A practical sequence: identify the study type (temporary overvoltage, switching, lightning, induced voltage, power quality, secondary arc, energisation, reclosing or incoming surge); estimate the frequency range (low-frequency studies need a wide network, fast-front studies need detailed local representation); select the model type (PI for low-frequency or short lines, distributed where propagation and reflection matter, frequency-dependent where damping or the ground mode matters); prepare the geometry and the conductor / ground data carefully; review the Line Constants output; decide whether shield wires, towers, footing impedances, insulators, flashover paths, corona or nonuniform sections are needed; run sensitivity checks where uncertainty matters (ground resistivity, corona, footing resistance, frequency dependence); and document the assumptions, especially for insulation coordination, arrester duty, switching-overvoltage or lightning-performance work.
Before accepting the model, confirm:
- The line length and the model’s frequency range suit the transient.
- The conductor coordinates, phase order, bundle and transposition data are correct.
- Shield wires are included or excluded intentionally.
- The conductor resistance corresponds to the intended temperature.
- The ground resistivity is reasonable, with a sensitivity check where it matters.
- The positive- and zero-sequence outputs, surge impedance and propagation velocity are physically reasonable.
- The frequency response is smooth, with no unexpected numerical behaviour.
- Corona and nonuniform sections are included where they control the result.
- The terminal network is detailed enough for realistic reflections.