Journal of Metals, Materials and Minerals
Publication Date
2025
Abstract
Thermal management technology is a crucial strategy for reducing energy consumption in buildings by utilizing stored solar energy. This study developed a polyethylene glycol (PEG)-based phase-change material (PCM), selected for its superior physicochemical stability, high latent enthalpy, and environmental compatibility. To enhance thermal conductivity, 20 vol% magnetite (Fe₃O₄) was incorporated into the PEG matrix. The composite was synthesized via an ultrasonic-assisted method (37 kHz, 80°C, 1 h). X-ray diffraction (XRD) confirmed the crystalline structure of PEG and the cubic phase of Fe3O4, while Fourier-transform infrared spectroscopy (FTIR) validated the synthesis by identifying Fe–O, C–H, and O–H functional groups. Scanning electron microscopy (SEM) revealed a homogeneous dispersion of Fe3O4, and energy-dispersive X-ray spectroscopy (EDS) confirmed the elemental composition of C, H, O, and Fe. Vibrating sample magnetometry (VSM) demonstrated superparamagnetic behavior, with a saturation magnetization of 16.76 emu∙g‒1. Thermal analysis indicated a 49% increase in thermal conductivity, a latent heat of 78.88 J∙g‒1, and a melting temperature of 61.51℃. These findings underscore the potential of Fe3O4-enhanced PEG-based PCMs for efficient thermal regulation in buildings, contributing to enhanced energy efficiency and sustainability.
DOI
10.55713/jmmm.v35i3.2310
First Page
-
Last Page
-
Recommended Citation
Fauzi, Muhammad; Kurniawan, Budhy; Tetuko, Anggito Pringgo; Sembiring, Timbangen; Nilam, Fanna; Fachredzy, Amdy; and Sebayang, Perdamean
(2025)
"Macro-encapsulation of polyethylene glycol and magnetite (Fe3O4) in concrete as phase change materials for building thermal management,"
Journal of Metals, Materials and Minerals: Vol. 35:
No.
3, Article 11.
DOI: 10.55713/jmmm.v35i3.2310
Available at:
https://digital.car.chula.ac.th/jmmm/vol35/iss3/11