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Transformer Sizing & Load Reality · W4

Motor Starting Current, Voltage Dip & Transformer Sizing

Direct answer: A transformer that is acceptable for steady-state kVA may still be associated with unacceptable voltage dip when a large motor starts. Motor starting current depends on the specific motor, starting method and mechanical load. The resulting voltage response depends on the combined upstream source, transformer, feeder and load-system impedance. Transformer sizing should therefore check both steady-state demand and starting duty. There is no universal motor-starting multiplier or universal allowable voltage-dip percentage that should be applied to every project.
Illustrative graph showing the first-pass relationship between motor starting current, equivalent system impedance and voltage dip.
Motor-starting voltage dip depends on starting current and the equivalent system impedance; final limits are project-specific.

Voltage dip increases with starting current and equivalent source-system impedance in a first-pass model; allowable dip remains project-specific.

Why “steady-state kVA is enough” can still fail

Do not publish one universal starting-current multiplier

Starting method changes the duty

Data required before a meaningful starting review

Use simplified equations as screening tools only

FAT and commissioning roles

FAQ

Will buying the next transformer size up solve motor-starting problems?

It can change the impedance and capacity relationship, but it is not automatically the best solution. The source, feeder, starting method, protection and sensitive loads should be reviewed together.

Is motor starting current always 6–8 times full-load current?

No universal multiplier should be used for every motor. Use the actual motor and starter data.

Can FAT prove that the motor will start correctly on site?

FAT provides transformer parameters for the study, but it does not reproduce the complete site system.

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