Volume 70 | Issue 6 | Year 2024 | Article Id. IJMTT-V70I6P103 | DOI : https://doi.org/10.14445/22315373/IJMTT-V70I6P103
Received | Revised | Accepted | Published |
---|---|---|---|
10 Apr 2024 | 24 May 2024 | 12 Jun 2024 | 30 Jun 2024 |
The pseudoplastic nature of kiwifruit juice is considered in this study under certain prescribed conditions. The flow
and heat transport modeling of kiwifruit juice along the wall of a divergent channel with applied suction or injection is
investigated with a suitably fitted non-Newtonian Power-Law fluid model. To simplify the equations governing fluid flow, heat
transfer, and the necessary boundary conditions, similarity variables are utilized to obtain self-similar equations. The reduced
form of underlying equations is evaluated by the finite difference method-based MATLAB solver 'bvp4c'. The velocity and
temperature profiles are graphically depicted by examining different values of the pertinent parameters that characterize the
flow. The influence of rheological flow parameters on velocity and temperature are analyzed from graphs, and conclusions are
drawn from the processing application’s points of view.
Divergent channel, Heat transport, Kiwifruit juice, Power-Law fluid, Pseudoplastic, Similarity variables.
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Ruhul Kuddus Ahmed, Kamal Debnath, "Flow and Heat Transport of Kiwifruit Juice past a Divergent Channel with Suction/Injection by Power-Law Fluid Model," International Journal of Mathematics Trends and Technology (IJMTT), vol. 70, no. 6, pp. 20-29, 2024. Crossref, https://doi.org/10.14445/22315373/IJMTT-V70I6P103