Short-term voltage stability is the ability of the voltage to recover within seconds after a fault. It is strongly affected by dynamic reactive support, motor stalling, load behaviour, protection action and whether the IBGs remain connected. The dominant load-side mechanism is the induction motor (IM). During a voltage dip an induction motor slows down, because its electrical torque falls; if the voltage does not recover quickly enough, the motor may stall. A stalled motor draws a high reactive current, which depresses the voltage further and can delay or prevent recovery — classically summer air-conditioning load. Drive-fed or inverter-interfaced motors, common in domestic appliances, are much less prone to this.
After the fault clears, motors need voltage and reactive power to re-accelerate. If IBGs, battery energy storage systems (BESS), STATCOMs, SVCs or generators provide enough reactive support, the recovery is faster; if not, motors may stay stalled and hold the voltage low until slower thermal protection disconnects them. IBGs act in the same time frame, so they matter here. An IBG without dynamic reactive support may worsen the post-fault recovery, because it does not provide reactive current when the motor load needs it most; worse, cutting an IBG’s active power raises the net load and lowers the load-bus voltage. Conversely, a properly controlled IBG can improve recovery if it stays connected and supports the voltage — though dynamic reactive support can also overshoot and lift the voltage too far, which is why HVRT matters as much as LVRT.
A single-phase PV example on a power-system simulator shows the failure mode. After a fault the faulted line is removed and later restored, and the network looks stable at 30 seconds — yet the single-phase PVs on one line-to-line voltage fail to restart and stay disconnected, because they do not meet the FRT requirement. Their loss raises the net load and drops the load-bus voltage. Sitting at 70% of rated voltage is abnormal and cannot be sustained: on a P–V (nose) curve, resistive load can operate at the lower voltage, but constant-power load cannot and must be disconnected. A Western Electricity Coordinating Council (WECC) study of an 800 MW PV plant, with a three-phase fault at the 230 kV point of interconnection, put six scenarios side by side (Table 2), and the results (Table 3) are instructive: with PV voltage control the transient voltage at the PCC is higher, better damped and recovers faster (with some overshoot); induction-motor stalling delays the recovery at the load bus, where PV voltage control has little effect.
The broad lessons: IBGs can help transient voltage performance when they regulate voltage — better damping and faster recovery from low inertia and fast control; without LVRT, losing a large amount of distributed PV on a fault is a real concern; and high distributed-PV penetration can raise the steady-state voltage under normal conditions. For large-system studies, very detailed generator models are not necessary.