4.6 Article

MHD Flow and Heat Transfer of Hybrid Nanofluid over an Exponentially Shrinking Surface with Heat Source/Sink

Journal

APPLIED SCIENCES-BASEL
Volume 11, Issue 17, Pages -

Publisher

MDPI
DOI: 10.3390/app11178199

Keywords

hybrid nanofluid; carbon nanotube (CNTs); heat transfer enhancement; magnetic field effect (MHD)

Funding

  1. UNIVERSITI KEBANGSAAN MALAYSIA [GGP-2020-030]

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This study focused on the flow and heat transfer behaviors of hybrid nanofluid with carbon nanotubes on a permeable exponentially shrinking surface and investigated the effects of a magnetic field and heat source/sink. The authors developed a mathematical model and found dual solutions within a specific range, while also analyzing the impact of heat source/sink on the Nusselt number. The study concluded that the heat transfer rate of the hybrid nanofluid is better than regular nanofluid and conventional fluid.
In nanotechnology research, nanofluid technology contributes many applications to engineering applications and industry, such as power generation, solar collection, heat exchangers for cooling, and many more. However, there are still a few constraints in terms of heat transfer enhancement, although nanofluid properties show the best heat transfer rate compared with conventional fluids. Thus, this study was conducted for the purpose of investigating the behaviors of flow and heat transfer of hybrid nanofluid with carbon nanotubes (CNTs) on a permeable exponentially shrinking surface, as well as investigating the effects of a magnetic field and heat source/sink. This study was conducted by developing a mathematical model, which was the Tiwari-Das model for momentum and energy equations, and then transforming the model's partial differential equations (PDEs) to ordinary differential equations (ODEs) using a similarity solution. Next, these equations were solved numerically using the MATLAB bvp4c boundary value problem solver. The authors particularly explored these behaviors with a few variations. Based on the results obtained, it was found that dual solutions exist in a specific range of the shrinking case, lambda(c) < lambda < -lambda and that the critical point lambda(c) also exists in a range of -1.5 < lambda(c) < -1 with different parameters. For the heat source/sink effect, the Nusselt number was higher when heat sink case epsilon < 0, whereas it decreased when the heat source case epsilon > 0. Therefore, this study deduced that the heat transfer rate of hybrid nanofluid (CNTs/Cu-water) is better than regular nanofluid (CNT-water) and conventional fluid (water). The present study took into consideration the problem of MHD flow and heat transfer analysis of a hybrid nanofluid towards an exponentially shrinking surface with the presence of heat source/sink and thermal radiation effects. The authors show that dual solutions exist within a specific range of values due to the shrinking case. The current work is predicted to have numerous benefits in equivalent real-world systems.

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