Muneeb Ahmed, Lisheng Zhong, Jinghui Gao, Fei Li, Nuo Xu, Wenpeng Li, Liang Cao
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Alloying PS at 220°C in XLPE leads to improved inter-molecular interactions and increased interfacial area, creating a sea–island morphology that resolves voids and limits defect or crack propagation by forming additional trapping sites. The enhanced breakdown strength and reduced conductivity of XLPE-PS are attributed to increased deep trapping sites and reduced carrier mobility resulting from alloying. The reduced conductivity at 70°C and 90°C demonstrates stability under electric fields. Remarkable breakdown strength improvements of 27.5% and 23.6% are observed at 30°C and 50°C. 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Significantly enhanced DC breakdown strength and high-temperature resistivity of cross-linked polyethylene through alloying polystyrene strategy
Developing a stable insulation material stands as a crucial challenge for high-voltage direct current (HVDC) cable insulation. This work proposes an alloying strategy to significantly enhance the breakdown strength and high-temperature resistivity of cross-linked polyethylene (XLPE). The strategy involves blending low-density polyethylene (LDPE) with polystyrene (PS), resulting in a polymeric alloy. Confirmation of PS alloying within XLPE is supported by observed shifts in polyethylene miller indices (110) and (200) planes. The dicumyl peroxide used as a crosslinking agent demonstrates an ideal 1.41% enhancement in LDPE-PS crosslinking. The integration of aromatic ethers in the cross-linked network enhances temperature stability. Alloying PS at 220°C in XLPE leads to improved inter-molecular interactions and increased interfacial area, creating a sea–island morphology that resolves voids and limits defect or crack propagation by forming additional trapping sites. The enhanced breakdown strength and reduced conductivity of XLPE-PS are attributed to increased deep trapping sites and reduced carrier mobility resulting from alloying. The reduced conductivity at 70°C and 90°C demonstrates stability under electric fields. Remarkable breakdown strength improvements of 27.5% and 23.6% are observed at 30°C and 50°C. The proposed alloying strategy suggests replacing XLPE with advanced XLPE-PS, offering promising prospects for HVDC insulation.
High VoltageEnergy-Energy Engineering and Power Technology
CiteScore
9.60
自引率
27.30%
发文量
97
审稿时长
21 weeks
期刊介绍:
High Voltage aims to attract original research papers and review articles. The scope covers high-voltage power engineering and high voltage applications, including experimental, computational (including simulation and modelling) and theoretical studies, which include:
Electrical Insulation
● Outdoor, indoor, solid, liquid and gas insulation
● Transient voltages and overvoltage protection
● Nano-dielectrics and new insulation materials
● Condition monitoring and maintenance
Discharge and plasmas, pulsed power
● Electrical discharge, plasma generation and applications
● Interactions of plasma with surfaces
● Pulsed power science and technology
High-field effects
● Computation, measurements of Intensive Electromagnetic Field
● Electromagnetic compatibility
● Biomedical effects
● Environmental effects and protection
High Voltage Engineering
● Design problems, testing and measuring techniques
● Equipment development and asset management
● Smart Grid, live line working
● AC/DC power electronics
● UHV power transmission
Special Issues. Call for papers:
Interface Charging Phenomena for Dielectric Materials - https://digital-library.theiet.org/files/HVE_CFP_ICP.pdf
Emerging Materials For High Voltage Applications - https://digital-library.theiet.org/files/HVE_CFP_EMHVA.pdf