Numerical Modeling of Natural Convection Modes in a Cubic Differentially Heated Porous Cavity Under Rotation Conditions

Document Type : Research Paper

Authors
Laboratory on Convective Heat and Mass Transfer, Tomsk State University, Tomsk, 634050, Russia
Abstract
This numerical study investigates natural convection phenomenon in a rotating porous cubical cavity, analyzing the coupled effects of rotation, temperature difference and porous medium characteristics on heat transfer dynamics. The governing equations, formulated using vector potential and vorticity variables, incorporate the extended Darcy-Brinkman model to account for porous media effects. A second-order finite difference method with successive over relaxation and Thomas algorithm solves the discretized system, validated against benchmark solutions for both hydrodynamic and thermal fields. The analysis explores a broad parameter space, including Taylor numbers, Rayleigh numbers, and porosities. Key findings reveal that two distinct regimes exist: buoyancy-dominated (low Ta) with oscillatory Nusselt numbers and rotation-dominated (high Ta) with stabilized Nu. Porosity-enhanced heat transfer persists across all Ta, although centrifugal forces modulate its efficiency, while Ra significantly intensifies convection only at low Ta, demonstrating rotational suppression of thermal effects. The results demonstrate that angular velocity and porosity can serve as effective control parameters for thermal management, with practical implications for rotating machinery and energy systems employing porous media. The study establishes a validated numerical framework to analyze three-dimensional convection in rotating porous environments. This study identifies optimal rotation-porosity configurations that enhance thermal efficiency in heat exchangers and passive cooling systems, outperforming conventional designs. The findings enable sustainable heat recovery in industrial applications and next-generation microelectronics thermal management, reducing energy consumption.
Keywords
Subjects

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[1] Kuruneru, S.T.W., Vafai, K., Sauret, E., Gu, Y.T., Application of porous metal foam heat exchangers and the implications of particulate fouling for energy-intensive industries, Chemical Engineering Science, 228, 2020, 115968.
[2] Wang, P., Liu, D.Y., Xu, C., Numerical study of heat transfer enhancement in the receiver tube of direct steam generation with parabolic trough by inserting metal foams, Applied Energy, 102, 2013, 449–460.
[3] Hua, W., Zhang, L., Zhang, X., Research on passive cooling of electronic chips based on PCM: A review, Journal of Molecular Liquids, 340, 2021, 117183.
[4] Smakulski, P., Pietrowicz, S., A review of the capabilities of high heat flux removal by porous materials, microchannels and spray cooling techniques, Applied Thermal Engineering, 104, 2016, 636–646.
[5] Rashidi, S., Hormozi, F., Doranehgard, M.H., Abilities of porous materials for energy saving in advanced thermal systems, Journal of Thermal Analysis and Calorimetry, 143, 2021, 2437–2452.
[6] Alhusseny, A., Turan, A., Nasser, A., Rotating metal foam structures for performance enhancement of double-pipe heat exchangers, International Journal of Heat and Mass Transfer, 105, 2017, 124–139.
[7] Guo, J., Yang, B., Li, Z., Lu, L., Yang, X., He, Y.-L., Charging characteristics of finned thermal energy storage tube under variable rotation, Applied Thermal Engineering, 236, 2024, 121887.
[8] Wu, W., Amsbeck, L., Buck, R., Waibel, N., Langner, P., Pitz-Paal, R., On the influence of rotation on thermal convection in a rotating cavity for solar receiver applications, Applied Thermal Engineering, 70(1), 2014, 694–704.
[9] Howey, D.A., Childs, P.R.N., Howey, A.S., Air-Gap Convection in Rotating Electrical Machines, IEEE Transactions on Industrial Electronics, 59, 2012, 1367–1375.
[10] Subramanian, S., Sekhar, A., Prasad, B., Rotordynamic characterization of rotating labyrinth gas turbine seals with radial growth: Combined centrifugal and thermal effects, International Journal of Mechanical Sciences, 123, 2017, 1–9.
[11] Jin, L.F., Tou, K.W., Tso, C.P., Experimental and numerical studies on a rotating cavity with discrete heat sources with conjugate effects, Experimental Heat Transfer, 18, 2005, 259–277.
[12] Banerjee, S., Mukhopadhyay, A., Sen, S., Ganguly, R., Thermomagnetic Convection in Square and Shallow Enclosures for Electronics Cooling, Numerical Heat Transfer, Part A: Applications, 55(10), 2009, 931–951.
[13] Bhattacharya, A., Mahajan, R.L., Finned Metal Foam Heat Sinks for Electronics Cooling in Forced Convection, Journal of Electronic Packaging, 124(3), 2002, 155–163.
[14] Zing, C., Mahjoob, S., Vafai, K., Analysis of porous filled heat exchangers for electronic cooling, International Journal of Heat and Mass Transfer, 133, 2019, 268–276.
[15] Yuki, K., Suzuki, K., Development of Functional Porous Heat Sink for Cooling High-Power Electronic Devices, Transactions of The Japan Institute of Electronics Packaging, 5(1), 2012, 69–74.
[16] Zeghari, K., Louahlia, H., Le Masson, S., Experimental investigation of flat porous heat pipe for cooling TV box electronic chips, Applied Thermal Engineering, 163, 2019, 114267.
[17] Panse, S.S., Singh, P., Ekkad, S.V., Air-Based Cooling in High Porosity, Aluminum Foams for Compact Electronics Cooling, 18th IEEE Intersociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems (ITherm), Las Vegas, NV, USA, 2019, 376–383.
[18] Güllüce, H., Özdemir, K., Design and operational condition optimization of a rotary regenerative heat exchanger, Applied Thermal Engineering, 177, 2020, 115341.
[19] Dallaire, J., Gosselin, L., da Silva, A.K., Conceptual optimization of a rotary heat exchanger with a porous core, International Journal of Thermal Sciences, 49(2), 2010, 454–462.
[20] Huang, S.-C., Wang, C.-C., Liu, Y.-H., Heat transfer measurement in a rotating cooling channel with staggered and inline pin-fin arrays using liquid crystal and stroboscopy, International Journal of Heat and Mass Transfer, 115, 2017, 364–376.
[21] Kanaƛ, P., Jedlikowski, A., Anisimov, S., The influence of geometrical parameters on heat and mass transfer processes in rotary heat exchangers, SN Applied Sciences, 1, 2019, 1–16.
[22] Zmrhal, V., Zelenský, P., Bohác, J., Determination of the sensible heat effectiveness and pressure loss of a rotary regenerative heat exchanger using CFD, Building Simulation, 16, 2023, 869–887.
[23] Sharafat, S., Demetriou, M., Ghoniem, N., Williams, B., Nygren, R., Enhanced Surface Heat Removal Using a Porous Tungsten Heat Exchanger, Fusion Technology, 39(2P2), 2001, 863–867.
[24] Konduru, R.N., Farges, O., Schick, V., Hairy, P., Gaillard, Y., Parent, G., Experimental and numerical investigation of porous heat exchangers with Kelvin cell structured foam at high temperatures: Coupled conduction-convection and radiation heat transfer, International Journal of Heat and Mass Transfer, 224, 2024, 125253.
[25] Amirshekari, M., Gandjalikhan Nassab, S.A., Jahanshahi Javaran, E., Numerical simulation of a three-layer porous heat exchanger considering lattice Boltzmann method simulation of fluid flow, Journal of Thermal Analysis and Calorimetry, 136, 2019, 1737–1755.
[26] Jin, L.F., Tou, K.W., Tso, C.P., Effects of rotation on natural convection cooling from three rows of heat sources in a rectangular cavity, International Journal of Heat and Mass Transfer, 48(19–20), 2005, 3982–3994.
[27] Ullal, A., Hung, S.-C., Huang, S.-C., Liu, Y.-H., Experimental Investigation of the Effect of Compound Protrusion-Pin Array on Heat Transfer in an Internal Rotating Cooling Channel, Applied Thermal Engineering, 140, 2018, 23–33.
[28] Saleh, H., Alhashash, A.Y.N., Hashim, I., Rotation effects on non-Darcy convection in an enclosure filled with porous medium, International Communications in Heat and Mass Transfer, 43, 2013, 105–111.
[29] Chamkha, A.J., Selimefendigil, F., Oztop, H.F., Effects of a Rotating Cone on the Mixed Convection in a Double Lid-Driven 3D Porous Trapezoidal Nanofluid Filled Cavity under the Impact of Magnetic Field, Nanomaterials, 10(3), 2020, 1–23.
[30] Mohamad, A.Q., Khan, I., Jiann, L.Y., Double Convection of Unsteady MHD Non-coaxial Rotation Viscous Fluid in a Porous Medium, Bulletin of the Malaysian Mathematical Sciences Society, 41, 2018, 2117–2139.
[31] Vanishree, R.K., Siddheshwar, P.G., Effect of Rotation on Thermal Convection in an Anisotropic Porous Medium with Temperature-dependent Viscosity, Transport in Porous Media, 81, 2010, 73–87.
[32] Lee, T.L., Lin, T.F., Transient three-dimensional convection of air in a differentially heated rotating cubic cavity, International Journal of Heat and Mass Transfer, 39(6), 1996, 1243–1255.
[33] Samarskii, A.A., The Theory of Difference Schemes, Marcel Dekker, Inc., 2001, 543–642.