This work investigates the flow of liquid metals around a near-wall cylinder and the enhancement of heat transfer under a magnetic field through numerical simulations. It analyzes the physical mechanisms of influence of the magnetic field, the amplitude of the vibrating plate, the heat flux and gap ratio(G/D) on flow structure and heat transfer. The results indicate that the Lorentz force drives the vortex toward the heated plate. As the magnetic field increases, the vortex shedding behind the cylinder exhibits a trend of initially promoting and then suppressing, resulting in a non-monotonic variation in heat transfer efficiency, which first increases and then decreases. Increasing the amplitude of the heated plate enhances the velocity disturbance between the cylinder and the plate, which reduces the thickness of the temperature boundary layer, thereby significantly improving the heat transfer. The changes in heat flux and gap ratio significantly impact the flow structures and the vortex shedding modes. When G/D increases, the heat transfer efficiency shows a trend of first increasing and then decreasing due to the interaction between the heated plate and the vortices.
ZHENG Bochen
,
BAO Xingyu
,
ZHANG Nianmei
. Numerical study on heat transfer enhancement in the flow around a cylinder near a vibrating heated plate under a magnetic field[J]. Journal of University of Chinese Academy of Sciences, 2025
: 2025034
.
DOI: 10.7523/j.ucas.2025.034
[1] Murali S, Hussam W K, Sheard G J.Heat transfer enhancement in quasi-two-dimensional magnetohydrodynamic duct flows using repeated flow-facing wedge-shaped protrusions[J]. International Journal of Heat and Mass Transfer, 2021, 171: 121066. DOI: 10.1016/j.ijheatmasstransfer.2021.121066.
[2] Hussam W K, Thompson M C, Sheard G J.Dynamics and heat transfer in a quasi-two-dimensional MHD flow past a circular cylinder in a duct at high Hartmann number[J]. International Journal of Heat and Mass Transfer, 2011, 54(5/6): 1091-1100. DOI: 10.1016/j.ijheatmasstransfer.2010.11.013.
[3] Chen W L, Ji C N, Xu D, et al.Two-degree-of-freedom vortex-induced vibrations of a circular cylinder in the vicinity of a stationary wall[J]. Journal of Fluids and Structures, 2019, 91: 102728. DOI: 10.1016/j.jfluidstructs.2019.102728.
[4] Bearman P W, Zdravkovich M M.Flow around a circular cylinder near a plane boundary[J]. Journal of Fluid Mechanics, 1978, 89(1): 33-47. DOI: 10.1017/S002211207800244X.
[5] Lei C, Cheng L, Armfield S W, et al.Vortex shedding suppression for flow over a circular cylinder near a plane boundary[J]. Ocean Engineering, 2000, 27(10): 1109-1127. DOI: 10.1016/S0029-8018(99)00033-5.
[6] Chung M H.Transverse vortex-induced vibration of spring-supported circular cylinder translating near a plane wall[J]. European Journal of Mechanics-B/Fluids, 2016, 55:88-103. DOI: 10.1016/j.euromechflu.2015.09.001.
[7] Chen L F, Wu G X.Flow-induced transverse vibration of a circular cylinder close to a plane wall at small gap ratios[J]. Applied Ocean Research, 2020, 103: 102344. DOI: 10.1016/j.apor.2020.102344.
[8] Cheraghi M, Raisee M, Moghaddami M.Effect of cylinder proximity to the wall on channel flow heat transfer enhancement[J]. Comptes Rendus Mécanique, 2014, 342(2): 63-72. DOI: 10.1016/j.crme.2013.12.004.
[9] Rahnama M, Hadi-Moghaddam H.Numerical investigation of convective heat transfer in unsteady laminar flow over a square cylinder in a channel[J]. Heat Transfer Engineering, 2005, 26(10): 21-29. DOI: 10.1080/01457630500248521.
[10] Gupta R K, Chandra A, Gupta R K.Buoyancy-driven convective heat transfer from a semi-circular cylinder for various confinements[J]. Sādhanā, 2018, 43(11):182. DOI: 10.1007/s12046-018-0951-6.
[11] Garg H, Soti A K, Bhardwaj R.Vortex-induced vibration of a cooled circular cylinder[J]. Physics of Fluids, 2019, 31(8): 083608. DOI: 10.1063/1.5112140.
[12] Luo X Y, Zhang W C, Dong H T, et al.Numerical analysis of heat transfer enhancement of fluid past an oscillating circular cylinder in laminar flow regime[J]. Progress in Nuclear Energy, 2021, 139: 103853. DOI: 10.1016/j.pnucene.2021.103853.
[13] Yang S J, Fu W S.Numerical investigation of heat transfer from a heated oscillating rectangular cylinder in a cross flow[J]. Numerical Heat Transfer, Part A:Applications, 2001, 39(6): 569-591. DOI: 10.1080/10407780121190.
[14] Sun X, Li S, Lin G G, et al.Effects of flow-induced vibration on forced convection heat transfer from two tandem circular cylinders in laminar flow[J]. International Journal of Mechanical Sciences, 2021, 195: 106238. DOI: 10.1016/j.ijmecsci.2020.106238.
[15] Wan H, Patnaik S S.Suppression of vortex-induced vibration of a circular cylinder using thermal effects[J]. Physics of Fluids, 2016, 28(12): 123603. DOI: 10.1063/1.4972178.
[16] Yoon H S, Lee J B, Seo J H, et al.Characteristics for flow and heat transfer around a circular cylinder near a moving wall in wide range of low Reynolds number[J]. International Journal of Heat and Mass Transfer, 2010, 53(23/24): 5111-5120. DOI: 10.1016/j.ijheatmasstransfer.2010.07.054.
[17] Davidson P A.An Introduction to m\Magnetohydrodynamics[M]. Cambridge, UK: Cambridge University Press, 2001.
[18] Li M J, Pan J H, Ni M J, et al.Heat transfer and thermal stress analysis in fluid-structure coupled field[J]. Applied Thermal Engineering, 2015, 88: 473-479. DOI: 10.1016/j.applthermaleng.2014.09.071.
[19] Huang W X, Sung H J.Vortex shedding from a Circular cylinder near a moving Wall[J]. Journal of Fluids and Structures, 2007, 23(7): 1064-1076. DOI: 10.1016/j.jfluidstructs.2007.02.004.
[20] Zhou Q, Stevens R J A M, Sugiyama K, et al. Prandtl-Blasius temperature and velocity boundary-layer profiles in turbulent Rayleigh-Bénard convection[J]. Journal of Fluid Mechanics, 2010, 664: 297-312. DOI: 10.1017/S0022112010003824.
[21] He G S, Wang J J, Pan C, et al.Vortex dynamics for flow over a circular cylinder in proximity to a wall[J]. Journal of Fluid Mechanics, 2017, 812: 698-720. DOI: 10.1017/jfm.2016.812.