Partial Discharge Characterization in a Defect Subjected to HVDC Cable Operating Conditions
Journal article, 2024

In this work, the role of the electric conductivity on variations of the PD phenomenon in XLPE insulation under DC stress is investigated and demonstrated. To enable this investigation, a new experimental setup simulating the insulating layer of a cable with an embedded air void defect and subjected to a DC stress and temperature has been proposed. The setup consists of two flat specimens connected in series. One of them is heated while the other one, that contains the defect, is kept at ambient temperature. Consequently, the electric fields induced by the externally applied DC stress differ between the two specimens. In this way, a conductivity variation between two dielectric layers is obtained. To facilitate the usage of this method, a new simulation model related to the proposed experimental setup has also been developed. The model is an extension of the three-capacitor model, in which variable resistors are introduced. Both simulation and experimental results indicate that the introduced discrete thermal gradient results in higher conductivity values and enhanced PD activity.

Conductivity variation

Simulation Model

Stress

Thermal stresses

Partial Discharge

Power cables

Thermal Gradient

Oils

Temperature measurement

Conductivity

Partial discharges

HVDC

Author

A. Imburgia

University of Palermo

G. Rizzo

Prysmian Group

G. Ala

University of Palermo

Thomas Hammarström

Chalmers, Electrical Engineering, Electric Power Engineering

Yuriy Serdyuk

Chalmers, Electrical Engineering, Electric Power Engineering

A. Di Fatta

University of Palermo

P. Romano

University of Palermo

IEEE Transactions on Dielectrics and Electrical Insulation

1070-9878 (ISSN) 15584135 (eISSN)

Vol. 31 4 1729-1737

Areas of Advance

Transport

Production

Energy

Subject Categories

Physical Sciences

Other Materials Engineering

Other Electrical Engineering, Electronic Engineering, Information Engineering

DOI

10.1109/TDEI.2024.3425318

More information

Latest update

8/17/2024