LLL (Line-Line-Line)
A balanced three-phase fault where all three phases are shorted together, typically producing the maximum available symmetrical fault current.
A short circuit study determines the available current that the power system can deliver into faults, and then compares those duties to equipment ratings. This determines if breakers, switchgear, switchboards, panelboards, transfer switches, and other equipment are being operated within their rated capabilities.
A short circuit can occur between phases, from phase to ground, from phase to neutral, or in multi-phase combinations. The system impedance from the source to the fault location drives the magnitude and X/R ratio of the fault current.
Faults can be caused by insulation failure, loose or damaged conductors, contamination, water intrusion, equipment deterioration, failed components, incorrect installation, or foreign conductive material.
A balanced three-phase fault where all three phases are shorted together, typically producing the maximum available symmetrical fault current.
A fault between two phase conductors, without involvement of ground.
A fault where one phase conductor is connected to ground or grounded equipment.
A fault where two phase conductors are shorted together and connected to ground.
NEC 110.9 and 110.10 state that interrupting devices and equipment short-circuit current ratings must be adequate for the available fault current. NEC 110.24 also requires available fault current marking at service equipment in many non-dwelling applications.
If the available fault current exceeds an equipment rating, the result can include breaker failure, switchgear or switchboard damage, bus bracing failure, enclosure rupture, fire, personnel exposure, or even more severe cascades of events. The study identifies these overduties such that it can be addressed to lessen the possibility of such event occurring.
ANSI-based short-circuit software evaluates fault current using ANSI/IEEE C37 procedures, including calculation of the fault-point X/R ratio. The X/R ratio is commonly determined using separate resistance and reactance network reductions and is used to account for DC offset when evaluating asymmetrical, peak, momentary, and interrupting duties against applicable equipment ratings.
Used for application of AC high-voltage circuit breakers above 1000 V rated on a symmetrical-current basis.
Covers low-voltage AC power circuit breakers used in enclosures, including rating structures used to evaluate interrupting, withstand, and short-time capability.
A withdrawn legacy guide for AC high-voltage breakers rated on a total-current basis. It is relevant when older breakers were not rated under modern symmetrical-current methods.
Low-voltage short circuit duties are typically evaluated at 1/2 cycle from fault inception, while medium and high voltage breaker duties normally include both a 1/2 cycle momentary calculation and an interrupting calculation tied to the breaker's contact parting time.
The X/R ratio determines the amount of DC offset in the fault-current waveform and directly affects the resulting asymmetrical and peak currents. Circuit breakers are tested at specified X/R ratios in accordance with applicable UL standards. If the calculated system X/R ratio exceeds the breaker's tested X/R ratio, the resulting asymmetrical or peak fault current may exceed the breaker's tested capability, even when the calculated symmetrical fault current is below the breaker's symmetrical interrupting rating.
In these cases, the calculated interrupting duty must be adjusted to verify that the equipment's tested asymmetrical capability is not exceeded.
Generator contributions based on subtransient reactance, X"d may look acceptable from a maximum symmetrical fault-current perspective while producing a high X/R ratio near the generator. The elevated X/R ratio can result in large multiplying factors and create overduties if the scenario is not modeled. Equipment near large transformers or areas with significant motor contributions can similarly have elevated X/R ratios.
Collect utility maximum and minimum fault current, X/R ratio when available, service transformer data, generator data, and source operating assumptions.
Model transformer impedance, cable and busway impedance, reactors, grounding, motors, generators, and other meaningful system contributors.
Record breaker AIC, switchgear and panel SCCR, short-time ratings, close-and-latch ratings, fuse ratings, voltage ratings, and legacy breaker information.
Evaluate practical lineups, alternate sources, generators paralleled with utility, tie positions, closed-transition transfers, and other cases that can create worst-case duty.
Protective device coordination and arc flash calculations rely on a valid and accurate short circuit model. The equipment must first be shown to be properly rated for the available fault current before TCCs and arc flash hazard calculations can be relied on.