| 1 | Match the system voltage and motor rating | Confirm the motor rated voltage, frequency, phase arrangement, insulation level, available fault current, and the soft starter's rated operational voltage. | Low-voltage systems commonly use 380 V, 400 V, or 415 V at 50 Hz. Medium-voltage applications commonly use 3.3 kV, 6.6 kV, or 10 kV. The starter voltage rating must not be lower than the system voltage. | Verify phase-to-phase voltage withstand, power-frequency withstand, clearances, creepage distances, enclosure requirements, and suitable upstream short-circuit protection. | Approved single-line diagram, nameplate comparison, insulation test record, dielectric-test certificate, and short-circuit coordination study. |
| 2 | Size by motor current and starting duty | Select the starter from the motor nameplate full-load current and the actual starting profile rather than from horsepower or kilowatt rating alone. | The continuous current rating should be at least equal to the motor full-load current. Check the number of starts per hour, starting duration, load torque, ambient temperature, altitude, and enclosure derating. | Confirm that the overload model, current transformers, semiconductor thermal limits, and bypass contactor duty are suitable for the complete start-and-run cycle. | Motor data sheet, load-torque calculation, thermal-duty calculation, manufacturer-neutral rating schedule, and recorded starting-current trend. |
| 3 | Choose a suitable acceleration strategy | Select voltage ramp, current limit, torque control, or pump-specific ramping according to the driven load and the required mechanical acceleration. | A current-limit setting of approximately 2 to 4 times motor full-load current is often used as an initial commissioning range, but the final value must be confirmed by motor torque and load requirements. | Verify that the motor reaches rated speed without a stall trip, excessive voltage depression, water hammer, belt shock, coupling stress, or repeated thermal overload. | Start-current waveform, acceleration time, motor terminal-voltage record, vibration observation, and final parameter sheet. |
| 4 | Specify complete motor protection | Define which protection functions are integrated into the starter and which must be supplied by external relays, circuit breakers, fuses, or motor protection systems. | Common functions include electronic overload, phase loss, phase unbalance, phase sequence, under- and overvoltage, locked rotor or stall, excessive starts, heatsink overtemperature, and control-supply failure. | Confirm trip thresholds, time delays, reset behavior, fail-safe operation, alarm contacts, and coordination with upstream short-circuit and earth-fault protection. Do not assume every function is built in. | Protection setting list, coordination study, trip simulation results, alarm contact test, and documented reset or restart logic. |
| 5 | Verify the bypass arrangement | Determine whether the bypass is internal or external and confirm that it closes only after the motor has completed acceleration and the semiconductor path is ready to be released. | A bypass contactor should be rated for the motor's running current and selected for the actual switching duty. AC-3 is relevant when a contactor makes or breaks squirrel-cage motor current; the applicable utilization category must be confirmed for the circuit duty. | Test bypass close timing, auxiliary-contact interlocking, failure-to-close alarm, failure-to-open behavior, contact welding detection where provided, and automatic transfer back to semiconductor control after a bypass fault. | Bypass wiring diagram, contactor utilization-category data, interlock test, measured transfer sequence, and thermal comparison before and after bypass operation. |
| 6 | Check thermal performance and installation conditions | Calculate heat dissipation during starting and running, including whether the bypass is closed during normal operation. Review ventilation, cabinet spacing, altitude, ambient temperature, and harmonic effects. | Semiconductor losses are highest while the motor current flows through the thyristors. A correctly operating bypass substantially reduces continuous starter losses, but it does not remove the need to verify starting thermal duty. | Verify heatsink temperature, fan or ventilation status, cabinet temperature rise, temperature-trip operation, and safe behavior if the bypass does not close. | Temperature-rise calculation, cabinet thermal test, fan-failure simulation, temperature alarm test, and installation inspection report. |
| 7 | Perform a documented IEC-based verification | Separate the requirements for the semiconductor soft starter from those for the associated contactor, motor starter, enclosure, protective device, and control circuit. | IEC 60947-4-1 applies to electromechanical contactors and motor-starters. Semiconductor motor controllers and starters are generally covered by IEC 60947-4-2, so the project specification should identify both standards where both device types are used. | Conduct FAT and site tests for insulation, protective-earth continuity, phase sequence, start and stop commands, current limit, overload, phase loss, emergency stop, bypass transfer, bypass failure, and restart inhibition. | Signed inspection and test plan, factory test report, commissioning records, protection-trip records, as-built drawings, and final parameter backup. |