IEC 60909 Short Circuit Calculation

Short Circuit Calculation IEC 60909 — Method, Formulas & Spreadsheet

When a fault occurs in an electrical network, the short-circuit current can reach tens of thousands of amps in milliseconds — enough to destroy switchgear if not rated correctly. IEC 60909 is the international standard that tells you exactly how to calculate that current, used across Europe, Asia and most of the world.

Equivalent voltage source method
Voltage factor c & correction factors
Generator short-circuit contribution
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Standard Overview

What Is IEC 60909 and How Is Short Circuit Calculated?

IEC 60909 is the international standard titled Short-circuit currents in three-phase AC systems, published by the International Electrotechnical Commission. Part 0 (IEC 60909-0:2016) sets out the calculation method for both low-voltage (up to 1 kV) and high-voltage three-phase systems at 50 Hz or 60 Hz.

The standard's core idea is the equivalent voltage source method. Instead of modelling the entire network in detail, IEC 60909 lets you replace everything upstream of the fault with a single ideal voltage source behind a single equivalent impedance. The short-circuit current is then simply:

I″k = c · Un / (√3 · Zk) where c is the voltage factor, Un is the nominal line-to-line voltage, and Zk is the total short-circuit impedance.

This matters because it makes short circuit calculation practical. You don't need a load-flow model or a transient simulation; you need the rated data of your equipment — the transformer's impedance, the generator's subtransient reactance, the cable's resistance and reactance — and the standard does the rest. Two results are always calculated: maximum short-circuit current (using cmax) for equipment rating, and minimum short-circuit current (using cmin) for relay coordination.

Core Method

Short Circuit Current Formula & Voltage Factor c

Every IEC 60909 short circuit calculation starts from the initial symmetrical short-circuit current formula. The voltage factor c deliberately overstates the source voltage so that the maximum current is always conservative for equipment rating.

Initial Symmetrical Short-Circuit Current

The master value from which all other currents are derived:

I″k = (c · Un) / (√3 · Zk)

For a simple radial network fed from a single source, the impedance is a straightforward sum: Zk = Zsource + ZT + Zcable + …

Voltage Factor c

The signature of the IEC 60909 method. It deliberately overstates the source voltage so that the maximum short-circuit current is always conservative.

Nominal Voltage Un cmax (max. current) cmin (min. current)
Low voltage (100 V – 1 kV) 1.05 (6%) or 1.10 (10%) 0.95
Medium voltage (>1 kV – 35 kV) 1.10 1.00
High voltage (>35 kV) 1.10 1.00

Use cmax for rating and withstand checks, and cmin for protection-sensitivity checks.

Five Short-Circuit Currents

I″k, ip, Ib, Ik & Ith

The initial symmetrical current I″k is only the start. IEC 60909 derives a family of currents from it, each used to size a different piece of equipment — from breaker interrupting rating to thermal withstand of cables and busbars.

Symbol Name Formula / Basis What It Sizes
I″k Initial symmetrical I″k = c·Un / (√3·Zk) Master value; basis for all others
ip Peak (make) current ip = κ·√2·I″k Mechanical bracing, busbar withstand, breaker close-and-latch
Ib Symmetrical breaking current Ib = μ·I″k Breaker interrupting rating
Ik Steady-state current Ik = I″k × (steady-state factor) Generator/relay coordination, long-time settings
Ith Thermal equivalent current Ith = I″k × √(m + n) Thermal withstand of cables, busbars, transformers
Peak factor κ: κ = 1.02 + 0.98 · e(−3·R/X), ranging from about 1.0 (purely resistive) up to nearly 2.0 (highly inductive, close to a generator or transformer). This determines the mechanical forces switchgear must withstand.
Step-by-Step Method

How to Calculate Short-Circuit Current (IEC 60909)

Let's work a complete example so the method is concrete. Calculate the maximum short-circuit current at the 400 V busbar of a 1000 kVA transformer (20 kV / 400 V, uk = 6%), using cmax = 1.05.

STEP 01

Transformer Impedance

ZT = uk · Un² / SrT = 0.06 × 400² / 1,000,000 = 9.6 mΩ

STEP 02

Apply KT

KT = 0.95·cmax / (1 + 0.6·xT) = 0.95×1.05 / (1+0.6×0.06) = 0.963
ZTK = 0.963 × 9.6 = 9.24 mΩ

STEP 03

Calculate I″k

I″k = cmax·Un / (√3·Zk) = 1.05×400 / (1.732×9.24×10⁻³) = 26.3 kA

STEP 04

Peak Current ip

Transformer-fed fault, R/X ≈ 0.1, so κ ≈ 1.7.
ip = κ·√2·I″k = 1.7 × 1.414 × 26.3 ≈ 63 kA

STEP 05

Result

A breaker on this busbar must interrupt at least 26.3 kA and withstand a 63 kA peak. Motor contributions would be added if present.

Key Insight

Generator-Fed Systems Are Different

For a generator-fed system, the fault level is set by the generator's subtransient reactance X″d, not by an infinite bus. A 1000 kVA generator with X″d = 15% delivers roughly 1 / 0.15 = 6.7× its rated current — about 9.7 kA at 400 V — far lower than the transformer example above. This is the critical factor when sizing switchgear on generator-fed or islanded systems.

Standard Comparison

IEC 60909 vs ANSI / IEEE C37

North America uses ANSI/IEEE C37; most of the rest of the world uses IEC 60909. Both reduce the network to a voltage source behind an impedance, but they differ in enough details that the results — typically 5–15% apart — can change an equipment rating.

Parameter IEC 60909 ANSI / IEEE C37
Base current Initial symmetrical RMS (I″k) Symmetrical RMS at contact-parting time
Voltage source Voltage factor c (cmax = 1.05–1.10) ~1.0 pu (max operating voltage)
Peak current ip = κ·√2·I″k (κ depends on X/R) ip = 1.6 × Isym (fixed)
DC decay Via time constant τ Integrated via X/R ratio
Impedance corrections Extensive (KT, KG, KM, KS) Limited temperature corrections
Motor contribution Included with μ and q decay factors Separate, with reactance multipliers
Practical difference: IEC 60909 usually yields a ~10% higher initial symmetrical and peak current than ANSI for the same network, because of the cmax uplift. The two methods should never be cross-substituted: a breaker rated to ANSI interrupting duty may not meet the IEC breaking current, and vice versa.
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ShanHua Power has manufactured diesel generator sets since 1999, with a range spanning 8 kVA to 4,000 kVA and certifications to ISO9001, CE, and CCC. We specify the subtransient reactance and short-circuit contribution of every machine we build — and help you select switchgear rated to interrupt it.

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