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Lattice Boltzmann method for nanofluid flow and heat transfer in a curve-ended T-shaped heat exchanger

Rahimi, A; Bakhshi, H; Dehghan Saee, A; Kasaeipoor, A; Hasani Malekshah, E

Authors

A Rahimi

H Bakhshi

A Dehghan Saee

A Kasaeipoor

E Hasani Malekshah



Abstract

Purpose
The study aims to study the nanofluid flow and heat transfer in a T-shaped heat exchanger. For the numerical simulations, the lattice Boltzmann method is used.
Design/methodology/approach
The end of each branch of the heat exchanger is considered a curve wall that requires special thermal and physical boundary conditions. To improve the thermal performance of the heat exchanger, the CuO–water nanofluid, which has better heat transfer performance with respect to pure water, is used. The dynamic viscosity of nanofluid is estimated by means of KKL model. Several active fins and solid bodies are implanted within the heat exchanger with different thermal arrangements.
Findings
In the present work, different approaches such as heatline visualization, local and total entropy generation analysis, local and total Nusselt variation are used to detect the impact of different considered parameters such as Rayleigh number (103 < Ra < 106), solid volume fraction of nanofluid (φ = 0,0.01,0.02,0.03 and 0.04 vol. per cent) and thermal arrangements of internal bodies (Case A, Case B, Case C and Case D) on the fluid flow and heat transfer performance.
Originality/value
The originality of this work is to analyze the two-dimensional natural convection and entropy generation using lattice Boltzmann method.

Citation

Rahimi, A., Bakhshi, H., Dehghan Saee, A., Kasaeipoor, A., & Hasani Malekshah, E. (2019). Lattice Boltzmann method for nanofluid flow and heat transfer in a curve-ended T-shaped heat exchanger. International Journal of Numerical Methods for Heat and Fluid Flow, 29(1), 21-42. https://doi.org/10.1108/hff-05-2018-0249

Journal Article Type Article
Acceptance Date Jul 27, 2018
Online Publication Date Jan 7, 2019
Publication Date Jan 7, 2019
Deposit Date Jan 7, 2019
Journal International Journal of Numerical Methods for Heat & Fluid Flow
Print ISSN 0961-5539
Publisher Emerald
Volume 29
Issue 1
Pages 21-42
DOI https://doi.org/10.1108/hff-05-2018-0249
Keywords Mechanical Engineering, Mechanics of Materials, Applied Mathematics, Computer Science Applications
Publisher URL https://doi.org/10.1108/hff-05-2018-0249
Related Public URLs https://www.emeraldinsight.com/loi/hff

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