A Probabilistic Model for Forging Flaw Crack Nucleation Processes for Heavy Duty Gas Turbine Rotor Operations

Author:

Radaelli Francesco1,Amann Christian1,Aydin Ali2,Varfolomeev Igor2,Gumbsch Peter34,Kadau Kai5

Affiliation:

1. Siemens Energy, Mülheim an der Ruhr 45473, Germany

2. Fraunhofer IWM , Freiburg 79108, Germany

3. Fraunhofer IWM , Freiburg 79108, Germany ; , Karlsruhe 76131, Germany

4. Karlsruhe Institute of Technology , Freiburg 79108, Germany ; , Karlsruhe 76131, Germany

5. Siemens Energy, Inc. , Charlotte, NC 28273

Abstract

Abstract We present a probabilistic model for quantifying the number of load cycles for nucleation of forging flaws—for a 3.5NiCrMoV high strength low alloy rotor steel—into a crack under gas turbine operating conditions. The model correlates low cycle fatigue data, ultrasonic testing indication data, flaw morphology, and type with the nucleation process. This paper is the third of a series of publications presenting this modeling approach progressively. It focuses on the effect of temperature variation on the nucleation life of forging flaws. We quantified the number of cycles to crack nucleation was for specimens that included forging flaws at elevated temperatures. Flaws of different sizes and shapes are effectively described at respective temperature and stress levels by either an ellipsoidal finite element model or an analytical area-based model. A local probabilistic low-cycle fatigue model analyzes the resulting stress distributions accounting for statistical size effects. Via Maximum Likelihood Estimation of these probabilistic low cycle fatigue results, a probabilistic model for crack nucleation of forging flaws is obtained. This proposed probabilistic model is based on experimental data for realistic heavy duty gas turbine rotor temperature and stress conditions. It can be utilized in the energy sector for component life time quantification. Our suggested approach can support component assessment under flexible gas turbines operation conditions driven by increased availability of intermittent renewable energy sources.

Funder

Bundesministerium für Wirtschaft und Energie

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference38 articles.

1. Energy Siemens, 2021, “ SGT6-5000F Heavy-Duty Gas Turbine (60 Hz),” Siemens Energy, Berlin, Germany, accessed Dec. 1, 2021, https://www.siemens-energy.com/global/en/offerings/power-generation/gas-turbines/sgt6-5000f.html

2. An Overview of Forging Processes With Their Defects;Int. J. Sci. Res. Publ.,2014

3. Martensitic Steels for Rotors in Ultra-Supercritical Power Plants;Augusto,2017

4. Probabilistic Lifing;Meyendorf,2021

5. South West Research Institute, 2021, “DARWIN,” accessed Dec. 21, 2021, https://www.swri.org/darwin

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