2019
DOI: 10.1108/hff-09-2018-0496
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Study on fluid flow and heat transfer in fluid channel filled with KKL model-based nanofluid during natural convection using FVM

Abstract: Purpose A comprehensive study on the fluid flow and heat transfer in a nanofluid channel is carried out. The configuration of the channel is as like as quarter channel. The channel is filled with CuO–water nanofluid. Design/methodology/approach The Koo–Kleinstreuer–Li model is used to estimate the dynamic viscosity and consider the Brownian motion. On the other hand, the influence of nanoparticles’ shapes on the heat transfer rate is considered in the simulations. The channel is included with the injection p… Show more

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Cited by 11 publications
(4 citation statements)
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References 29 publications
(23 reference statements)
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“…The KKL model was used to estimate the dynamic viscosity of nanoparticles based on their shape in the simulation. In nanofluid-filled channels, Rao et al [ 26 ] considered fluid flow, heat transfer, entropy generation, and hot-wire visualization using the finite volume method. A Koo–Kleinstreuer–Li model was used to estimate dynamic viscosity, and Brownian motion was taken into account.…”
Section: Introductionmentioning
confidence: 99%
“…The KKL model was used to estimate the dynamic viscosity of nanoparticles based on their shape in the simulation. In nanofluid-filled channels, Rao et al [ 26 ] considered fluid flow, heat transfer, entropy generation, and hot-wire visualization using the finite volume method. A Koo–Kleinstreuer–Li model was used to estimate dynamic viscosity, and Brownian motion was taken into account.…”
Section: Introductionmentioning
confidence: 99%
“…Energy flow visualization is important for understanding of heat flow within enclosures. While heat flow visualization cannot be carried out via experimental approaches, numerical visualization tool via “heatlines,” first proposed by Kimura and Bejan (1983), has been successfully used to visualize heat flow for various applications of thermal convection within enclosures (Al-Jethelah et al , 2018; Anandalakshmi and Basak, 2013; Biswal and Basak, 2017; Basak et al , 2018; Das and Basak, 2016; Dash, 1996; Ferhi and Djebali, 2020; Hooshmand et al , 2019; Islam et al , 2021; Kaluri and Basak, 2010; Khakrah et al , 2019; Liu et al , 2019; Lukose and Basak, 2020; Manna et al , 2021; Priam and Nasrin, 2022; Rahimi et al , 2019; Rao et al , 2019; Salari et al , 2018; Wang et al , 2020; Zhao et al , 2007). Heat flow trajectories via heatlines follow a few set of rules (Basak et al , 2018).…”
Section: Introductionmentioning
confidence: 99%
“…Several applications are identified for the free convection problem such as thermal storage (Shariatifard et al , 2021), furnaces (Hejri et al , 2021), passive cooling (KhakRah et al , 2019), drying system (Rao et al , 2019), solar collector (Hooshmand et al , 2019), cooling of electronic devices (Hejri and Malekshah, 2021) and so on. In this regard, numerous numerical and experimental investigations are carried out to analyze all aspects of the natural convection problem in the cavities.…”
Section: Introductionmentioning
confidence: 99%