Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage

In the current study, the ratio of a precise heat transfer growth to the different wt.% of the Zinc oxide-DW (ZnO-DW) based nanofluids are considered in a closed single-tube circular heat exchanger experimentally and by using ANSYS modeling. Four varying concentrations, 0.1%, 0.075%, 0.05%, and 0.02...

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Main Authors: Ahmed, Waqar, Chowdhury, Zaira Zaman, Kazi, Salim Newaz, Bin Johan, Mohd Rafie, Abdelrazek, Ali H., Fayaz, H., Badruddin, Irfan Anjum, Mujtaba, M. A., Soudagar, Manzoore Elahi M., Akram, Naveed, Mehmood, Shahid, Ahmad, Muhammad Shakeel, Kamangar, Sarfaraz, Khan, T. M. Yunus
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Published: Elsevier 2021
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Online Access:http://eprints.um.edu.my/34481/
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spelling my.um.eprints.344812022-06-13T07:47:10Z http://eprints.um.edu.my/34481/ Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage Ahmed, Waqar Chowdhury, Zaira Zaman Kazi, Salim Newaz Bin Johan, Mohd Rafie Abdelrazek, Ali H. Fayaz, H. Badruddin, Irfan Anjum Mujtaba, M. A. Soudagar, Manzoore Elahi M. Akram, Naveed Mehmood, Shahid Ahmad, Muhammad Shakeel Kamangar, Sarfaraz Khan, T. M. Yunus Q Science (General) T Technology (General) In the current study, the ratio of a precise heat transfer growth to the different wt.% of the Zinc oxide-DW (ZnO-DW) based nanofluids are considered in a closed single-tube circular heat exchanger experimentally and by using ANSYS modeling. Four varying concentrations, 0.1%, 0.075%, 0.05%, and 0.025% wt. of the ZnO-DW nanofluids were considered and their thermal and hydrodynamic characteristics were determined experimentally and numerically. The experiments were conducted with base fluid (distilled water) as a working fluid for the validation of the 2-D numerical model. Using ANSYS-Fluent, a 2-dimensional domain was constructed and k-epsilon turbulent model was utilized to evaluate the continuity, energy, and momentum equations. All the nanofluids were experimentally and numerically examined with Reynolds (Re) numbers ranging from 5849 to 24544 and then validated using empirical correlations. Reynolds (Re) number, heat transfer coefficient, and Nusselt number were calculated and analyzed. The highest pressure drop was noticed for 0.1 wt% which is about 11184.9 m.Pas, while the highest friction (f) was 0.072983. Similarly, the maximum average heat transfer coefficient (h) and average Nusslet numbers (Nu) were been calculated both numerically and experimentally. At the highest 0.1 wt%. concentration of the ZnO-DW based nanofluids the supreme heat transfer was recorded about 13799.50 W/m(2).K (71%) and the average Nusselt numbers (Nu) were noticed 176.47 (67.3%). Both experimental and ANSYS modeling results reflected that the 0.1% ZnO-DW based nanofluids contributed the highest heat transfer coefficient with an overall average deviation up to +/- 9.2%. Both experimental and numerical results showed promising and similar outcomes. Elsevier 2021-08 Article PeerReviewed Ahmed, Waqar and Chowdhury, Zaira Zaman and Kazi, Salim Newaz and Bin Johan, Mohd Rafie and Abdelrazek, Ali H. and Fayaz, H. and Badruddin, Irfan Anjum and Mujtaba, M. A. and Soudagar, Manzoore Elahi M. and Akram, Naveed and Mehmood, Shahid and Ahmad, Muhammad Shakeel and Kamangar, Sarfaraz and Khan, T. M. Yunus (2021) Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage. Case Studies in Thermal Engineering, 26. ISSN 2214-157X, DOI https://doi.org/10.1016/j.csite.2021.101026 <https://doi.org/10.1016/j.csite.2021.101026>. 10.1016/j.csite.2021.101026
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic Q Science (General)
T Technology (General)
spellingShingle Q Science (General)
T Technology (General)
Ahmed, Waqar
Chowdhury, Zaira Zaman
Kazi, Salim Newaz
Bin Johan, Mohd Rafie
Abdelrazek, Ali H.
Fayaz, H.
Badruddin, Irfan Anjum
Mujtaba, M. A.
Soudagar, Manzoore Elahi M.
Akram, Naveed
Mehmood, Shahid
Ahmad, Muhammad Shakeel
Kamangar, Sarfaraz
Khan, T. M. Yunus
Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage
description In the current study, the ratio of a precise heat transfer growth to the different wt.% of the Zinc oxide-DW (ZnO-DW) based nanofluids are considered in a closed single-tube circular heat exchanger experimentally and by using ANSYS modeling. Four varying concentrations, 0.1%, 0.075%, 0.05%, and 0.025% wt. of the ZnO-DW nanofluids were considered and their thermal and hydrodynamic characteristics were determined experimentally and numerically. The experiments were conducted with base fluid (distilled water) as a working fluid for the validation of the 2-D numerical model. Using ANSYS-Fluent, a 2-dimensional domain was constructed and k-epsilon turbulent model was utilized to evaluate the continuity, energy, and momentum equations. All the nanofluids were experimentally and numerically examined with Reynolds (Re) numbers ranging from 5849 to 24544 and then validated using empirical correlations. Reynolds (Re) number, heat transfer coefficient, and Nusselt number were calculated and analyzed. The highest pressure drop was noticed for 0.1 wt% which is about 11184.9 m.Pas, while the highest friction (f) was 0.072983. Similarly, the maximum average heat transfer coefficient (h) and average Nusslet numbers (Nu) were been calculated both numerically and experimentally. At the highest 0.1 wt%. concentration of the ZnO-DW based nanofluids the supreme heat transfer was recorded about 13799.50 W/m(2).K (71%) and the average Nusselt numbers (Nu) were noticed 176.47 (67.3%). Both experimental and ANSYS modeling results reflected that the 0.1% ZnO-DW based nanofluids contributed the highest heat transfer coefficient with an overall average deviation up to +/- 9.2%. Both experimental and numerical results showed promising and similar outcomes.
format Article
author Ahmed, Waqar
Chowdhury, Zaira Zaman
Kazi, Salim Newaz
Bin Johan, Mohd Rafie
Abdelrazek, Ali H.
Fayaz, H.
Badruddin, Irfan Anjum
Mujtaba, M. A.
Soudagar, Manzoore Elahi M.
Akram, Naveed
Mehmood, Shahid
Ahmad, Muhammad Shakeel
Kamangar, Sarfaraz
Khan, T. M. Yunus
author_facet Ahmed, Waqar
Chowdhury, Zaira Zaman
Kazi, Salim Newaz
Bin Johan, Mohd Rafie
Abdelrazek, Ali H.
Fayaz, H.
Badruddin, Irfan Anjum
Mujtaba, M. A.
Soudagar, Manzoore Elahi M.
Akram, Naveed
Mehmood, Shahid
Ahmad, Muhammad Shakeel
Kamangar, Sarfaraz
Khan, T. M. Yunus
author_sort Ahmed, Waqar
title Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage
title_short Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage
title_full Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage
title_fullStr Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage
title_full_unstemmed Experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage
title_sort experimental evaluation and numerical verification of enhanced heat transportation by using ultrasonic assisted nanofluids in a closed horizontal circular passage
publisher Elsevier
publishDate 2021
url http://eprints.um.edu.my/34481/
_version_ 1735570305728905216
score 13.188404