 2024.
  • [2] Devi SA, Devi SS. Numerical investigation of hydromagnetic hybrid Cu–Al2O3/water nanofluid flow over a permeable stretching sheet with suction. Int J Nonlinear Sci Numer Simul 2016;17:249257. [CrossRef]
  • [3] Devi SS, Devi SA. Numerical investigation of three-dimensional hybrid Cu–Al2O3/water nanofluid flow over a stretching sheet with effecting Lorentz force subject to Newtonian heating. Can J Phys 2016;94:490496. [CrossRef]
  • [4] Ijaz Khan M, Hafeez MU, Hayat T, Imran Khan M, Alsaedi A. Magneto rotating flow of hybrid nanofluid with entropy generation. Comput Methods Programs Biomed 2020;183:105093. [CrossRef]
  • [5] Muneeshwaran M, Srinivasan G, Muthukumar P, Wang CC. Role of hybrid-nanofluid in heat transfer enhancement–A review. Int Commun Heat Mass Transf 2021;125:105341. [CrossRef]
  • [6] Sreenivasa BR, Faqeeh AJ, Alsaiari A, Alzahrani HA, Malik MY. Numerical study of heat transfer mechanism in the flow of ferromagnetic hybrid nanofluid over a stretching cylinder. Waves Random Complex Media 2022;14:117. [CrossRef]
  • [7] Yasir M, Malik ZU, Alzahrani AK, Khan M. Study of hybrid Al2O3-Cu nanomaterials on radiative flow over a stretching/shrinking cylinder: Comparative analysis. Ain Shams Engineer J 2023;14:102070. [CrossRef]
  • [8] Paul A, Nath JM, Das TK. Thermally stratified Cu–Al2O3/water hybrid nanofluid flow with the impact of an inclined magnetic field, viscous dissipation and heat source/sink across a vertically stretching cylinder. ZAMM‐J. Appl Math Mech 2024;104:e202300084. [CrossRef]
  • [9] Ali A, Khan HS, Noor I, Pasha AA, Irshad K, Al Mesfer MK, et al. Hall effects and Cattaneo–Christov heat flux on MHD flow of hybrid nanofluid over a varying thickness stretching surface. Mod Phys Lett B 2024;38:2450130. [CrossRef]
  • [10] Saranya S, Al-Mdallal QM, Javed S. Shifted legendre collocation method for the solution of unsteady viscous-ohmic dissipative hybrid ferrofluid flow over a cylinder. Nanomater 2021;11:1512. [CrossRef]
  • [11] Saranya S, Baranyi L, Al-Mdallal QM. Free convection flow of hybrid ferrofluid past a heated spinning cone. Therm Sci Engineer Prog 2022;32:101335. [CrossRef]
  • [12] Saranya S, Duraihem FZ, Animasaun IL, Al-Mdallal QM. Quartic autocatalysis on horizontal surfaces with an asymmetric concentration: Water-based ternary-hybrid nanofluid carrying titania, copper, and alumina nanoparticles. Phys Scr 2023;98:075214. [CrossRef]
  • [13] Tarakaramu N, Sivakumar N, Tamam N, Satya Narayana PV, Ramalingam S. Theoretical analysis of Arrhenius activation energy on 3D MHD nanofluid flow with convective boundary condition. Mod Phys Lett B 2024;38:2341009. [CrossRef]
  • [14] Jagadeesh S, Chenna Krishna Reddy M, Tarakaramu N, Ahmad H, Askar S, Shukhratovich Abdullaev S. Convective heat and mass transfer rate on 3D Williamson nanofluid flow via linear stretching sheet with thermal radiation and heat absorption. Sci Rep 2023;13:9889. [CrossRef]
  • [15] Wang F, Tarakaramu N, Sivakumar N, Narayana PS, Babu DH, Ramalingam S. Three dimensional nanofluid motion with convective boundary condition in presents of nonlinear thermal radiation via stretching sheet. J Indian Chem Soc 2023;100:100887. [CrossRef]
  • [16] Tarakaramu N, Satya Narayana PV, Sivakumar N, Harish Babu D, Bhagya Lakshmi K. Convective conditions on 3D magnetohydrodynamic (MHD) non-Newtonian nanofluid flow with nonlinear thermal radiation and heat absorption: A numerical analysis. J Nanofluids 2023;12:448457. [CrossRef]
  • [17] Devi MR, Sivakumar N, Tarakaramu N, Narayana PV. The impact of heat source and thermal radiation on nano-bioconvection containing gyrotactic microorganism flow in parallel channel. AIP Conf Proc 2023;2852:050010. [CrossRef]
  • [18] Hussain S, Ali A, Rasheed K, Pasha AA, Algarni S, Alqahtani T, et al. Application of response surface methodology to optimize MHD nanofluid flow over a rotating disk with thermal radiation and joule heating. Case Stud Therm Engineer 2023;52:103715. [CrossRef]
  • [19] Gari AA, Islam N, Bibi S, Majeed A, Ali K, Jamshed W, et al. A thermal case study of three dimensional MHD rotating flow comprising of multi-wall carbon nanotubes (MWCNTs) for sustainable energy systems. Case Stud Therm Engineer 2023;50:103504. [CrossRef]
  • [20] Ali A, Kanwal T, Awais M, Shah Z, Kumam P, Thounthong P. Impact of thermal radiation and non-uniform heat flux on MHD hybrid nanofluid along a stretching cylinder. Sci Rep 2021;11:20262. [CrossRef]
  • [21] Khan U, Zaib A, Ishak A, Sherif ES, Waini I, Chu YM, et al. Radiative mixed convective flow induced by hybrid nanofluid over a porous vertical cylinder in a porous media with irregular heat sink/source. Case Stud Therm Engineer 2022;30:101711. [CrossRef]
  • [22] Khan Z, Jan R, Jawad M, Hussain F. Radiation heat transfer of hybrid nanofluid stagnation point flow across a stretching porous cylinder. Therm Sci Engineer 2023;6:2595. [CrossRef]
  • [23] Suresha R, Arunkumar R, Hanumagowda BN, Abduvalieva D, Tarakaramu N, Awwad FA, et al. Combined effect of magneto hydrodynamics, couple stress, and viscosity variation on squeeze film characteristics of a cylinder and rough flat plate. SN Appl Sci 2023;5:350. [CrossRef]
  • [24] Casson N. Flow equation for pigment-oil suspensions of the printing ink-type. In: Mill CC, editor. Rheology of Disperse Systems. Oxford: Pergamon Press; 1959. pp. 84104.
  • [25] Kamran A, Hussain S, Sagheer M, Akmal N. A numerical study of magnetohydrodynamics flow in Casson nanofluid combined with Joule heating and slip boundary conditions. Results Phys 2017;7:30373048. [CrossRef]
  • [26] Ramesh GK, Kumar KG, Shehzad SA, Gireesha BJ. Enhancement of radiation on hydromagnetic Casson fluid flow towards a stretched cylinder with suspension of liquid-particles. Can J Phys 2018;96:1824. [CrossRef]
  • [27] Naqvi SM, Muhammad T, Asma M. Hydromagnetic flow of Casson nanofluid over a porous stretching cylinder with Newtonian heat and mass conditions. Phys A Stat Mech Appl 2020;550:123988. [CrossRef]
  • [28] Ragupathi P, Saranya S, Mittal HV, Al-Mdallal QM. Computational study on three-dimensional convective Casson nanofluid flow past a stretching sheet with Arrhenius activation energy and exponential heat source effects. Complexity 2021;2021:116. [CrossRef]
  • [29] Krishna MV, Ahammad NA, Chamkha AJ. Radiative MHD flow of Casson hybrid nanofluid over an infinite exponentially accelerated vertical porous surface. Case Stud Therm Engineer 2021;27:101229. [CrossRef]
  • [30] Jyothi AM, Varun Kumar RS, Madhukesh JK, Prasannakumara BC, Ramesh GK. Squeezing flow of Casson hybrid nanofluid between parallel plates with a heat source or sink and thermophoretic particle deposition. Heat Transf 2021;50:71397156. [CrossRef]
  • [31] Zeeshan A, Mehmood OU, Mabood F, Alzahrani F. Numerical analysis of hydromagnetic transport of Casson nanofluid over permeable linearly stretched cylinder with Arrhenius activation energy. Int Comm Heat Mass Transf 2022;130:105736. [CrossRef]
  • [32] Wang F, Zhang J, Algarni S, Naveed Khan M, Alqahtani T, Ahmad S. Numerical simulation of hybrid Casson nanofluid flow by the influence of magnetic dipole and gyrotactic microorganism. Waves Rand Complex Med 2022:116. [CrossRef]
  • [33] Saranya S, Al-Mdallal QM, Animasaun IL. Shifted Legendre collocation analysis of time-dependent Casson fluids and Carreau fluids conveying tiny particles and gyrotactic microorganisms: Dynamics on static and moving surfaces. Arab J Sci Engineer 2023;48:31333155. [CrossRef]
  • [34] Tarakaramu N, Reddappa B, Radha G, Abduvalieva D, Sivakumar N, Awwad FA, et al. Thermal radiation and heat generation on three-dimensional Casson fluid motion via porous stretching surface with variable thermal conductivity. Open Phys 2023;21:20230137. [CrossRef]
  • [35] Wang F, Tarakaramu N, Govindaraju MV, Sivakumar N, Lakshmi KB, Narayana PS, et al. Activation energy on three-dimensional Casson nanofluid motion via stretching sheet: Implementation of Buongiorno’s model. J Indian Chem Soc 2023;100:100886. [CrossRef]
  • [36] Radha G, Reddappa B, Tarakaramu N, Srinivas VS, Ramalingam S, Reddy NM, et al. Three dimensional casson nanofluid flow with convective boundary layer via stretching sheet. J Adv Zool 2023;44:11211129.
  • [37] Shah Z, Raja MA, Khan WA, Shoaib M, Tirth V, Algahtani A, et al. Computational intelligence paradigm with Levenberg-Marquardt networks for dynamics of Reynolds nanofluid model for Casson fluid flow. Tribol Int 2024;191:109180. [CrossRef]
  • [38] Masthanaiah Y, Tarakaramu N, Khan MI, Rushikesava A, Moussa SB, Fadhl BM, et al. Impact of viscous dissipation and entropy generation on cold liquid via channel with porous medium by analytical analysis. Case Stud Therm Engineer 2023;47:103059. [CrossRef]
  • [39] Ishak A, Nazar R, Pop I. Mixed convection boundary layer flow adjacent to a vertical surface embedded in a stable stratified medium. Int J Heat Mass Transf 2008;51:36933695. [CrossRef]
  • [40] Mukhopadhyay S, Mondal IC, Gorla RS. Effects of thermal stratification on flow and heat transfer past a porous vertical stretching surface. Heat Mass Transf 2012;48:915921. [CrossRef]
  • [41] Deka RK, Paul A. Transient free convection flow past an infinite moving vertical cylinder in a stably stratified fluid. J Heat Transf 2012;134:0425031. [CrossRef]
  • [42] Deka RK, Paul A. Transient free convection flow past an infinite vertical cylinder with thermal stratification. J Mech Sci Technol 2012;26:22292237. [CrossRef]
  • [43] Deka RK, Paul A. Convectively driven flow past an infinite moving vertical cylinder with thermal and mass stratification. Pramana 2013;81:641665. [CrossRef]
  • [44] Paul A, Deka RK. Unsteady natural convection flow past an infinite cylinder with thermal and mass stratification. Int J Engineer Math 2017;2017:8410691. [CrossRef]
  • [45] Khashi’ie NS, Arifin NM, Hafidzuddin EH, Wahi N. Thermally stratified flow of Cu-Al2O3/water hybrid nanofluid past a permeable stretching/shrinking circular cylinder. J Adv Res Fluid Mech Therm Sci 2019;63:154163.
  • [46] Jafar MA, Abbas Z, Hasnain J. Thermally stratified radiative flow of non-Newtonian fluid between two discs executing diverse type of in-plane motion. Case Stud Therm Engineer 2021;26:101187. [CrossRef]
  • [47] Ahmad S, Naveed Khan M, Rehman A, Felemban BF, Alqurashi MS, Alharbi FM, et al. Analysis of heat and mass transfer features of hybrid Casson nanofluid flow with the magnetic dipole past a stretched cylinder. Appl Sci 2021;11:11203. [CrossRef]
  • [48] Alkasasbeh H. Numerical solution of heat transfer flow of casson hybrid nanofluid over vertical stretching sheet with magnetic field effect. CFD Lett 2022;14:3952. [CrossRef]
  • [49] Paul A, Das TK, Nath JM. Numerical investigation on the thermal transportation of MHD Cu/Al 2 O 3-H 2 O Casson-hybrid-nanofluid flow across an exponentially stretching cylinder incorporating heat source. Phys Scr 2022;97:085701. [CrossRef]
  • [50] Shampine LF, Kierzenka J, Reichelt MW. Solving boundary value problems for ordinary differential equations in MATLAB with bvp4c. Tutor Notes 2000;2000:127.
  • [51] Paul A, Nath JM, Das TK. An investigation of the MHD Cu-Al 2 O 3/H 2 O hybrid-nanofluid in a porous medium across a vertically stretching cylinder incorporating thermal stratification impact. J Ther Engineer 2023;9:799810. [CrossRef]
  • [52] Ghadikolaei SS, Gholinia M, Hoseini ME, Ganji DD. Natural convection MHD flow due to MoS2–Ag nanoparticles suspended in C2H6O2H2O hybrid base fluid with thermal radiation. J Taiwan Inst Chem Engineer 2019;97:1223. [CrossRef]
  • [53] Elbashbeshy EM, Emam TG, El-Azab MS, Abdelgaber KM. Laminar boundary layer flow along a stretching cylinder embedded in a porous medium. Int J Phys Sci 2012;7:30673072. [CrossRef]

Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder

Year 2024, Volume: 10 Issue: 5, 1137 - 1148, 10.09.2024

Abstract

In the existence of a thermal source, this study examines the impacts of thermal stratification on the heat transmission characteristics of magnetohydrodynamic water-based copper/molybdenum disulfide Casson hybrid nanofluid flow across a vertical cylinder which is linearly stretching. A magnetic field with an inclination is applied along the stretched vertical cylinder. The driving forces for the flow are due to the stretched cylinder and natural convection. With appropriate similarity transformations, non-linear ordinary differential equations are obtained from the collection of mathematically modeled partial differential equations. The numerical findings are obtained by utilizing the MATLAB bvp4c approach. The consequence of protuberant factors on the thermal and velocity curves is also studied and is depicted pictorially. The outcomes of the friction drag and the thermal transmission rate are summarized in the table. The important contributions highlight that water-based copper/molybdenum disulfide Casson hybrid nanofluids have superior thermal conductivity than water-based copper Casson nanofluids. The water-based Casson hybrid nanofluid fluid has a noteworthy influence on enhancing thermal procedures. Thermal exchangers, solar power systems, automotive cooling down and precision manufacturing are among their beneficial functions. The friction drag for Casson hybrid nanofluid has been found to improve by up to 32.3% when contrasted to water-based Casson nanofluid. While contrasting the Casson hybrid nanofluid with the Casson nanofluid, the thermal transport rate is increased by almost 6.6%. The rate of thermal transmission at the solid surface is negatively impacted by thermal stratification. This finding has practical implications in the areas of bettering materials for thermal insulation and energy-effective designs for buildings. The outcomes reflect a significant enrichment in the discipline of fluid dynamics and nanofluid research since they offer promising potential for heat transfer optimization in various commercial environments.

References

  • [1] Choi SU, Eastman JA. Enhancing thermal conductivity of fluids with nanoparticles. Available at: https://ecotert.com/pdf/196525_From_unt-edu.pdf. Accessed Aug 7, 2024.
  • [2] Devi SA, Devi SS. Numerical investigation of hydromagnetic hybrid Cu–Al2O3/water nanofluid flow over a permeable stretching sheet with suction. Int J Nonlinear Sci Numer Simul 2016;17:249257. [CrossRef]
  • [3] Devi SS, Devi SA. Numerical investigation of three-dimensional hybrid Cu–Al2O3/water nanofluid flow over a stretching sheet with effecting Lorentz force subject to Newtonian heating. Can J Phys 2016;94:490496. [CrossRef]
  • [4] Ijaz Khan M, Hafeez MU, Hayat T, Imran Khan M, Alsaedi A. Magneto rotating flow of hybrid nanofluid with entropy generation. Comput Methods Programs Biomed 2020;183:105093. [CrossRef]
  • [5] Muneeshwaran M, Srinivasan G, Muthukumar P, Wang CC. Role of hybrid-nanofluid in heat transfer enhancement–A review. Int Commun Heat Mass Transf 2021;125:105341. [CrossRef]
  • [6] Sreenivasa BR, Faqeeh AJ, Alsaiari A, Alzahrani HA, Malik MY. Numerical study of heat transfer mechanism in the flow of ferromagnetic hybrid nanofluid over a stretching cylinder. Waves Random Complex Media 2022;14:117. [CrossRef]
  • [7] Yasir M, Malik ZU, Alzahrani AK, Khan M. Study of hybrid Al2O3-Cu nanomaterials on radiative flow over a stretching/shrinking cylinder: Comparative analysis. Ain Shams Engineer J 2023;14:102070. [CrossRef]
  • [8] Paul A, Nath JM, Das TK. Thermally stratified Cu–Al2O3/water hybrid nanofluid flow with the impact of an inclined magnetic field, viscous dissipation and heat source/sink across a vertically stretching cylinder. ZAMM‐J. Appl Math Mech 2024;104:e202300084. [CrossRef]
  • [9] Ali A, Khan HS, Noor I, Pasha AA, Irshad K, Al Mesfer MK, et al. Hall effects and Cattaneo–Christov heat flux on MHD flow of hybrid nanofluid over a varying thickness stretching surface. Mod Phys Lett B 2024;38:2450130. [CrossRef]
  • [10] Saranya S, Al-Mdallal QM, Javed S. Shifted legendre collocation method for the solution of unsteady viscous-ohmic dissipative hybrid ferrofluid flow over a cylinder. Nanomater 2021;11:1512. [CrossRef]
  • [11] Saranya S, Baranyi L, Al-Mdallal QM. Free convection flow of hybrid ferrofluid past a heated spinning cone. Therm Sci Engineer Prog 2022;32:101335. [CrossRef]
  • [12] Saranya S, Duraihem FZ, Animasaun IL, Al-Mdallal QM. Quartic autocatalysis on horizontal surfaces with an asymmetric concentration: Water-based ternary-hybrid nanofluid carrying titania, copper, and alumina nanoparticles. Phys Scr 2023;98:075214. [CrossRef]
  • [13] Tarakaramu N, Sivakumar N, Tamam N, Satya Narayana PV, Ramalingam S. Theoretical analysis of Arrhenius activation energy on 3D MHD nanofluid flow with convective boundary condition. Mod Phys Lett B 2024;38:2341009. [CrossRef]
  • [14] Jagadeesh S, Chenna Krishna Reddy M, Tarakaramu N, Ahmad H, Askar S, Shukhratovich Abdullaev S. Convective heat and mass transfer rate on 3D Williamson nanofluid flow via linear stretching sheet with thermal radiation and heat absorption. Sci Rep 2023;13:9889. [CrossRef]
  • [15] Wang F, Tarakaramu N, Sivakumar N, Narayana PS, Babu DH, Ramalingam S. Three dimensional nanofluid motion with convective boundary condition in presents of nonlinear thermal radiation via stretching sheet. J Indian Chem Soc 2023;100:100887. [CrossRef]
  • [16] Tarakaramu N, Satya Narayana PV, Sivakumar N, Harish Babu D, Bhagya Lakshmi K. Convective conditions on 3D magnetohydrodynamic (MHD) non-Newtonian nanofluid flow with nonlinear thermal radiation and heat absorption: A numerical analysis. J Nanofluids 2023;12:448457. [CrossRef]
  • [17] Devi MR, Sivakumar N, Tarakaramu N, Narayana PV. The impact of heat source and thermal radiation on nano-bioconvection containing gyrotactic microorganism flow in parallel channel. AIP Conf Proc 2023;2852:050010. [CrossRef]
  • [18] Hussain S, Ali A, Rasheed K, Pasha AA, Algarni S, Alqahtani T, et al. Application of response surface methodology to optimize MHD nanofluid flow over a rotating disk with thermal radiation and joule heating. Case Stud Therm Engineer 2023;52:103715. [CrossRef]
  • [19] Gari AA, Islam N, Bibi S, Majeed A, Ali K, Jamshed W, et al. A thermal case study of three dimensional MHD rotating flow comprising of multi-wall carbon nanotubes (MWCNTs) for sustainable energy systems. Case Stud Therm Engineer 2023;50:103504. [CrossRef]
  • [20] Ali A, Kanwal T, Awais M, Shah Z, Kumam P, Thounthong P. Impact of thermal radiation and non-uniform heat flux on MHD hybrid nanofluid along a stretching cylinder. Sci Rep 2021;11:20262. [CrossRef]
  • [21] Khan U, Zaib A, Ishak A, Sherif ES, Waini I, Chu YM, et al. Radiative mixed convective flow induced by hybrid nanofluid over a porous vertical cylinder in a porous media with irregular heat sink/source. Case Stud Therm Engineer 2022;30:101711. [CrossRef]
  • [22] Khan Z, Jan R, Jawad M, Hussain F. Radiation heat transfer of hybrid nanofluid stagnation point flow across a stretching porous cylinder. Therm Sci Engineer 2023;6:2595. [CrossRef]
  • [23] Suresha R, Arunkumar R, Hanumagowda BN, Abduvalieva D, Tarakaramu N, Awwad FA, et al. Combined effect of magneto hydrodynamics, couple stress, and viscosity variation on squeeze film characteristics of a cylinder and rough flat plate. SN Appl Sci 2023;5:350. [CrossRef]
  • [24] Casson N. Flow equation for pigment-oil suspensions of the printing ink-type. In: Mill CC, editor. Rheology of Disperse Systems. Oxford: Pergamon Press; 1959. pp. 84104.
  • [25] Kamran A, Hussain S, Sagheer M, Akmal N. A numerical study of magnetohydrodynamics flow in Casson nanofluid combined with Joule heating and slip boundary conditions. Results Phys 2017;7:30373048. [CrossRef]
  • [26] Ramesh GK, Kumar KG, Shehzad SA, Gireesha BJ. Enhancement of radiation on hydromagnetic Casson fluid flow towards a stretched cylinder with suspension of liquid-particles. Can J Phys 2018;96:1824. [CrossRef]
  • [27] Naqvi SM, Muhammad T, Asma M. Hydromagnetic flow of Casson nanofluid over a porous stretching cylinder with Newtonian heat and mass conditions. Phys A Stat Mech Appl 2020;550:123988. [CrossRef]
  • [28] Ragupathi P, Saranya S, Mittal HV, Al-Mdallal QM. Computational study on three-dimensional convective Casson nanofluid flow past a stretching sheet with Arrhenius activation energy and exponential heat source effects. Complexity 2021;2021:116. [CrossRef]
  • [29] Krishna MV, Ahammad NA, Chamkha AJ. Radiative MHD flow of Casson hybrid nanofluid over an infinite exponentially accelerated vertical porous surface. Case Stud Therm Engineer 2021;27:101229. [CrossRef]
  • [30] Jyothi AM, Varun Kumar RS, Madhukesh JK, Prasannakumara BC, Ramesh GK. Squeezing flow of Casson hybrid nanofluid between parallel plates with a heat source or sink and thermophoretic particle deposition. Heat Transf 2021;50:71397156. [CrossRef]
  • [31] Zeeshan A, Mehmood OU, Mabood F, Alzahrani F. Numerical analysis of hydromagnetic transport of Casson nanofluid over permeable linearly stretched cylinder with Arrhenius activation energy. Int Comm Heat Mass Transf 2022;130:105736. [CrossRef]
  • [32] Wang F, Zhang J, Algarni S, Naveed Khan M, Alqahtani T, Ahmad S. Numerical simulation of hybrid Casson nanofluid flow by the influence of magnetic dipole and gyrotactic microorganism. Waves Rand Complex Med 2022:116. [CrossRef]
  • [33] Saranya S, Al-Mdallal QM, Animasaun IL. Shifted Legendre collocation analysis of time-dependent Casson fluids and Carreau fluids conveying tiny particles and gyrotactic microorganisms: Dynamics on static and moving surfaces. Arab J Sci Engineer 2023;48:31333155. [CrossRef]
  • [34] Tarakaramu N, Reddappa B, Radha G, Abduvalieva D, Sivakumar N, Awwad FA, et al. Thermal radiation and heat generation on three-dimensional Casson fluid motion via porous stretching surface with variable thermal conductivity. Open Phys 2023;21:20230137. [CrossRef]
  • [35] Wang F, Tarakaramu N, Govindaraju MV, Sivakumar N, Lakshmi KB, Narayana PS, et al. Activation energy on three-dimensional Casson nanofluid motion via stretching sheet: Implementation of Buongiorno’s model. J Indian Chem Soc 2023;100:100886. [CrossRef]
  • [36] Radha G, Reddappa B, Tarakaramu N, Srinivas VS, Ramalingam S, Reddy NM, et al. Three dimensional casson nanofluid flow with convective boundary layer via stretching sheet. J Adv Zool 2023;44:11211129.
  • [37] Shah Z, Raja MA, Khan WA, Shoaib M, Tirth V, Algahtani A, et al. Computational intelligence paradigm with Levenberg-Marquardt networks for dynamics of Reynolds nanofluid model for Casson fluid flow. Tribol Int 2024;191:109180. [CrossRef]
  • [38] Masthanaiah Y, Tarakaramu N, Khan MI, Rushikesava A, Moussa SB, Fadhl BM, et al. Impact of viscous dissipation and entropy generation on cold liquid via channel with porous medium by analytical analysis. Case Stud Therm Engineer 2023;47:103059. [CrossRef]
  • [39] Ishak A, Nazar R, Pop I. Mixed convection boundary layer flow adjacent to a vertical surface embedded in a stable stratified medium. Int J Heat Mass Transf 2008;51:36933695. [CrossRef]
  • [40] Mukhopadhyay S, Mondal IC, Gorla RS. Effects of thermal stratification on flow and heat transfer past a porous vertical stretching surface. Heat Mass Transf 2012;48:915921. [CrossRef]
  • [41] Deka RK, Paul A. Transient free convection flow past an infinite moving vertical cylinder in a stably stratified fluid. J Heat Transf 2012;134:0425031. [CrossRef]
  • [42] Deka RK, Paul A. Transient free convection flow past an infinite vertical cylinder with thermal stratification. J Mech Sci Technol 2012;26:22292237. [CrossRef]
  • [43] Deka RK, Paul A. Convectively driven flow past an infinite moving vertical cylinder with thermal and mass stratification. Pramana 2013;81:641665. [CrossRef]
  • [44] Paul A, Deka RK. Unsteady natural convection flow past an infinite cylinder with thermal and mass stratification. Int J Engineer Math 2017;2017:8410691. [CrossRef]
  • [45] Khashi’ie NS, Arifin NM, Hafidzuddin EH, Wahi N. Thermally stratified flow of Cu-Al2O3/water hybrid nanofluid past a permeable stretching/shrinking circular cylinder. J Adv Res Fluid Mech Therm Sci 2019;63:154163.
  • [46] Jafar MA, Abbas Z, Hasnain J. Thermally stratified radiative flow of non-Newtonian fluid between two discs executing diverse type of in-plane motion. Case Stud Therm Engineer 2021;26:101187. [CrossRef]
  • [47] Ahmad S, Naveed Khan M, Rehman A, Felemban BF, Alqurashi MS, Alharbi FM, et al. Analysis of heat and mass transfer features of hybrid Casson nanofluid flow with the magnetic dipole past a stretched cylinder. Appl Sci 2021;11:11203. [CrossRef]
  • [48] Alkasasbeh H. Numerical solution of heat transfer flow of casson hybrid nanofluid over vertical stretching sheet with magnetic field effect. CFD Lett 2022;14:3952. [CrossRef]
  • [49] Paul A, Das TK, Nath JM. Numerical investigation on the thermal transportation of MHD Cu/Al 2 O 3-H 2 O Casson-hybrid-nanofluid flow across an exponentially stretching cylinder incorporating heat source. Phys Scr 2022;97:085701. [CrossRef]
  • [50] Shampine LF, Kierzenka J, Reichelt MW. Solving boundary value problems for ordinary differential equations in MATLAB with bvp4c. Tutor Notes 2000;2000:127.
  • [51] Paul A, Nath JM, Das TK. An investigation of the MHD Cu-Al 2 O 3/H 2 O hybrid-nanofluid in a porous medium across a vertically stretching cylinder incorporating thermal stratification impact. J Ther Engineer 2023;9:799810. [CrossRef]
  • [52] Ghadikolaei SS, Gholinia M, Hoseini ME, Ganji DD. Natural convection MHD flow due to MoS2–Ag nanoparticles suspended in C2H6O2H2O hybrid base fluid with thermal radiation. J Taiwan Inst Chem Engineer 2019;97:1223. [CrossRef]
  • [53] Elbashbeshy EM, Emam TG, El-Azab MS, Abdelgaber KM. Laminar boundary layer flow along a stretching cylinder embedded in a porous medium. Int J Phys Sci 2012;7:30673072. [CrossRef]
There are 53 citations in total.

Details

Primary Language English
Subjects Thermodynamics and Statistical Physics
Journal Section Articles
Authors

Jintu Mani Nath This is me 0000-0002-9596-2936

Ashish Paul This is me 0000-0001-7542-4025

Tusar Kanti Das This is me 0000-0001-8105-4366

Publication Date September 10, 2024
Submission Date December 17, 2023
Acceptance Date April 9, 2024
Published in Issue Year 2024 Volume: 10 Issue: 5

Cite

APA Nath, J. M., Paul, A., & Das, T. K. (2024). Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering, 10(5), 1137-1148.
AMA Nath JM, Paul A, Das TK. Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering. September 2024;10(5):1137-1148.
Chicago Nath, Jintu Mani, Ashish Paul, and Tusar Kanti Das. “Heat Transfer Characteristics of Magnetohydrodynamic Casson Stratified Hybrid Nanofluid Flow past a Porous Stretching Cylinder”. Journal of Thermal Engineering 10, no. 5 (September 2024): 1137-48.
EndNote Nath JM, Paul A, Das TK (September 1, 2024) Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering 10 5 1137–1148.
IEEE J. M. Nath, A. Paul, and T. K. Das, “Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder”, Journal of Thermal Engineering, vol. 10, no. 5, pp. 1137–1148, 2024.
ISNAD Nath, Jintu Mani et al. “Heat Transfer Characteristics of Magnetohydrodynamic Casson Stratified Hybrid Nanofluid Flow past a Porous Stretching Cylinder”. Journal of Thermal Engineering 10/5 (September 2024), 1137-1148.
JAMA Nath JM, Paul A, Das TK. Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering. 2024;10:1137–1148.
MLA Nath, Jintu Mani et al. “Heat Transfer Characteristics of Magnetohydrodynamic Casson Stratified Hybrid Nanofluid Flow past a Porous Stretching Cylinder”. Journal of Thermal Engineering, vol. 10, no. 5, 2024, pp. 1137-48.
Vancouver Nath JM, Paul A, Das TK. Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering. 2024;10(5):1137-48.

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