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


How to Calculate Short Circuit Current of Circuit Breaker

Electrical4u
Electrical4u
Field: Basic Electrical
0
China

How To Calculate Short Circuit Current

When there is a short circuit fault in the electrical system, a huge short circuit current flows through the system including the circuit breaker (CB) contacts, unless the fault is cleared by tripping the CB. When the short circuit current flows through the CB, the different current carrying parts of the circuit breaker are subjected to huge mechanical and thermal stresses.

If the conducting parts of the CB do not have sufficient cross-sectional area, there may be a chance of dangerously high temperature rise. This high temperature may affect insulation quality of the CB.

The CB contacts also experience high temperature. The thermal stresses of CB contacts are proportional to I2Rt, where R is the contact resistance, depends upon contact pressure and contact surface condition. I is the rms value of short circuit current and t is duration for which the short circuit current has flown through the contacts.

After initiating fault, the short circuit current stays until the interrupting unit of CB, breaks. Hence, time t is breaking time of the circuit breaker. As this time is very less in scale of mili second, it is assumed that all the heat produced during fault is absorbed by the conductor since there is no sufficient time for convention and radiation of heat.
The temperature rise can be determined by the following formula,
Where, T is the temperature rise per second in degree centigrade.
I is the
current (rms symmetrical) in Ampere.
A is the cross-sectional area of the conductor.
ε is the temperature coefficient of
resistivity of the conductor at 20oC.

As it is known to us, that aluminum above 160oC losses its mechanical strength and becomes soft, it is desired to limit the temperature rise below this temperature. This requirement actually sets the permissible temperature rise during short circuit. This limit can be achieved by controlling CB breaking time and proper designing of conductor dimension.

Short Circuit Force

The electromagnetic force developed between two parallel electric current carrying conductors, is given by the formula,
Where, L is the length of the both conductors in inch.

S is the distance between them in inch.
I is the current carried by each of the
conductors.

It is experimentally proved that, electromagnetic short circuit force is maximum when the value of short circuit current I, is 1.75 times the initial rms value of the symmetrical short circuit current wave.

However, in certain circumstances it is possible that, forces greater than these may develop, such as, for instance in the case of very rigid bars or due to resonance in the case of bars liable to mechanical vibration. Experiments have also shown that the reactions produced in a non resonating structure by an alternating current at the instant of application or removal of the forces may exceed the reactions experienced while the current is flowing.

Thus it is advisable to error on the side of safety and to allow for all contingencies, for which one should take into account the maximum force which could be developed by the initial peak value of the asymmetrical short circuit current. This force may be taken as having a value which is twice of that calculated from the above formula.

The formula is strictly useful for circular cross-sectional conductor. Although L is a finite length of the portions of conductors run parallel to each other, but the formula is only suitable where the total length of each conductor is assumed as infinite.

In practical cases the total length of the conductor is not infinite. It is also considered in mind, that, the flux density near the ends of current carrying conductor is considerably different than its middle portion.

Hence, if we use above formula for short conductor, the force calculated would be much higher than actual.

It is seen that, this error may be eliminated considerably if we use the term,
is stead of L/S in the above formula.
The formula then becomes,
The formula, represented by equation (2), gives error free result when the ratio L/S is greater than 20. When 20 > L/S > 4, formula (3) is suitable for error free result.
If L/S < 4, formula (2) is suitable for error free result. The above formulas are only applicable for circular cross-sectional conductors. But for rectangular cross-sectional conductor, the formula needs to have some correction factor. Say this factor is K. Hence, the above formula ultimately becomes,
Although the effect of shape of cross-section of conductor reduces rapidly if spacing between the conductor increases the value of K is maximum for strip like conductor whose thickness is quite less than its width. K is negligible when shape of cross-section of conductor is perfectly square. K is unity for perfectly circular cross-sectional conductor. This holds true for both standard and remote control circuit breaker.

Statement: Respect the original, good articles worth sharing, if there is infringement please contact delete.

Give a tip and encourage the author!
Recommended
Low-Voltage Distribution Cabinet Maintenance Steps and Safety Guide
Low-Voltage Distribution Cabinet Maintenance Steps and Safety Guide
Maintenance Procedure for Low-Voltage Power Distribution FacilitiesLow-voltage power distr ibution facilities refer to the infrastructure that delivers electrical power from a power supply room to end-user equipment, typically including distribution cabinets, cables, and wiring. To ensure the normal operation of these facilities and guarantee user safety and power supply quality, regular maintenance and servicing are essential. This article provides a detailed introduction to the maintenance pro
Edwiin
10/28/2025
Low-Voltage Electrical Work Safety Preparation and Operation Guide
Low-Voltage Electrical Work Safety Preparation and Operation Guide
Low-Voltage Electrician Safety Operating Procedures1. Safety Preparation Before performing any low-voltage electrical work, personnel must wear approved protective equipment, including insulating gloves, insulating boots, and insulating workwear. Carefully inspect all tools and equipment for proper operation. Report any damage or malfunction immediately for repair or replacement. Ensure adequate ventilation at the worksite. Avoid prolonged work in confined spaces to prevent fire hazards or poiso
Echo
10/28/2025
How to Handle Common Faults in RMU and Transformer Substations?
How to Handle Common Faults in RMU and Transformer Substations?
1. Ring Main Unit (RMU) and Transformer SubstationThe ring main unit (RMU) and transformer substation is a critical terminal in a distribution ring network system. The operational status of this terminal is directly affected by the performance of the distribution ring network system. Therefore, this section discusses the advantages, system composition, and key characteristics of the distribution ring network.1.1 Advantages of RMU and Transformer SubstationDue to technological limitations, radial
Felix Spark
10/28/2025
Six Key Differences Between Ring Main Units and Switchgear Explained
Six Key Differences Between Ring Main Units and Switchgear Explained
Differences Between Ring Main Units (RMUs) and SwitchgearIn power systems, both ring main units (RMUs) and switchgear are common distribution equipment, but they differ significantly in function and structure. RMUs are primarily used in ring-fed networks, responsible for power distribution and line protection, with the key feature being multi-source interconnection through a closed-loop ring network. Switchgear, as a more general-purpose distribution device, handles power reception, distribution
Echo
10/28/2025
Related Products
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.