Comparison of bi-directional multi-wave alternating magnetic field effect on ferromagnetic nanofluid flow in a circular pipe under laminar flow conditions
•Convection of Fe3O4/water nanofluid flow experimentally investigated.•Constant and alternating magnetic field effects are considered.•Sinus, square, and triangle waves were used for alternating magnetic field wave type.•Square wave is the best option to obtain higher Nusselt numbers for Fe3O4/water...
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description | •Convection of Fe3O4/water nanofluid flow experimentally investigated.•Constant and alternating magnetic field effects are considered.•Sinus, square, and triangle waves were used for alternating magnetic field wave type.•Square wave is the best option to obtain higher Nusselt numbers for Fe3O4/water nanofluid flow.•Lower frequencies offer better enhancement.
Nanofluids have been attracting huge attention because of their heat transfer enhancement capabilities. Furthermore, magnetic field effect has been being researched recently. By reason of further heat transfer enhancement potential, constant and alternating magnetic fields have been utilized in the present work. Forced convection heat transfer of Fe3O4/water nanofluid flow in a straight pipe under constant and alternating magnetic field effect has been investigated experimentally. Experiments were performed under laminar flow regime (1122 |
doi_str_mv | 10.1016/j.applthermaleng.2020.115624 |
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Nanofluids have been attracting huge attention because of their heat transfer enhancement capabilities. Furthermore, magnetic field effect has been being researched recently. By reason of further heat transfer enhancement potential, constant and alternating magnetic fields have been utilized in the present work. Forced convection heat transfer of Fe3O4/water nanofluid flow in a straight pipe under constant and alternating magnetic field effect has been investigated experimentally. Experiments were performed under laminar flow regime (1122 < Re < 2124) and constant heat flux was applied externally on the pipe surface. It is aimed to study effect of different parameters such as Reynolds number, volume concentration of nanoparticle (0 ≤ ϕ ≤ 0.05), constant magnetic field (B = 0.3 T), alternating magnetic field with different wave types (sinus, square and triangle) and different frequencies (2, 5 and 15 Hz) of alternating magnetic field on the convective heat transfer. Experimental results showed that the constant magnetic field offers 13% convective heat transfer enhancement compared to the absence of a magnetic field. On the other hand, the alternating magnetic field increases the convective heat transfer in the pipe up to 35%. Furthermore, lower frequencies of the alternating magnetic field have been more effective in convective heat transfer enhancement. Square wave type alternating magnetic field steps forward in the aspect of convective heat transfer enhancement rate among the other wave types. The alternating magnetic field applications look promising in the future for increasing energy efficiency, and it can also be implemented in heat exchangers, solar collectors, emergency heat removal systems in nuclear power plants.</description><identifier>ISSN: 1359-4311</identifier><identifier>EISSN: 1873-5606</identifier><identifier>DOI: 10.1016/j.applthermaleng.2020.115624</identifier><language>eng</language><publisher>Oxford: Elsevier Ltd</publisher><subject>Alternating magnetic field ; Convective heat transfer ; Electromagnetism ; Ferromagnetism ; Fluid dynamics ; Fluid flow ; Forced convection ; Heat conductivity ; Heat exchangers ; Heat flux ; Heat transfer ; Iron oxides ; Laminar flow ; Magnetic fields ; Magnetic nanofluid ; Multi-wave ; Nanofluids ; Nanoparticles ; Nuclear power plants ; Pipes ; Reynolds number ; Solar collectors ; Square waves</subject><ispartof>Applied thermal engineering, 2020-10, Vol.179, p.115624, Article 115624</ispartof><rights>2020 Elsevier Ltd</rights><rights>Copyright Elsevier BV Oct 2020</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c358t-a48331a1c6baee3e4e345c19fcc1739e09494e5fe91abd0ec297896d089f2c233</citedby><cites>FETCH-LOGICAL-c358t-a48331a1c6baee3e4e345c19fcc1739e09494e5fe91abd0ec297896d089f2c233</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://dx.doi.org/10.1016/j.applthermaleng.2020.115624$$EHTML$$P50$$Gelsevier$$H</linktohtml><link.rule.ids>314,780,784,3548,27923,27924,45994</link.rule.ids></links><search><creatorcontrib>Tekir, Mutlu</creatorcontrib><creatorcontrib>Taskesen, Edip</creatorcontrib><creatorcontrib>Aksu, Bahri</creatorcontrib><creatorcontrib>Gedik, Engin</creatorcontrib><creatorcontrib>Arslan, Kamil</creatorcontrib><title>Comparison of bi-directional multi-wave alternating magnetic field effect on ferromagnetic nanofluid flow in a circular pipe under laminar flow conditions</title><title>Applied thermal engineering</title><description>•Convection of Fe3O4/water nanofluid flow experimentally investigated.•Constant and alternating magnetic field effects are considered.•Sinus, square, and triangle waves were used for alternating magnetic field wave type.•Square wave is the best option to obtain higher Nusselt numbers for Fe3O4/water nanofluid flow.•Lower frequencies offer better enhancement.
Nanofluids have been attracting huge attention because of their heat transfer enhancement capabilities. Furthermore, magnetic field effect has been being researched recently. By reason of further heat transfer enhancement potential, constant and alternating magnetic fields have been utilized in the present work. Forced convection heat transfer of Fe3O4/water nanofluid flow in a straight pipe under constant and alternating magnetic field effect has been investigated experimentally. Experiments were performed under laminar flow regime (1122 < Re < 2124) and constant heat flux was applied externally on the pipe surface. It is aimed to study effect of different parameters such as Reynolds number, volume concentration of nanoparticle (0 ≤ ϕ ≤ 0.05), constant magnetic field (B = 0.3 T), alternating magnetic field with different wave types (sinus, square and triangle) and different frequencies (2, 5 and 15 Hz) of alternating magnetic field on the convective heat transfer. Experimental results showed that the constant magnetic field offers 13% convective heat transfer enhancement compared to the absence of a magnetic field. On the other hand, the alternating magnetic field increases the convective heat transfer in the pipe up to 35%. Furthermore, lower frequencies of the alternating magnetic field have been more effective in convective heat transfer enhancement. Square wave type alternating magnetic field steps forward in the aspect of convective heat transfer enhancement rate among the other wave types. The alternating magnetic field applications look promising in the future for increasing energy efficiency, and it can also be implemented in heat exchangers, solar collectors, emergency heat removal systems in nuclear power plants.</description><subject>Alternating magnetic field</subject><subject>Convective heat transfer</subject><subject>Electromagnetism</subject><subject>Ferromagnetism</subject><subject>Fluid dynamics</subject><subject>Fluid flow</subject><subject>Forced convection</subject><subject>Heat conductivity</subject><subject>Heat exchangers</subject><subject>Heat flux</subject><subject>Heat transfer</subject><subject>Iron oxides</subject><subject>Laminar flow</subject><subject>Magnetic fields</subject><subject>Magnetic nanofluid</subject><subject>Multi-wave</subject><subject>Nanofluids</subject><subject>Nanoparticles</subject><subject>Nuclear power plants</subject><subject>Pipes</subject><subject>Reynolds number</subject><subject>Solar collectors</subject><subject>Square waves</subject><issn>1359-4311</issn><issn>1873-5606</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2020</creationdate><recordtype>article</recordtype><recordid>eNqNUUtrFEEQHkQhMeY_NOh11n7NC7zIYqIQyEXPTW1P9aaWnu6xeybBv-KvTa8jQm6eqqjvUVR9VfVB8J3gov142sE8--UB0wQew3EnuSyQaFqpX1WXou9U3bS8fV161Qy1VkJcVG9zPnEuZN_py-r3Pk4zJMoxsOjYgeqREtqFYgDPptUvVD_BIzLwC6YAC4Ujm-AYcCHLHKEfGTpXFKw4OEwp_kMDhOj8SiNzPj4xCgyYpWRXD4nNNCNbw4iJeZgolNEflo1hpPP6_K5648BnvP5br6ofN1--77_Wd_e33_af72qrmn6pQfdKCRC2PQCiQo1KN1YMzlrRqQH5oAeNjcNBwGHkaOXQ9UM78n5w0kqlrqr3m--c4s8V82JOcS2n-mykbpRUneh4YX3aWDbFnBM6MyeaIP0ygptzGuZkXqZhzmmYLY0iv9nkWC55JEwmW8JgcXu3GSP9n9Ez9DigEA</recordid><startdate>202010</startdate><enddate>202010</enddate><creator>Tekir, Mutlu</creator><creator>Taskesen, Edip</creator><creator>Aksu, Bahri</creator><creator>Gedik, Engin</creator><creator>Arslan, Kamil</creator><general>Elsevier Ltd</general><general>Elsevier BV</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7TB</scope><scope>8FD</scope><scope>FR3</scope><scope>KR7</scope></search><sort><creationdate>202010</creationdate><title>Comparison of bi-directional multi-wave alternating magnetic field effect on ferromagnetic nanofluid flow in a circular pipe under laminar flow conditions</title><author>Tekir, Mutlu ; Taskesen, Edip ; Aksu, Bahri ; Gedik, Engin ; Arslan, Kamil</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c358t-a48331a1c6baee3e4e345c19fcc1739e09494e5fe91abd0ec297896d089f2c233</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2020</creationdate><topic>Alternating magnetic field</topic><topic>Convective heat transfer</topic><topic>Electromagnetism</topic><topic>Ferromagnetism</topic><topic>Fluid dynamics</topic><topic>Fluid flow</topic><topic>Forced convection</topic><topic>Heat conductivity</topic><topic>Heat exchangers</topic><topic>Heat flux</topic><topic>Heat transfer</topic><topic>Iron oxides</topic><topic>Laminar flow</topic><topic>Magnetic fields</topic><topic>Magnetic nanofluid</topic><topic>Multi-wave</topic><topic>Nanofluids</topic><topic>Nanoparticles</topic><topic>Nuclear power plants</topic><topic>Pipes</topic><topic>Reynolds number</topic><topic>Solar collectors</topic><topic>Square waves</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Tekir, Mutlu</creatorcontrib><creatorcontrib>Taskesen, Edip</creatorcontrib><creatorcontrib>Aksu, Bahri</creatorcontrib><creatorcontrib>Gedik, Engin</creatorcontrib><creatorcontrib>Arslan, Kamil</creatorcontrib><collection>CrossRef</collection><collection>Mechanical & Transportation Engineering Abstracts</collection><collection>Technology Research Database</collection><collection>Engineering Research Database</collection><collection>Civil Engineering Abstracts</collection><jtitle>Applied thermal engineering</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Tekir, Mutlu</au><au>Taskesen, Edip</au><au>Aksu, Bahri</au><au>Gedik, Engin</au><au>Arslan, Kamil</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Comparison of bi-directional multi-wave alternating magnetic field effect on ferromagnetic nanofluid flow in a circular pipe under laminar flow conditions</atitle><jtitle>Applied thermal engineering</jtitle><date>2020-10</date><risdate>2020</risdate><volume>179</volume><spage>115624</spage><pages>115624-</pages><artnum>115624</artnum><issn>1359-4311</issn><eissn>1873-5606</eissn><abstract>•Convection of Fe3O4/water nanofluid flow experimentally investigated.•Constant and alternating magnetic field effects are considered.•Sinus, square, and triangle waves were used for alternating magnetic field wave type.•Square wave is the best option to obtain higher Nusselt numbers for Fe3O4/water nanofluid flow.•Lower frequencies offer better enhancement.
Nanofluids have been attracting huge attention because of their heat transfer enhancement capabilities. Furthermore, magnetic field effect has been being researched recently. By reason of further heat transfer enhancement potential, constant and alternating magnetic fields have been utilized in the present work. Forced convection heat transfer of Fe3O4/water nanofluid flow in a straight pipe under constant and alternating magnetic field effect has been investigated experimentally. Experiments were performed under laminar flow regime (1122 < Re < 2124) and constant heat flux was applied externally on the pipe surface. It is aimed to study effect of different parameters such as Reynolds number, volume concentration of nanoparticle (0 ≤ ϕ ≤ 0.05), constant magnetic field (B = 0.3 T), alternating magnetic field with different wave types (sinus, square and triangle) and different frequencies (2, 5 and 15 Hz) of alternating magnetic field on the convective heat transfer. Experimental results showed that the constant magnetic field offers 13% convective heat transfer enhancement compared to the absence of a magnetic field. On the other hand, the alternating magnetic field increases the convective heat transfer in the pipe up to 35%. Furthermore, lower frequencies of the alternating magnetic field have been more effective in convective heat transfer enhancement. Square wave type alternating magnetic field steps forward in the aspect of convective heat transfer enhancement rate among the other wave types. The alternating magnetic field applications look promising in the future for increasing energy efficiency, and it can also be implemented in heat exchangers, solar collectors, emergency heat removal systems in nuclear power plants.</abstract><cop>Oxford</cop><pub>Elsevier Ltd</pub><doi>10.1016/j.applthermaleng.2020.115624</doi></addata></record> |
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subjects | Alternating magnetic field Convective heat transfer Electromagnetism Ferromagnetism Fluid dynamics Fluid flow Forced convection Heat conductivity Heat exchangers Heat flux Heat transfer Iron oxides Laminar flow Magnetic fields Magnetic nanofluid Multi-wave Nanofluids Nanoparticles Nuclear power plants Pipes Reynolds number Solar collectors Square waves |
title | Comparison of bi-directional multi-wave alternating magnetic field effect on ferromagnetic nanofluid flow in a circular pipe under laminar flow conditions |
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