In three-phase transformers, harmonic behaviour depends strongly on winding connection, the key issue being the treatment of triplen harmonics — multiples of three (3rd, 6th, 9th, 12th, …). In a balanced three-phase system these are zero-sequence components, in phase in all three phases, so they need a return path. Without one, they cannot flow freely and the voltage or flux waveform may distort.
A delta winding provides a closed path for triplen harmonic currents: the third-harmonic magnetising currents circulate inside the delta and so do not usually appear in the external line currents. This helps suppress triplen harmonics on the line side and reduces voltage distortion at the terminals.
A delta winding traps triplen harmonic currents inside the delta.
A wye winding behaves differently. If the wye is ungrounded, there is no neutral return path for zero-sequence triplen currents, so the third-harmonic magnetising current cannot flow freely. When it is restricted, the flux and phase voltages may distort, and the star point may shift or oscillate because the triplen components affect the phase-to-neutral voltages. However, balanced triplen components are in phase in all three phases and cancel when one phase voltage is subtracted from another:
If the third-harmonic components in \(V_a\) and \(V_b\) are equal and in phase, they subtract to zero in the line-to-line voltage. Triplen harmonics may therefore appear in the phase-to-neutral voltage but not in the line-to-line voltage. If the wye neutral is grounded, the neutral provides a return path for triplen currents, allowing the third-harmonic magnetising current to flow and reducing phase-voltage distortion.