Statistical and Numerical Investigations of Convective Heat Transfer Enhancement of Nanofluids Inside a Rectotrapezoidal Enclosure in the Presence of Horizontal Periodic Magnetic Field

被引:0
作者
Haque, M. M. [1 ]
Alam, M. S. [1 ]
Huda, M. N. [1 ]
Rahman, M. M. [2 ]
机构
[1] Jagannath Univ, Dept Math, Dhaka 1100, Bangladesh
[2] Sultan Qaboos Univ, Coll Sci, Dept Math, Muscat, Oman
关键词
Heat transfer; Nanofluids; Rectotrapezoidal enclosure; Response surface methodology; Finite element method; NATURAL-CONVECTION; FORCED-CONVECTION; MIXED CONVECTION; FLOW; NANOPARTICLES; SIMULATION; VISCOSITY; SURFACE;
D O I
10.1007/s13369-024-09596-0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
This paper investigates numerically the unsteady two-dimensional convective heat transfer flow of water, kerosene, and engine oil-based nanofluids in a rectotrapezoidal enclosure under the effect of a horizontal periodic magnetic field. An in-house-built code based on the Galerkin-type finite element method has been employed to solve the governing dimensionless equations and boundary conditions. The simulated data, validated with previously published works, generally align with the results. The graphical representation and detailed discussion of key model parameters include the dissemination of streamlines, isotherms, average Nusselt number, friction factor, and thermal efficiency index. The mean Nusselt number for the nanofluid is calculated by analyzing the response surfaces and contours obtained from the response surface methodology, in addition to line graphs that depict different flow parameters. The findings indicate that the heat transfer rate in nanofluid increases significantly with higher thermal Rayleigh numbers, more extended periods of the magnetic field, and more prominent shape factors. Furthermore, the average Nusselt number, representing the convective heat transfer at the bottom heated wall, falls as the Hartmann number increases. For engine oil and kerosene-based nanofluids, the heat transfer rate is increased by 107.53%, 107.58%, 122.91%, and 92.19%, respectively, for Co and Cu, compared to base fluid, for a 5% of nanoparticle volume fraction. The obtained numerical also shows that the Fe3O4-engine oil nanofluid, out of the nine nanofluids examined in the current study, has led to the highest heat transfer rate, about 123.13% greater than the base fluid.
引用
收藏
页数:24
相关论文
共 50 条
[21]   Magnetic field effect on the nanofluids convective heat transfer and pressure drop in the spirally coiled tubes [J].
Naphon, P. ;
Wiriyasart, S. ;
Arisariyawong, T. ;
Nualboonrueng, T. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 110 :739-745
[22]   Nanofluid heat transfer in a permeable enclosure in presence of variable magnetic field by means of CVFEM [J].
Sheikholeslami, Mohsen ;
Seyednezhad, Mohadeseh .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 114 :1169-1180
[23]   Experimental investigation on the boiling heat transfer of nanofluids on a flat plate in the presence of a magnetic field [J].
Abdollahi, Ali ;
Salimpour, Mohammad Reza .
EUROPEAN PHYSICAL JOURNAL PLUS, 2016, 131 (11)
[24]   Natural Convective Heat Transfer Flow of Nanofluids Inside a Quarter-Circular Enclosure Using Nonhomogeneous Dynamic Model [J].
M. J. Uddin ;
M. S. Alam ;
M. M. Rahman .
Arabian Journal for Science and Engineering, 2017, 42 :1883-1901
[25]   Numerical investigation of laminar natural convective heat transfer from a horizontal triangular cylinder to its concentric cylindrical enclosure [J].
Xu, Xu ;
Sun, Gonggang ;
Yu, Zitao ;
Hu, Yacai ;
Fan, Liwu ;
Cen, Kefa .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2009, 52 (13-14) :3176-3186
[26]   Convective heat transfer characteristics of magnetic nanofluids under vertical magnetic field [J].
Wang S. ;
Luo Z. ;
Qing S. ;
Yang Z. ;
Jia Z. ;
Lei J. .
Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2021, 42 (10) :111-115
[27]   Effect of magnetic field on laminar convective heat transfer of magnetite nanofluids [J].
Azizian, R. ;
Doroodchi, E. ;
McKrell, T. ;
Buongiorno, J. ;
Hu, L. W. ;
Moghtaderi, B. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 68 :94-109
[28]   Augmentation of natural convective heat transfer in linearly heated cavity by utilizing nanofluids in the presence of magnetic field and uniform heat generation/absorption [J].
Mliki, Bouchmel ;
Abbassi, Mohamed Ammar ;
Omri, Ahmed ;
Zeghmati, Belkacem .
POWDER TECHNOLOGY, 2015, 284 :312-325
[29]   Two numerical modelings of free convection heat transfer using nanofluids inside a square enclosure [J].
Fontes, Douglas Hector ;
dos Santos, Daniel Dall'Onder ;
Martinez Padilla, Elie Luis ;
Bandarra Filho, Enio Pedone .
MECHANICS RESEARCH COMMUNICATIONS, 2015, 66 :34-43
[30]   Experimental and numerical investigations of heat transfer enhancement in shell and helically microtube heat exchanger using nanofluids [J].
Rasheed, Adnan Hameed ;
Alias, Hajar Binti ;
Salman, Sami Dawood .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2021, 159