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July 10, 2026The European Physical Journal Special Topics1 citationsOpen Access

Experimental investigation on the melting of an organic phase change material subjected to thermocapillary and buoyancy effects at different ambient temperatures

MRMahmoud RoshdyCMCarolina MendozaRBRafael Barea

Key Points

  • This research aims to understand how thermocapillary and buoyancy forces influence the melting of n-octadecane under varying ambient temperatures.
  • Experimentally analyzed melting in a parallelepiped container with varying n-octadecane thickness (10 mm to 30 mm).
  • Studied buoyancy and thermocapillary influences at different ambient temperatures relative to n-octadecane's phase transition.
  • Measured melting rates and analyzed relationships between Fourier and Bond numbers.
  • Melting time decreased by approximately 2.5 times at temperatures above the melting point for the 30 mm thick layer.
  • Significant seasonal effects influenced melting rates, notably from summer to fall conditions.
  • A power law relationship was established: Fo ∼ Bo^-1.29 under below-melting temperatures and Fo ∼ Bo^-1.24 above-melting temperatures.

Abstract

Abstract This study experimentally investigates the melting of the phase change material n-octadecane in a parallelepiped container heated laterally and with a free upper surface. The melting process is influenced by buoyancy and thermocapillary forces. The effect of their relative influence is studied by varying the thickness of the n-octadecane layer from 10\, mm 10 mm (Bo=8. 2 B o = 8. 2, Ma=6 10³ M a = 6 × 10 3) to 30\, mm 30 mm (Bo=74. 2 B o = 74. 2, Ma=1. 8 10⁴ M a = 1. 8 × 10 4), and the effect of the ambient temperature is studied by examining the melting processes at room temperatures above and below n-octadecane’s phase transition temperature. Results demonstrate that seasonal temperature variations, above or below the melting temperature, play a critical role in melting rate and position of the solid/liquid meniscus. The shift from summer (June–July) to fall (October–November) ambient conditions is a leading contributor to the melting rate, especially at small thicknesses. Melting time is reduced by a factor of approximately 2. 5 at ambient temperatures above the melting point for the largest thickness of 30\, mm 30 mm. Despite fluctuations in the ambient temperature and other experimental parameters, these results reveal a tight power law relationship between the Fourier and Bond numbers under below-melting ambient conditions, Fo Bo^-1. 29 Fo ∼ Bo - 1. 29, while a looser correlation is observed for above-melting ambient conditions, Fo Bo^-1. 24 Fo ∼ Bo - 1. 24. The findings offer insights for enhancing the performance of PCM-driven latent heat storage units across diverse climatic conditions.

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Cite This Study

Roshdy et al. (2026) studied this question.

synapsesocial.com/papers/6a508e5b6eeac72a437a14f9https://doi.org/10.1140/epjs/s11734-026-02464-y
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