• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


Analysis of Partial Discharge Principle

Leon
Leon
Field: Fault Diagnosis
China

Analysis of Partial Discharge Principle (1)

Under the action of an electric field, in an insulation system, discharge occurs only in some regions and does not penetrate between the conductors with the applied voltage. This phenomenon is called partial discharge. If partial discharge occurs near a conductor surrounded by gas, it can also be called corona.

Partial discharge can occur not only at the edge of a conductor but also on the surface or inside an insulator. The discharge occurring on the surface is called surface partial discharge, and that occurring inside is called internal partial discharge. When discharge occurs in the air gap inside the insulator, the exchange and accumulation changes of charges in the air gap will inevitably be reflected in the charge changes of the electrodes (or conductors) at both ends of the insulator. The relationship between the two can be analyzed by means of an equivalent circuit.

Taking a cross - linked polyethylene cable as an example below to explain the development process of partial discharge. When there is a small air gap inside the cable insulation medium, its equivalent circuit is shown as follows:

In the figure, Ca is the air - gap capacitance, Cb is the solid dielectric capacitance in series with the air gap, and Cc is the capacitance of the remaining intact part of the dielectric. If the air gap is very small, then Cb is much smaller than Cc and Cb is much smaller than Ca. When an AC voltage with an instantaneous value of u is applied between the electrodes, the voltage ua across Ca is .

When ua increases with u to reach the discharge voltage U2 of the     air gap, the air gap starts to discharge. The space charges generated by the discharge will establish an electric field, causing the voltage across Ca to drop sharply to the residual voltage U1. At this point, the spark extinguishes, and one partial discharge cycle is completed.

During this process, a corresponding partial discharge current pulse appears. The discharge process is extremely short and can be regarded as completed instantaneously. Each time the air gap discharges, its voltage drops instantaneously by Δua = U2 - U1. As the applied voltage continues to rise, Ca recharges until ua reaches U2 again, and the air gap discharges for the second time.

The moment partial discharge occurs, the air gap generates voltage and current pulses, which in turn create moving electric and magnetic fields in the line. Partial discharge detection can be carried out based on these fields.

In actual detection, it is found that the magnitude of each discharge (i.e., the pulse height) is not equal, and discharges mostly occur in the phase of the rising stage of the absolute value of the applied voltage amplitude. Only when the discharge is extremely intense will it extend to the phase of the falling stage of the absolute value of the voltage. This is because in practical situations, there are often multiple air bubbles discharging simultaneously; or there is only one large air bubble, but each discharge does not cover the entire area of the bubble, only a local region.

Obviously, the charge quantity of each discharge is not necessarily the same, and there may even be reverse discharges, which may not neutralize the originally accumulated charges. Instead, both positive and negative charges accumulate near the bubble wall, causing surface discharge along the bubble wall. In addition, the space near the bubble wall is limited. During discharge, a narrow conductive channel forms inside the bubble, leading to the leakage of some space charges generated by the discharge.

Give a tip and encourage the author!
Recommended
Three-Phase SPD: Types, Wiring & Maintenance Guide
Three-Phase SPD: Types, Wiring & Maintenance Guide
1. What Is a Three-Phase Power Surge Protective Device (SPD)?A three-phase power surge protective device (SPD), also known as a three-phase lightning arrester, is specifically designed for three-phase AC power systems. Its primary function is to limit transient overvoltages caused by lightning strikes or switching operations in the power grid, thereby protecting downstream electrical equipment from damage. The SPD operates based on energy absorption and dissipation: when an overvoltage event occ
James
12/02/2025
Railway 10kV Power Through Lines: Design & Operation Requirements
Railway 10kV Power Through Lines: Design & Operation Requirements
The Daquan Line has a large power load, with numerous and scattered load points along the section. Each load point has a small capacity, with an average of one load point every 2-3 km, so two 10 kV power through lines should be adopted for power supply. High-speed railways use two lines for power supply: primary through line and comprehensive through line. The power sources of the two through lines are taken from the dedicated bus sections fed by the voltage regulators installed in each power di
Edwiin
11/26/2025
Analysis of Causes of Power Line Loss and Loss Reduction Methods
Analysis of Causes of Power Line Loss and Loss Reduction Methods
In power grid construction, we should focus on actual conditions and establish a grid layout suitable for our own needs. We need to minimize power loss in the grid, save social resource investment, and comprehensively improve China's economic benefits. Relevant power supply and electricity departments should also set work goals centered on effectively reducing power loss, respond to energy conservation calls, and build green social and economic benefits for China.1.Current Status of China's Powe
Echo
11/26/2025
Neutral Grounding Methods for Conventional-Speed Railway Power Systems
Neutral Grounding Methods for Conventional-Speed Railway Power Systems
Railway power systems primarily consist of automatic block signaling lines, through-feeder power lines, railway substations and distribution stations, and incoming power supply lines. They provide electricity to critical railway operations—including signaling, communications, rolling stock systems, station passenger handling, and maintenance facilities. As an integral part of the national power grid, railway power systems exhibit distinct characteristics of both electrical power engineering and
Echo
11/26/2025
Send inquiry
Download
Get the IEE Business Application
Use the IEE-Business app to find equipment, obtain solutions, connect with experts, and participate in industry collaboration anytime, anywhere—fully supporting the development of your power projects and business.