Stiffness and inertia can be estimated from geometry with reasonable accuracy, but damping is much harder — it depends on steam flow, turbine loading, bearing friction, windage, shaft hysteresis, generator electrical damping, network impedance, machine loading and control interaction. Crucially, damping measured while the generator is synchronised includes both mechanical and electrical damping; using that value directly in a study that also models electrical damping through the generator and network double-counts the electrical damping — a serious error. A report should clearly distinguish mechanical damping, electrical damping, the measured combined damping, and the damping actually used in the shaft model.
The synchronised condition also shifts the modes. Unsynchronised, the shaft has a rigid-body Mode 0 at zero frequency (all masses rotate together). Synchronised, the electrical system adds a synchronising torque — an electrical “spring” between the generator rotor and the network — which moves Mode 0 from zero to a low frequency in the electromechanical swing range. The higher torsional modes change far less, because mechanical shaft stiffness greatly exceeds the electrical synchronising stiffness, but their damping can change substantially because the electrical system can add positive or negative damping. So a shaft test under one operating condition does not directly represent another — an important point in SSR studies.
Identify what controls the oscillation
For torsional and SSR studies, always check whether the oscillation is controlled by synchronising torque, damping torque, or a mechanical shaft mode. A single-mass model can show overall rotor acceleration, but it cannot show shaft twist, shaft-section torque or torsional fatigue.