<p>In this research, nanocapsules of polyethylene glycol (PEG) as the phase change material (PCM) were synthesized and used to prepare a heat transfer fluid. The phase change nanocapsules were prepared using a novel sequential sedimentation approach by controlling the core and shell solubility parameters through temperature changes in the solvent. These nanocapsules consist of a PEG core with a molecular weight of 2000, as the PCM, and a thermally conductive polystyrene/activated carbon (PS-AC) shell (PEG@PS/AC). Adding up to one weight percent of these nanocapsules in distilled water significantly improved the thermophysical properties of the heat transfer fluid. The specific heat capacity increased from 4300 J·kg<sup>−1</sup>·K<sup>−1</sup> for pure water to 5800 J·kg<sup>−1</sup>·K<sup>−1</sup> for the prepared heat transfer fluid. This represents a significant improvement of approximately 35&#xa0;% compared to pure water. The thermal energy absorption also showed improvements of about 17&#xa0;%. Furthermore, the thermal diffusivity of the heat transfer fluid was significantly reduced by 82&#xa0;%, from 12 × 10<sup>–7</sup> for water to 2.17 × 10<sup>–7</sup> m<sup>2</sup>·s<sup>−1</sup> due to the latent heat absorption of the PCM used in the nanocapsule. Based on the results, it is suggested that the developed PEG@PS/AC nanocapsules be used in heat transfer fluids to effectively manage thermal energy.</p>

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Using a Novel Solubility Parameter-Controlled Approach in Synthesizing Phase Change Materials Nanocapsules and Its Performance Evaluation in Heat Transfer Fluid Applications

  • Elnaz Talebi Ghelejlo,
  • Azadeh Seifi,
  • Golnoosh Abdeali,
  • Ahmad Reza Bahramian

摘要

In this research, nanocapsules of polyethylene glycol (PEG) as the phase change material (PCM) were synthesized and used to prepare a heat transfer fluid. The phase change nanocapsules were prepared using a novel sequential sedimentation approach by controlling the core and shell solubility parameters through temperature changes in the solvent. These nanocapsules consist of a PEG core with a molecular weight of 2000, as the PCM, and a thermally conductive polystyrene/activated carbon (PS-AC) shell (PEG@PS/AC). Adding up to one weight percent of these nanocapsules in distilled water significantly improved the thermophysical properties of the heat transfer fluid. The specific heat capacity increased from 4300 J·kg−1·K−1 for pure water to 5800 J·kg−1·K−1 for the prepared heat transfer fluid. This represents a significant improvement of approximately 35 % compared to pure water. The thermal energy absorption also showed improvements of about 17 %. Furthermore, the thermal diffusivity of the heat transfer fluid was significantly reduced by 82 %, from 12 × 10–7 for water to 2.17 × 10–7 m2·s−1 due to the latent heat absorption of the PCM used in the nanocapsule. Based on the results, it is suggested that the developed PEG@PS/AC nanocapsules be used in heat transfer fluids to effectively manage thermal energy.