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Stefan number

About: Stefan number is a research topic. Over the lifetime, 482 publications have been published within this topic receiving 32056 citations.


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Journal ArticleDOI
TL;DR: Melting in the presence of electrohydrodynamic (EHD) flow driven by the Coulomb force in dielectric phase change material is numerically studied and it is found that the electric field has significant influence on the melting, especially at high T and Pr and low St.
Abstract: Melting in the presence of electrohydrodynamic (EHD) flow driven by the Coulomb force in dielectric phase change material is numerically studied. A model is developed for the EHD flow in the solid-liquid phase change process. The fully coupled equations including mechanical equations, electrical equations, energy equations, and the continuity equations in the solid-liquid interface are solved using a unified lattice Boltzmann model (LBM). Firstly, the numerical model is validated by several cases in the hydrostatic state, and all LBM results are found to be highly consistent with analytical solutions. Besides, our LBM code is able to reproduce the step changes in the distribution of charge density and electric field due to the discontinuous distribution of physical properties at the interface. Then, a systematical investigation is conducted on various nondimensional parameters, including electric Rayleigh number T, Prandtl number Pr, and Stefan number St. Results are presented for the transient evolutions of temperature, fluid flow, charge density fields, and liquid fraction. Four flow stages in the melting process together with three kinds of flow instabilities are observed. It is found that the electric field has significant influence on the melting, especially at high T and Pr and low St. Over the tested cases, a maximum melting time saving of around 50% is found.

30 citations

Journal ArticleDOI
TL;DR: In this article, the stagnation-flow Stefan solidification problem is defined and investigated, and a quasi-steady solution for the final stages of solidification is obtained, showing that the solidification front grows asymptotically to a finite maximum value as time goes to infinity.

29 citations

Journal ArticleDOI
TL;DR: In this paper, the shape and speed of the solid-melt interface are described at times just before complete freezing takes place, as well as the temperature field in the vicinity of the extinction point.
Abstract: The one-phase Stefan problem for the inward solidification of a three-dimensional body of liquid that is initially at its fusion temperature is considered. In particular, the shape and speed of the solid-melt interface is described at times just before complete freezing takes place, as is the temperature field in the vicinity of the extinction point. This is accomplished for general Stefan numbers by employing the Baiocchi transform. Other previous results for this problem are confirmed, for example the asymptotic analysis reveals the interface ultimately approaches an ellipsoid in shape, and furthermore, the accuracy of these results is improved. The results are arbitrary up to constants of integration that depend physically on both the Stefan number and the shape of the fixed boundary of the liquid region. In general it is not possible to determine this dependence analytically; however, the limiting case of large Stefan number provides an exception. For this limit a rather complete asymptotic picture is presented, and a recipe for the time it takes for complete freezing to occur is derived. The results presented here for fully three-dimensional domains complement and extend those given by McCue et al.[Proc. R. Soc. London A 459 (2003) 977], which are for two dimensions only, and for which a significantly different time dependence occurs.

28 citations

Journal ArticleDOI
TL;DR: In this paper, the effect of surface tension on the inward solidification of a liquid in a spherical container is investigated analytically by solving the unsteady heat equation via a small-time series expansion technique.

28 citations

Journal ArticleDOI
TL;DR: In this paper, a numerical simulation of transient heat penetration through a vertical rectangular composite cell, filled with a solid-liquid phase change material (PCM) and air layer, is presented.

28 citations

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Performance
Metrics
No. of papers in the topic in previous years
YearPapers
20224
202136
202033
201929
201819
201726