LIU Jiahao, CHEN Xiangrong, ZHANG Tianyin, et al. Effect of accelerated thermal ageing on propagation and partial discharge characteristics of electrical trees of 500 kV EHVDC XLPE cable[J]. 2026, 30(2): 1-9.
DOI:
LIU Jiahao, CHEN Xiangrong, ZHANG Tianyin, et al. Effect of accelerated thermal ageing on propagation and partial discharge characteristics of electrical trees of 500 kV EHVDC XLPE cable[J]. 2026, 30(2): 1-9. DOI: 10.15938/j.emc.2026.02.001.
Effect of accelerated thermal ageing on propagation and partial discharge characteristics of electrical trees of 500 kV EHVDC XLPE cable
To study the effect of accelerated thermal ageing on the propagation and partial discharge characteristics of electrical trees of 500 kV extra high voltage direct current(EHVDC)cross-linked polyethylene(XLPE)cable
cross-cut and ring-cut samples were prepared. Electrical tree initiation and growth experiments were conducted at three temperatures
using a real-time electrical tree observation system and partial discharge measurement setup. Combined with differential scanning calorimetry
conductivity tests and molecular dynamics simulations to analyze the effect of accelerated thermal ageing. Accelerated thermal ageing significantly reduces the tree initiation voltage
shortens initiation time
increases tree growth rate
and elevates both partial discharge magnitude and pulse repetition rate. The oxidation induction time and crystallinity decrease after ageing
in dicating molecular chain scission and enlarged amorphous regions due to antioxidant depletion
led to conductivity increase and activation energy decrease. Molecular dynamics simulations show an increase in the fraction of free volume. The expansion of amorphous region and enlarged inter-chain gaps enhance charge transport channels and reduce energy barriers
leading to higher partial electrical field strength
faster tree initiation
and more complex electrical tree branching structure.