The earlier parts dealt mainly with air-insulated stations. This part extends station lightning insulation coordination to gas-insulated stations (GIS), the very fast front transients from disconnecting-switch operation, GIS insulation strength and BIL coordination, and a comparison of the chapter method with the IEEE and IEC guide methods.
GIS behaves differently from AIS because the bus geometry is compact, the surge impedance is much lower, travelling-wave travel times are very short, the SF₆ field is more uniform, and disconnecting-switch operation can create very fast front transients (VFFTs). AIS intuition does not always transfer directly.
Part Four applied the simplified method to air-insulated station examples. Part Five extends the discussion to gas-insulated stations. GIS has shorter distances, lower surge impedance and more compact geometry than AIS, so the surge behaviour and the interpretation of insulation strength are different.
GIS cannot be treated as just a smaller version of AIS. The low surge impedance of the GIS bus, the short travel times, the compact enclosed geometry and the possibility of very fast front transients from disconnecting-switch operation make GIS insulation coordination a topic in its own right.
Two GIS stresses should be kept separate. The first is the lightning surge entering the GIS from an overhead line or cable transition. The second is the very fast front transient (VFFT) produced inside the GIS by disconnecting-switch operation. They have different origins, different frequency content and different mitigation methods.