Flow Boiling Heat Transfer Enhancement by Using ZnO-Water Nanofluids

Nanofluids are liquid suspensions containing nanoparticles that are smaller than 100 nm. There is an increased interest in nanofluids as thermal conductivity of nanofluids is significantly higher than that of the base liquids. ZnO-water nanofluids with volume concentration of ZnO particles varying f...

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Main Authors: Om Shankar Prajapati, Nirupam Rohatgi
Format: Article
Language:English
Published: Hindawi Limited 2014-01-01
Series:Science and Technology of Nuclear Installations
Online Access:http://dx.doi.org/10.1155/2014/890316
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spelling doaj-4915f212112442a8b5ce26a75c111c732020-11-24T23:41:23ZengHindawi LimitedScience and Technology of Nuclear Installations1687-60751687-60832014-01-01201410.1155/2014/890316890316Flow Boiling Heat Transfer Enhancement by Using ZnO-Water NanofluidsOm Shankar Prajapati0Nirupam Rohatgi1Department of Mechanical Engineering, Rajasthan Technical University, Kota, Rajasthan 324010, IndiaDepartment of Mechanical Engineering, Malaviya National Institute of Technology, Jaipur, Rajasthan 302017, IndiaNanofluids are liquid suspensions containing nanoparticles that are smaller than 100 nm. There is an increased interest in nanofluids as thermal conductivity of nanofluids is significantly higher than that of the base liquids. ZnO-water nanofluids with volume concentration of ZnO particles varying from 0.0001 to 0.1% were prepared using ultrasonic vibration mixer. Thermal conductivity of the ZnO-water fluids was investigated for different sonication time using thermal property analyzer (KD2 Pro). Thermal conductivity of nanofluids for a given concentration of nanoparticle varies with sonication time. Heat transfer coefficient and pressure drop in an annular test section with variable pressure (1–2.5 bar) and heat flux (0–400 kW/m2) at constant mass flux of 400 kg/m2s were studied for samples having maximum thermal conductivity. Surface roughness of the heating rod was also measured before and after the experimentation. The study shows that heat transfer coefficient increases beyond the base fluid with pressure and concentration of ZnO.http://dx.doi.org/10.1155/2014/890316
collection DOAJ
language English
format Article
sources DOAJ
author Om Shankar Prajapati
Nirupam Rohatgi
spellingShingle Om Shankar Prajapati
Nirupam Rohatgi
Flow Boiling Heat Transfer Enhancement by Using ZnO-Water Nanofluids
Science and Technology of Nuclear Installations
author_facet Om Shankar Prajapati
Nirupam Rohatgi
author_sort Om Shankar Prajapati
title Flow Boiling Heat Transfer Enhancement by Using ZnO-Water Nanofluids
title_short Flow Boiling Heat Transfer Enhancement by Using ZnO-Water Nanofluids
title_full Flow Boiling Heat Transfer Enhancement by Using ZnO-Water Nanofluids
title_fullStr Flow Boiling Heat Transfer Enhancement by Using ZnO-Water Nanofluids
title_full_unstemmed Flow Boiling Heat Transfer Enhancement by Using ZnO-Water Nanofluids
title_sort flow boiling heat transfer enhancement by using zno-water nanofluids
publisher Hindawi Limited
series Science and Technology of Nuclear Installations
issn 1687-6075
1687-6083
publishDate 2014-01-01
description Nanofluids are liquid suspensions containing nanoparticles that are smaller than 100 nm. There is an increased interest in nanofluids as thermal conductivity of nanofluids is significantly higher than that of the base liquids. ZnO-water nanofluids with volume concentration of ZnO particles varying from 0.0001 to 0.1% were prepared using ultrasonic vibration mixer. Thermal conductivity of the ZnO-water fluids was investigated for different sonication time using thermal property analyzer (KD2 Pro). Thermal conductivity of nanofluids for a given concentration of nanoparticle varies with sonication time. Heat transfer coefficient and pressure drop in an annular test section with variable pressure (1–2.5 bar) and heat flux (0–400 kW/m2) at constant mass flux of 400 kg/m2s were studied for samples having maximum thermal conductivity. Surface roughness of the heating rod was also measured before and after the experimentation. The study shows that heat transfer coefficient increases beyond the base fluid with pressure and concentration of ZnO.
url http://dx.doi.org/10.1155/2014/890316
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AT nirupamrohatgi flowboilingheattransferenhancementbyusingznowaternanofluids
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