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Article

Fractal-Based Analysis of Pore Distribution Effects on the Thermal Performance of Phase Change Materials Embedded in Metal Foams

School of Aeronautics and Astronautics, Sun Yat-sen University, Shenzhen 518107, China
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Authors to whom correspondence should be addressed.
Fractal Fract. 2026, 10(5), 317; https://doi.org/10.3390/fractalfract10050317
Submission received: 16 March 2026 / Revised: 28 April 2026 / Accepted: 30 April 2026 / Published: 7 May 2026
(This article belongs to the Special Issue Fractal Applications in Thermal Engineering)

Abstract

Accurate description of phase change heat transfer in porous media relies on precise characterization of pore structures. In this study, fractal theory is employed to characterize the complex microstructure and pore distribution of metallic foams, and the Weierstrass–Mandelbrot (W–M) function is introduced to describe the stochastic spatial distribution of pores. Based on this fractal description, a transient melting heat transfer model is developed for metallic foam/paraffin composite phase change materials (CPCM). The effects of pore fractal dimension, porosity, and pore density on melting dynamics are systematically investigated. The results indicate that reducing porosity significantly accelerates the melting process and improves thermal energy storage efficiency. Crucially, the random pore distribution induces irregular melting fronts but has only a limited effect on the overall thermal response. Furthermore, even at identical porosities, variations in fractal dimension and pore density distinctly influence heat transfer rates, exhibiting similar evolutionary trends in melting behavior and thermal performance. These findings clarify the respective roles of pore structural parameters and stochastic pore heterogeneity in phase change heat transfer and provide guidance for optimizing composite phase change materials in high-performance thermal energy storage systems.
Keywords: melting heat transfer; fractal theory; composite phase change material; metal foam; Weierstrass–Mandelbrot function melting heat transfer; fractal theory; composite phase change material; metal foam; Weierstrass–Mandelbrot function

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MDPI and ACS Style

Gu, Z.; Zhu, Q.; Fan, L. Fractal-Based Analysis of Pore Distribution Effects on the Thermal Performance of Phase Change Materials Embedded in Metal Foams. Fractal Fract. 2026, 10, 317. https://doi.org/10.3390/fractalfract10050317

AMA Style

Gu Z, Zhu Q, Fan L. Fractal-Based Analysis of Pore Distribution Effects on the Thermal Performance of Phase Change Materials Embedded in Metal Foams. Fractal and Fractional. 2026; 10(5):317. https://doi.org/10.3390/fractalfract10050317

Chicago/Turabian Style

Gu, Zuoye, Qingyong Zhu, and Liangzhong Fan. 2026. "Fractal-Based Analysis of Pore Distribution Effects on the Thermal Performance of Phase Change Materials Embedded in Metal Foams" Fractal and Fractional 10, no. 5: 317. https://doi.org/10.3390/fractalfract10050317

APA Style

Gu, Z., Zhu, Q., & Fan, L. (2026). Fractal-Based Analysis of Pore Distribution Effects on the Thermal Performance of Phase Change Materials Embedded in Metal Foams. Fractal and Fractional, 10(5), 317. https://doi.org/10.3390/fractalfract10050317

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