A harmonic power-flow study is more detailed than a frequency scan: it calculates harmonic voltages and currents throughout the network from the harmonic sources and the system impedance. The general process is:
Nonlinear devices such as variable-speed drives, rectifiers, converters, inverters, arc furnaces and power-electronic loads are usually represented as harmonic current sources, with a spectrum that defines which orders are injected and how large they are relative to the fundamental. A six-pulse converter, for example, produces characteristic harmonics of the form:
\[ h=6k\pm1,\qquad k=1,2,3,\dots \]
- \(h\)
- characteristic harmonic order of a six-pulse converter
- \(k\)
- any positive integer (1, 2, 3, …)
giving orders \(5, 7, 11, 13, 17, 19, 23, 25, \ldots\) These harmonic currents flow through the network impedance and create harmonic voltage distortion.
The important point is that harmonic distortion is both a waveform issue and a network issue: the source produces harmonic currents, but the resulting harmonic voltages depend on the network impedance. A weak or resonant network may experience higher voltage distortion for the same harmonic current injection, so harmonic assessment normally needs both the source spectrum and the frequency-dependent network impedance.
The key message is that harmonic distortion must be quantified with engineering measures: RMS gives the effective heating value, THD the overall distortion level, the individual harmonic magnitudes show which orders are present, the power quantities \(P\), \(Q\), \(S\) and \(D\) explain the effect on power, crest factor relates peak to RMS, and frequency scans and harmonic power-flow studies show how the network responds at each frequency. Together they take an engineer from a visual waveform to a complete technical assessment of harmonic impact.
Key message
Harmonic distortion must be quantified with engineering measures. RMS gives the effective heating value and THD the overall distortion level, while the individual harmonic magnitudes show which orders are present. The power quantities P, Q, S and distortion power D explain the effect on power, crest factor relates peak to RMS, and frequency scans and harmonic power-flow studies show how the network responds at each frequency — together turning a visual waveform into a complete technical assessment.