Calculates secondary phase-to-phase and phase-to-neutral bus voltage across all discrete tap positions for power transformers equipped with on-load (OLTC) or off-circuit (OCTC) tap changers, establishing automatic voltage regulator (AVR) bandwidths and deadbands.
Governing Formulas & Standards
Standards Basis: IEC 60076-1 / IEC 60214-1
V_{sec,tap} = V_{sec,nom} \times \left(1 - \frac{\text{Tap Step} \times \%\text{Step}}{100}\right)
A positive tap step adds primary winding turns, reducing secondary voltage; a negative tap step subtracts primary turns, raising secondary bus voltage.
Worked Engineering Example: 16-Tap 11 kV Bus Voltage Variation (1.25% Steps)
- Voltage Multiplier: Multiplier = 1 - (-4 × 0.0125) = 1 + 0.05 = 1.05 → +5.0% Voltage Boost
- Resulting Bus Voltage: V_sec = 11,000 × 1.05 = 11,550 V → 11.55 kV
Final Solution: Tap -4 Bus Voltage: 11.55 kV (+550 V boost above nominal)
Frequently Asked Questions
- Why are tap changers placed on the high-voltage winding instead of the low-voltage winding?
- The HV winding carries significantly lower current than the LV winding (by the turns ratio), resulting in smaller mechanical contacts, reduced contact arcing, and lower physical wear inside the diverter switch compartment.
Interactive calculation engine and real-time CAD solver available online at https://amithvijayan.in/tools/transformer-oltc-tap-changer.