PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 14, 2026Inventions0 citationsOpen Access

Preparation and Performance of High-Thermal-Conductivity Composite Materials for Online Monitoring Equipment of Ultra-High Voltage Bushings

JZJie ZhangLGLonggang GuoLLLin Li

Key Points

  • This research aims to develop high-thermal-conductivity composite materials for online monitoring of ultra-high voltage bushings.
  • Utilized flash Joule heating for modifying resin encapsulation materials.
  • Achieved in situ microsoldering of multi-walled carbon nanotubes to carbon fibers.
  • Conducted characterizations using scanning electron microscopy, Raman spectroscopy, and X-ray photoelectron spectroscopy.
  • Performed macroscopic performance tests to evaluate thermal and mechanical properties.
  • Thermal conductivity of the reinforced system increased by approximately 168% compared to epoxy resin.
  • Mechanical strength improved by 62.72% due to the new composite structure.
  • Welding efficiency peaked at 90 V, optimizing carbon bonding.

Abstract

In response to thermal failure risks in ultra-high voltage (UHV) bushing online monitoring devices and maintenance equipment—caused by high heat generation of electronic components and the intrinsically low thermal conductivity of conventional resin encapsulation materials—this study proposes a novel modification strategy based on flash Joule heating (FJH). Distinct from conventional interface modification methods, the proposed approach enables cross-scale, in situ microsoldering between multi-walled carbon nanotubes (MWCNTs) and carbon fibers (CFs), constructing a multiscale reinforcement network with integrated thermal transport and mechanical load transfer pathways. The transient ultra-high-temperature thermal shock generated by FJH not only effectively removes inert impurities on CF surfaces but also drives carbon structural reconstruction, enabling graphitic-level welding of MWCNTs onto the fiber surface. This micro-welded architecture fundamentally differs from traditional filler dispersion or interface coating strategies, which often suffer from the trade-off between interfacial thermal transport and mechanical bonding. By contrast, the FJH-induced carbon–carbon bonded nodes form a continuous conductive and load-bearing network at the micro–nano scale. Characterizations using scanning electron microscopy (SEM), Raman spectroscopy, and X-ray photoelectron spectroscopy (XPS) confirm successful in situ welding of MWCNTs onto CF surfaces. Meanwhile, FJH treatment effectively removes oxygen-containing functional groups and surface impurities. Analysis of carbon bonding evolution indicates that the welding efficiency reaches its maximum at 90 V. Macroscopic performance tests demonstrate that, compared with epoxy resin, the thermal conductivity of the multiscale reinforced system increases by approximately 168%, while the mechanical strength improves by 62.72%. This study provides new theoretical insights and technical pathways for the development of next-generation polymer composite materials with both high thermal conductivity and high mechanical strength.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/699011a12ccff479cfe588b1https://doi.org/10.3390/inventions11010017
Ask AI
Helpful
Bookmark
Share
View Full Paper