Literature DB >> 33562537

Heat Storage of Paraffin-Based Composite Phase Change Materials and Their Temperature Regulation of Underground Power Cable Systems.

Peiling Xie1, Haoliang Huang1, Yuchang He1, Yueyue Zhang1, Jiangxiong Wei1.   

Abstract

Excessive heat accumulation in backfill materials causes thermal fatigue damage in underground power cable systems that significantly affects the cable carrying capacity. To improve the thermal conditions of the system, two types of composite phase change materials (CPCMs) were prepared by incorporating paraffin into porous ceramsite (CS)/expanded graphite (EG) in this study. EG and CS can carry 90 and 40 wt.% paraffin, respectively. The phase change temperature of paraffin/CS and paraffin/EG CPCMs was approximately 65 °C, and the corresponding latent heats were 63.38 J/g and 156.4 J/g, respectively. Furthermore, the temperature regulation by CPCMs was evaluated experimentally by designing a setup to simulate the underground power cable system. The reduction in the maximum temperature of the backfill materials with paraffin/CS CPCM and paraffin/EG CPCM was approximately 7.1 °C and 17.1 °C, respectively, compared to reference samples. A similar conclusion was drawn from the heat flux curves. Therefore, the prepared CPCMs could significantly alleviate temperature fluctuations, where the paraffin/EG CPCM provided better temperature regulation than paraffin/CS CPCM. Both materials have potential applications for use in backfill materials for underground power cable systems.

Entities:  

Keywords:  expanded graphite; paraffin-based CPCMs; porous ceramsite; temperature regulation; underground power cable system

Year:  2021        PMID: 33562537      PMCID: PMC7914930          DOI: 10.3390/ma14040740

Source DB:  PubMed          Journal:  Materials (Basel)        ISSN: 1996-1944            Impact factor:   3.623


  1 in total

1.  Post-Pyrolytic Carbon as a Phase Change Materials (PCMs) Carrier for Application in Building Materials.

Authors:  Michał Ryms; Katarzyna Januszewicz; Paweł Kazimierski; Justyna Łuczak; Ewa Klugmann-Radziemska; Witold M Lewandowski
Journal:  Materials (Basel)       Date:  2020-03-11       Impact factor: 3.623

  1 in total

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