4.7 Article

Theoretical modeling of solid-liquid phase change in a phase change material protected by a multilayer Cartesian wall

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijheatmasstransfer.2022.123330

关键词

Phase change heat transfer; Multilayer wall; Moving boundary problems; Analytical modeling; Melting and solidification

资金

  1. National Science Foundation [CBET-1554183]
  2. Key Scientific and Technological Breakthrough in Henan Province [222102520007]
  3. Special Project of Basic Scientific Research Operating Expenses of Henan Polytechnic University [NSFRF210442]

向作者/读者索取更多资源

Theoretical modeling of solid-liquid phase change processes is important for energy storage and thermal management. This paper presents a theoretical analysis of phase change in a system comprising a phase change material (PCM) and a multi-layer wall. The analysis takes into account thermal conduction through the multi-layer wall and considers thermal contact resistance between wall layers and between the wall and PCM. The results improve the understanding of phase change heat transfer processes and are particularly relevant for relatively thick, thermally insulating walls over relatively short time periods.
Theoretical modeling of solid-liquid phase change processes is of much interest in energy storage and thermal management. While most theoretical phase change models assume that the phase change ma-terial (PCM) is in direct contact with the thermal source/sink, in most practical scenarios, the two are separated by a thick wall, which, in some cases, may comprise multiple heterogeneous layers. Account-ing for thermal conduction through the multi-layer wall is important to ensure accuracy of the predicted phase change characteristics. This paper presents theoretical analysis of phase change in a system com-prising a PCM and a multi-layer Cartesian wall using the eigenfunction expansion method and analysis of multi-layer thermal conduction. Thermal contact resistance between wall layers, and between the wall and PCM are accounted for. The predicted phase change front propagation is shown to agree well with past work for special case of a homogeneous wall, as well as with numerical simulations. Two distinct timescales in the solution, related to diffusion through the wall and phase change propagation in the PCM are identified. The impact of the imposed temperature, wall thermal diffusivity and thickness are presented in non-dimensional forms. Practical problems related to design of a PCM wall for energy stor-age are solved, showing two very different characteristics of stainless steel and polypropylene walls, as well as the impact of wall thickness on phase change propagation. The results presented here improve the fundamental understanding of phase change heat transfer processes, and are particularly relevant for relatively thick, thermally insulating walls over relatively short time periods, for which a resistance approximation for the wall is not accurate.(c) 2022 Elsevier Ltd. All rights reserved.

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