59257 - Steam Turbine Overspeed Scenarios: Comparison Between Api Energy Method and Dynamic Simulation
In turbomachinery applications the possibility to reduce size and costs of main flow-path components, by increasing shaft rotating speed, has always been appealing. The technological challenge in increasing this power density capability is typically related to performance prediction, to operating stress in blades and shafts, as well as to the need for a more and more accurate rotor-dynamic analysis. Yet another aspect, often reduced to standard assessments in less demanding applications, is related to the analysis of overspeed scenarios where, following a sudden loss of load and/or driven inertia, the turbomachine shall maintain its mechanical integrity.
Especially in steam turbines applications, where the behavior of the machine is strongly affected by the plant conditions, valves intervention time and connected volumes, the reduction of rotor’s inertia, against comparable power, may produce overspeed scenarios that can become a primary design constraint and, if overlooked, may have both availability and safety implications.
In this paper several approaches to the analysis of overspeed scenarios are discussed, with increasing level of detail. The energy-based overspeed analysis method, as required by API612, is 1st discussed against practical design cases. A more accurate dynamic model is then presented, and its results compared with those of the energy-based approach. Finally, the sensitivity analysis of the overspeed peak value with respect to critical design parameters is discussed. With respect to previous works, mostly base on load rejection scenarios the main focus is on the scenario of sudden coupling loss.
Steam Turbine Overspeed Scenarios: Comparison Between Api Energy Method and Dynamic Simulation
Paper Type
Technical Paper Publication
Description
Session: 23-03 Operational Aspects
Paper Number: 59257
Start Time: June 7th, 2021, 12:15 PM
Presenting Author: Fabrizio Piras
Authors: Federico Bucciarelli Baker Hughes
Damaso Checcacci Baker Hughes
Fabrizio Piras Baker Hughes
Filippo Ingrasciotta Private