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Heat Transfer Research

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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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MHD FLOW AND HEAT TRANSFER IN A CASSON FLUID OVER A NONLINEARLY STRETCHING SHEET WITH NEWTONIAN HEATING

Volume 49, Issue 12, 2018, pp. 1185-1198
DOI: 10.1615/HeatTransRes.2018014771
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ABSTRACT

The magnetohydrodynamic (MHD) flow of a Casson fluid and heat transfer to a nonlinearly stretching sheet with Newtonian heating are studied. With the help of similarity transformations, the governing equations are converted into nonlinear ordinary differential equations. The Runge−Kutta−Fehlberg fourth-fift h order (RKF45) method is employed to obtain numerical solutions for the velocity and temperature distributions. Closed form analytical solutions are also obtained. The resulting velocity and temperature are shown graphically and discussed for the case of a uniform moving surface, a linearly or nonlinearly stretching sheet. The present results are also compared with the previous results for a Newtonian fluid. The results show that the velocity field is much more pronounced in the case of a uniformly moving surface as compared to a linearly stretching sheet or a nonlinearly stretching sheet. It is also found that the Casson fluid have higher velocity than the Newtonian fluid.

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  1. Ishak Nazila, Hussanan Abid, Mohamed Muhammad Khairul Anuar, Rosli Norhayati, Salleh Mohd Zuki, Heat and mass transfer flow of a viscoelastic nanofluid over a stretching/shrinking sheet with slip condition, 2059, 2019. Crossref

  2. Hussanan Abid, Wakif Abderrahim, Boulahia Zoubair, Chen Zhi-Min, WITHDRAWN: Mixed convection flow of viscoplastic Casson fluid over an impermeable slender sheet with Cattaneo–Christov heat flux, Physica A: Statistical Mechanics and its Applications, 2019. Crossref

  3. Ramesh Kesetti, Ojjela Odelu, Entropy generation analysis of natural convective chemically reacting squeezing flow of Casson fluid between parallel disks with Hall and Ion slip currents, Heat Transfer-Asian Research, 48, 8, 2019. Crossref

  4. Gangadhar Kotha, Vijayakumar Damerla, Chamkha Ali J., Kannan Thangavelu, Sakthivel Gnanasekaran, Effects of Newtonian heating and thermal radiation on micropolar ferrofluid flow past a stretching surface: Spectral quasi‐linearization method, Heat Transfer, 49, 2, 2020. Crossref

  5. Rafique Khuram, Imran Anwar Muhammad, Misiran Masnita, Khan Ilyas, Alharbi Sayer O., Thounthong Phatiphat, Nisar Kottakkaran Sooppy, Keller-Box Analysis of Buongiorno Model with Brownian and Thermophoretic Diffusion for Casson Nanofluid over an Inclined Surface, Symmetry, 11, 11, 2019. Crossref

  6. Alwawi Firas A., Alkasasbeh Hamzeh T., Rashad A.M., Idris Ruwaidiah, MHD natural convection of Sodium Alginate Casson nanofluid over a solid sphere, Results in Physics, 16, 2020. Crossref

  7. Das Mrutyunjay, Mahanta Ganeswar, Shaw Sachin, Heat and mass transfer effect on an unsteady MHD radiative chemically reactive Casson fluid over a stretching sheet in porous medium, Heat Transfer, 49, 8, 2020. Crossref

  8. Shah Zahir, Kumam Poom, Deebani Wejdan, Radiative MHD Casson Nanofluid Flow with Activation energy and chemical reaction over past nonlinearly stretching surface through Entropy generation, Scientific Reports, 10, 1, 2020. Crossref

  9. Ali A., Banerjee Soma Mitra, Das S., Hall and ion slip current’s impact on magneto-sodium alginate hybrid nanoliquid past a moving vertical plate with ramped heating, velocity slip and Darcy effects, Multidiscipline Modeling in Materials and Structures, 17, 1, 2020. Crossref

  10. Ashwinkumar G. P., Heat and mass transfer analysis in unsteady MHD flow of aluminum alloy/silver‐water nanoliquid due to an elongated surface, Heat Transfer, 50, 2, 2021. Crossref

  11. Hamarsheh Abdulkareem Saleh, Alwawi Firas A., Alkasasbeh Hamzeh T., Rashad Ahmed M., Idris Ruwaidiah, Heat Transfer Improvement in MHD Natural Convection Flow of Graphite Oxide/Carbon Nanotubes-Methanol Based Casson Nanofluids Past a Horizontal Circular Cylinder, Processes, 8, 11, 2020. Crossref

  12. Sulochana Chalavadi, Aparna S. R., Sandeep Naramgari, Heat and mass transfer of magnetohydrodynamic Casson fluid flow over a wedge with thermal radiation and chemical reaction, Heat Transfer, 50, 4, 2021. Crossref

  13. Kumar Challa Kalyan, Srinivas Suripeddi, Pulsating hydromagnetic flow of Casson fluid in a vertical channel filled with non‐Darcian porous medium, Heat Transfer, 50, 6, 2021. Crossref

  14. Alwawi Firas A., Hamarsheh Abdulkareem Saleh, Alkasasbeh Hamzeh T., Idris Ruwaidiah, Mixed Convection Flow of Magnetized Casson Nanofluid over a Cylindrical Surface, Coatings, 12, 3, 2022. Crossref

  15. Idowu Amos S., Akolade Mojeed T., Abubakar Jos U., Falodun Bidemi O., MHD free convective heat and mass transfer flow of dissipative Casson fluid with variable viscosity and thermal conductivity effects, Journal of Taibah University for Science, 14, 1, 2020. Crossref

  16. Li Yun-Xiang, Alqsair Umar F., Ramesh Katta, Khan Sami Ullah, Khan M. Ijaz, Nonlinear Heat Source/Sink and Activation Energy Assessment in Double Diffusion Flow of Micropolar (Non-Newtonian) Nanofluid with Convective Conditions, Arabian Journal for Science and Engineering, 47, 1, 2022. Crossref

  17. Abbas Zaheer, Hussain Sifat, Hasnain Jafar, Nadeem Amir, Rauf Amar, Non-Newtonian fluid flow having fluid–particle interaction through a porous zone in a channel with permeable walls, International Journal of Nonlinear Sciences and Numerical Simulation, 2021. Crossref

  18. Rajput Govind R., Jadhav Bipin P., Patil Vishwambhar S., Salunkhe S. N., Effects of nonlinear thermal radiation over magnetized stagnation point flow of Williamson fluid in porous media driven by stretching sheet, Heat Transfer, 50, 3, 2021. Crossref

  19. Biswal Manasa Manjari, Swain Kharabela, Dash Gouranga Charan, Ojha Kanakalata, Study of radiative magneto-non-Newtonian fluid flow over a nonlinearly elongating sheet with Soret and Dufour effects, Numerical Heat Transfer, Part A: Applications, 2022. Crossref

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