Solid-liquid phase change subjected to unipolar charge injection from a circular wire electrode

被引:11
作者
Endigeri, Hanok E. [1 ]
Selvakumar, R. Deepak [1 ,2 ]
Vengadesan, S. [1 ]
机构
[1] Indian Inst Technol Madras, Dept Appl Mech, Chennai 600036, Tamil Nadu, India
[2] Chung Ang Univ, Sch Mech Engn, Seoul 06974, South Korea
关键词
Electrohydrodynamics; Isothermal melting; Heat transfer; Unipolar charge injection; Finite volume method (FVM); HEAT-TRANSFER ENHANCEMENT; THERMAL-ENERGY STORAGE; PERFORMANCE ENHANCEMENT; CONVECTION; ELECTROCONVECTION; DIFFUSION; SYSTEM; CAVITY; LAYER;
D O I
10.1016/j.ijheatmasstransfer.2022.123120
中图分类号
O414.1 [热力学];
学科分类号
摘要
A numerical investigation of isothermal melting of a dielectric phase change material in a square cavity subjected to unipolar charge injection from a circular wire electrode is reported. Governing equations for the solid-liquid phase change under the influence of an electric field include the Navier-Stokes equations for fluid flow, energy equation for thermal transport, Poisson equation for electric potential, and the Nernst-Planck equation for charge conservation. An enthalpy source-term based fixed grid approach is adopted to model the melting process. The governing equations that consider the coupled interactions between flow, thermal and electric fields are solved using the finite volume framework of OpenFOAM (R). Time evolution of the melting rate, maximum flow velocity, mean Nusselt number, and mean Coulomb force in the electrohydrodynamic flow assisted melting process is mapped. The mechanism and role of electrohydrodynamic forces on influencing the net flow and melt interface morphology is studied. The competing viscous, buoyancy, and electric forces result in an altered flow pattern that aids the melting process. The enhancement in the rate of melting at different strengths of buoyancy and electrostatic forces is quantified. Furthermore, the effects of the radius of the circular wire electrode in relation to the cavity size are highlighted. A maximum of 63% enhancement in melting rate is observed within the considered parameter space. (C) 2022 Elsevier Ltd. All rights reserved.
引用
收藏
页数:14
相关论文
共 41 条
[1]  
Altamirano Martinez J. V., 2016, THESIS U POLITECNICA
[2]   Natural convection heat transfer combined with melting process in a cubical cavity under the effects of uniform inclined magnetic field and local heat source [J].
Bondareva, Nadezhda S. ;
Sheremet, Mikhail A. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 108 :1057-1067
[3]  
BRENT AD, 1988, NUMER HEAT TRANSFER, V13, P297, DOI 10.1080/10407788808913615
[4]   COULOMB-DRIVEN CONVECTION IN ELECTROHYDRODYNAMICS [J].
CASTELLANOS, A .
IEEE TRANSACTIONS ON ELECTRICAL INSULATION, 1991, 26 (06) :1201-1215
[5]   A practical method for numerical evaluation of solutions of partial differential equations of the heat-conduction type [J].
Crank, J ;
Nicolson, P .
ADVANCES IN COMPUTATIONAL MATHEMATICS, 1996, 6 (3-4) :207-226
[6]   An Optimum Enthalpy Approach for Melting and Solidification with Volume Change [J].
Faden, Moritz ;
Koenig-Haagen, Andreas ;
Brueggemann, Dieter .
ENERGIES, 2019, 12 (05)
[7]   Investigation of the effect of magnetic field on melting of solid gallium in a bottom-heated rectangular cavity using the lattice Boltzmann method [J].
Feng, Yongchang ;
Li, Huixiong ;
Li, Liangxing ;
Zhan, Feilong .
NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2016, 69 (11) :1263-1279
[8]   Lattice Boltzmann model for melting with natural convection [J].
Huber, Christian ;
Parmigiani, Andrea ;
Chopard, Bastien ;
Manga, Michael ;
Bachmann, Olivier .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2008, 29 (05) :1469-1480
[9]   Performance enhancement in latent heat thermal storage system: A review [J].
Jegadheeswaran, S. ;
Pohekar, Sanjay D. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2009, 13 (09) :2225-2244
[10]  
Jones T.B., 1978, ADV HEAT TRANSFER, V14, P107