Numerical study on heat transfer characteristics of nanofluid based natural circulation loop

In this paper the steady-state analysis has been carried out on single phase natural circulation loop with water and water based Al2O3 (Al2O3-water) nanofluid at 1%, 3%, 5%, and 6% particle volume concentrations. For this study, a 3-D geometry of natural circulation loop is developed and simulated b...

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Main Authors: Bejjam Ramesh Babu, Kumar Kiran K.
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2018-01-01
Series:Thermal Science
Subjects:
CFD
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2018/0354-98361700087B.pdf
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spelling doaj-fd2306c0289744eeb888bca01a73f5832021-01-02T09:50:48ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632018-01-0122288589710.2298/TSCI160826087B0354-98361700087BNumerical study on heat transfer characteristics of nanofluid based natural circulation loopBejjam Ramesh Babu0Kumar Kiran K.1National Institute of Technology Warangal, Department of Mechanical Engineering, Telangana, IndiaNational Institute of Technology Warangal, Department of Mechanical Engineering, Telangana, IndiaIn this paper the steady-state analysis has been carried out on single phase natural circulation loop with water and water based Al2O3 (Al2O3-water) nanofluid at 1%, 3%, 5%, and 6% particle volume concentrations. For this study, a 3-D geometry of natural circulation loop is developed and simulated by using the software, ANSYS (FLUENT) 14.5. Based on the Stokes number, mixture model is adopted to simulate the nanofluid based natural circulation loop. For the simulations, the imposed thermal boundary conditions are: constant heat input over the range of 200-1000 W with step size of 200 W at the heat source and isothermal wall temperature of 293 K at the heat sink. Adiabatic boundary condition is imposed to the riser and down-comer. The heat transfer characteristics and fluid-flow behavior of the loop fluid in natural circulation loop for different heat inputs and particle concentrations are presented. The result shows that the mass-flow rate of loop fluid in natural circulation loop is enhanced by 26% and effectiveness of the natural circulation loop is improved by 15% with Al2O3-water nanofluid when compared with water. All the simulation results are validated with the open literature in terms of Reynolds number and modified Grashof number. These comparisons confidently say that the present 3-D numerical model could be useful to estimate the performance of natural circulation loop.http://www.doiserbia.nb.rs/img/doi/0354-9836/2018/0354-98361700087B.pdfheat transfernatural circulationnanofluidCFDmixture model
collection DOAJ
language English
format Article
sources DOAJ
author Bejjam Ramesh Babu
Kumar Kiran K.
spellingShingle Bejjam Ramesh Babu
Kumar Kiran K.
Numerical study on heat transfer characteristics of nanofluid based natural circulation loop
Thermal Science
heat transfer
natural circulation
nanofluid
CFD
mixture model
author_facet Bejjam Ramesh Babu
Kumar Kiran K.
author_sort Bejjam Ramesh Babu
title Numerical study on heat transfer characteristics of nanofluid based natural circulation loop
title_short Numerical study on heat transfer characteristics of nanofluid based natural circulation loop
title_full Numerical study on heat transfer characteristics of nanofluid based natural circulation loop
title_fullStr Numerical study on heat transfer characteristics of nanofluid based natural circulation loop
title_full_unstemmed Numerical study on heat transfer characteristics of nanofluid based natural circulation loop
title_sort numerical study on heat transfer characteristics of nanofluid based natural circulation loop
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2018-01-01
description In this paper the steady-state analysis has been carried out on single phase natural circulation loop with water and water based Al2O3 (Al2O3-water) nanofluid at 1%, 3%, 5%, and 6% particle volume concentrations. For this study, a 3-D geometry of natural circulation loop is developed and simulated by using the software, ANSYS (FLUENT) 14.5. Based on the Stokes number, mixture model is adopted to simulate the nanofluid based natural circulation loop. For the simulations, the imposed thermal boundary conditions are: constant heat input over the range of 200-1000 W with step size of 200 W at the heat source and isothermal wall temperature of 293 K at the heat sink. Adiabatic boundary condition is imposed to the riser and down-comer. The heat transfer characteristics and fluid-flow behavior of the loop fluid in natural circulation loop for different heat inputs and particle concentrations are presented. The result shows that the mass-flow rate of loop fluid in natural circulation loop is enhanced by 26% and effectiveness of the natural circulation loop is improved by 15% with Al2O3-water nanofluid when compared with water. All the simulation results are validated with the open literature in terms of Reynolds number and modified Grashof number. These comparisons confidently say that the present 3-D numerical model could be useful to estimate the performance of natural circulation loop.
topic heat transfer
natural circulation
nanofluid
CFD
mixture model
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2018/0354-98361700087B.pdf
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