With respect to the High Voltage power systems installation, explain the different types of circuit breaker that are used, comparing them on merits and demerits. Describe the theory of arc phenomenon and the mechanism fitted to
mitigate the arc.
With respect to the High Voltage power systems installation, explain the different types of circuit breaker that are used, comparing them on merits and demerits. Describe the theory of arc phenomenon and the mechanism fitted to
mitigate the arc.
Structured for DG Shipping MEO Class II examination scoring criteria.
Types of Circuit Breakers
1. Vacuum Circuit Breaker (VCB):
In VCBs, the fixed and moving contacts, along with the arc shield, are housed in an arc-interrupting chamber with a high vacuum. The vacuum's excellent dielectric strength allows for very short contact separation and rapid recovery of insulation strength after each interruption.
Merits:
Demerits:
2. SF₆ (Sulfur Hexafluoride) Gas Circuit Breaker:
These breakers utilize high-pressure SF₆ gas as an arc-extinguishing medium. The gas absorbs free electrons from the arc path, forming ions that increase the medium's dielectric strength. The gas is later recycled back to a high-pressure reservoir for reuse.
Merits:
Demerits:
3. Oil Circuit Breaker:
When an arc forms, the surrounding oil evaporates and dissociates, producing hydrogen gas. The hydrogen displaces the oil around the arc, cools it, and provides a cooling effect to extinguish the arc.
Merits:
Demerits:
4. Air Blast Circuit Breaker:
High-pressure air is introduced into the arc chamber through a nozzle when a fault occurs. The air cools the arc and sweeps away ionized particles, increasing the dielectric strength of the medium
Merits:
Demerits:
Arc Phenomenon:
When the contacts of a circuit breaker begin to separate under fault conditions, the contact area reduces rapidly. This reduction, combined with high fault current, increases the current density and causes a rise in temperature. The heat ionizes the surrounding medium, creating a conductive path for the current, which results in the formation of an arc between the breaker contacts. This arc persists as long as the ionized medium provides a low-resistance path, keeping the circuit energized.
Arc Mitigation Techniques: