Shunt capacitor banks are switched repeatedly, and hard, for voltage and reactive-power control. Each switching operation can produce a high-frequency inrush current, voltage transients, travelling-wave overvoltages and restrike-related stress, so mitigation is used to reduce the duty imposed on the circuit breaker, the capacitor bank and the connected network. A CIGRE survey found that roughly three-quarters of installed banks exist for voltage support and reactive power, and about 60% of operators switch them once or twice a day — the rest at least weekly. Left unmitigated, each energisation draws an inrush of up to about 5 per unit at kilohertz frequencies, injecting distorted waveforms, voltage transients and travelling-wave overvoltages into both local and remote stations. A capacitor breaker is therefore among the most heavily stressed devices in the network, mechanically and electrically.
This final page brings the series together by comparing the five device families used to reduce that inrush, outrush, overvoltage and restrike-related stress — controlled (point-on-wave) switching, pre-insertion resistors, current-limiting reactors, solid-state switches and the hybrid diode switch — following CIGRE TB 817. No mitigation method is universal: the right choice depends on whether the dominant concern is inrush current, outrush current, remote overvoltage, restrike risk, breaker wear, cost, reliability or continuous controllability. A useful way to compare the families is to ask three questions — what transient each one limits, when it is in the circuit, and what penalty it adds in cost, losses, complexity or availability. For the underlying inrush and recovery-voltage physics see the APS notes on energising capacitor banks and capacitive current switching for HV circuit breakers.



