Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/7082
Title: Analysis of solidification in a finite PCM storage with internal fins by employing heat balance integral method
Authors: Kothari, Rohit
Sahu, Santosh Kumar
Kundalwal, Shailesh
Keywords: Boundary conditions;Fins (heat exchange);Heat flux;Heat storage;Latent heat;Phase change materials;Phase interfaces;Solidification;Specific heat;Storage (materials);Temperature distribution;Thermal energy;Constant temperature;Constant wall temperature;Heat balance integral method;Latent heat thermal energy storage;Latent heat thermal energy storage systems;Pcm based thermal energy storages;Solidification time;Various model parameters;Aspect ratio
Issue Date: 2019
Publisher: John Wiley and Sons Ltd
Citation: Kothari, R., Das, S., Sahu, S. K., & Kundalwal, S. I. (2019). Analysis of solidification in a finite PCM storage with internal fins by employing heat balance integral method. International Journal of Energy Research, 43(12), 6366-6388. doi:10.1002/er.4363
Abstract: Here, a simplified analytical model has been proposed to predict solid fraction, solid–liquid interface, solidification time, and temperature distribution during solidification of phase change material (PCM) in a two-dimensional latent heat thermal energy storage system (LHTES) with horizontal internal plate fins. Host of boundary conditions such as imposed constant heat flux, end-wall temperature, and convective air environment on the vertical walls are considered for the analysis. Heat balance integral method was used to obtain the solution. Present model yields closed-form solution for temperature variation and solid fraction as a function of various modeling parameters. Also, solidification time of PCM, which is useful in optimum design of PCM-based thermal energy storages, has been evaluated during the analysis. The solidification time was found to be reduced by 93% by reducing the aspect ratio from 8 to 0.125 for constant heat flux boundary condition. While, for constant wall temperature boundary condition, the solidification time reduces by 99% by changing the aspect ratio from 5 to 0.05. In case of convective air boundary surrounding, the solidification time is found to reduce by 88% by reducing the aspect ratio from 8 to 0.125. Based on the analytical solution, correlations have been proposed to predict solidification time in terms of aspect ratio and end-wall boundary condition. © 2019 John Wiley & Sons, Ltd.
URI: https://doi.org/10.1002/er.4363
https://dspace.iiti.ac.in/handle/123456789/7082
ISSN: 0363-907X
Type of Material: Journal Article
Appears in Collections:Department of Mechanical Engineering

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