Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature

Low thermal conductivity of magnetorheological (MR) fluid limits its potential to be applied in high temperature environment. Recently, enhancing thermal conductivity of similar fluids through addition of nano copper has alracted to address the problem. This paper presents the effects of nano coppe...

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Main Authors: Mohd Salleh, Abdul Rahim, Izwan, Ismail, S. N., Aqida
Format: Article
Language:English
Published: Trans Tech Publications 2017
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Online Access:http://umpir.ump.edu.my/id/eprint/18043/1/32.%20Effects%20of%20Nano%20Copper%20Additive%20on%20Thermal%20Conductivity%20of%20Magnetorheological%20Fluid%20at%20Different%20Environment%20Temperature.pdf
http://umpir.ump.edu.my/id/eprint/18043/
https://www.scientific.net/MSF.890.108
https://doi.org/10.4028/www.scientific.net/MSF.890.108
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Institution: Universiti Malaysia Pahang Al-Sultan Abdullah
Language: English
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spelling my.ump.umpir.180432018-10-18T03:42:28Z http://umpir.ump.edu.my/id/eprint/18043/ Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature Mohd Salleh, Abdul Rahim Izwan, Ismail S. N., Aqida TS Manufactures Low thermal conductivity of magnetorheological (MR) fluid limits its potential to be applied in high temperature environment. Recently, enhancing thermal conductivity of similar fluids through addition of nano copper has alracted to address the problem. This paper presents the effects of nano copper addition on thermal conductivity properties of MR fluid at diiYerctu environment temperatures. The nano copper added MR fluid samples wert: synthesized with carhunyl iron powder in hydruulic oil. Hie sample were then stabilised with addition of fumed silica and were homogenized using ultrasonic bath. Thermal conductivity of the samples and references material was measured using thermal property analyser The environment temperature of the samples was controlled by waterbath. intubation method. The results showed that enhancement of thermal conductivity with the presence of copper nano panicles was higher it 40 vol% of CIP compared to 20 vol% of CIP and a slight variation in thermal conductivity of MR fluid was observed in environment temperatures of 30-70 C. . This finding leads to development of new class of magnetorlogical fluid with enhanced thermal properties Trans Tech Publications 2017 Article PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/18043/1/32.%20Effects%20of%20Nano%20Copper%20Additive%20on%20Thermal%20Conductivity%20of%20Magnetorheological%20Fluid%20at%20Different%20Environment%20Temperature.pdf Mohd Salleh, Abdul Rahim and Izwan, Ismail and S. N., Aqida (2017) Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature. Materials Science Forum, 890. pp. 108-111. ISSN 0255-5476. (Published) https://www.scientific.net/MSF.890.108 https://doi.org/10.4028/www.scientific.net/MSF.890.108
institution Universiti Malaysia Pahang Al-Sultan Abdullah
building UMPSA Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Pahang Al-Sultan Abdullah
content_source UMPSA Institutional Repository
url_provider http://umpir.ump.edu.my/
language English
topic TS Manufactures
spellingShingle TS Manufactures
Mohd Salleh, Abdul Rahim
Izwan, Ismail
S. N., Aqida
Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature
description Low thermal conductivity of magnetorheological (MR) fluid limits its potential to be applied in high temperature environment. Recently, enhancing thermal conductivity of similar fluids through addition of nano copper has alracted to address the problem. This paper presents the effects of nano copper addition on thermal conductivity properties of MR fluid at diiYerctu environment temperatures. The nano copper added MR fluid samples wert: synthesized with carhunyl iron powder in hydruulic oil. Hie sample were then stabilised with addition of fumed silica and were homogenized using ultrasonic bath. Thermal conductivity of the samples and references material was measured using thermal property analyser The environment temperature of the samples was controlled by waterbath. intubation method. The results showed that enhancement of thermal conductivity with the presence of copper nano panicles was higher it 40 vol% of CIP compared to 20 vol% of CIP and a slight variation in thermal conductivity of MR fluid was observed in environment temperatures of 30-70 C. . This finding leads to development of new class of magnetorlogical fluid with enhanced thermal properties
format Article
author Mohd Salleh, Abdul Rahim
Izwan, Ismail
S. N., Aqida
author_facet Mohd Salleh, Abdul Rahim
Izwan, Ismail
S. N., Aqida
author_sort Mohd Salleh, Abdul Rahim
title Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature
title_short Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature
title_full Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature
title_fullStr Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature
title_full_unstemmed Effects of Nano Copper Additive on Thermal Conductivity of Magnetorheological Fluid at Different Environment Temperature
title_sort effects of nano copper additive on thermal conductivity of magnetorheological fluid at different environment temperature
publisher Trans Tech Publications
publishDate 2017
url http://umpir.ump.edu.my/id/eprint/18043/1/32.%20Effects%20of%20Nano%20Copper%20Additive%20on%20Thermal%20Conductivity%20of%20Magnetorheological%20Fluid%20at%20Different%20Environment%20Temperature.pdf
http://umpir.ump.edu.my/id/eprint/18043/
https://www.scientific.net/MSF.890.108
https://doi.org/10.4028/www.scientific.net/MSF.890.108
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