Crack Growth Behavior of Full-Scale Turbine Attachment Under Combined High and Low Cycle Fatigue

Author:

Hu Dianyin1,Yan Lin2,Gao Ye2,Mao Jianxing2,Wang Rongqiao3

Affiliation:

1. School of Energy and Power Engineering, Beihang University, Beijing 100191, China; Collaborative Innovation Center of Advanced Aero-Engine, Beijing 100191, China; Beijing Key Laboratory of Aero-Engine Structure and Strength, Beijing 100191, China

2. School of Energy and Power Engineering, Beihang University, Beijing 100191, China

3. School of Energy and Power Engineering, Beihang University, Beijing 100191, China; Collaborative Innovation Center of Advanced Aero-Engine, Beijing 100191, China; Beijing Key Laboratory of Aero-Engine Structure and Strength, Beijing 100191, China e-mail:

Abstract

Turbine attachments in the aero-engine are generally subjected to combined high and low cycle fatigue (CCF) loadings, i.e., low cycle fatigue (LCF) loading due to centrifugal and thermal loading stresses superimposed to the aerodynamically induced high cycle fatigue (HCF) loading. The primary focus of this study is to predict the crack growth life for the actual full-scale turbine attachment through experimentally examining the crack growth behavior under CCF loading at elevated temperature. The crack closure effect was first investigated by using the corner-notched (CN) specimen cut from the turbine attachment since the stress state of CN specimen is more similar to turbine attachment than compact tension (CT) specimen. Employing digital image correlation (DIC) technique, the level of crack closure of CN specimen was clarified under different stress ratios (R) for LCF loading. Afterward, a CCF crack growth model for the full-scale turbine attachment was proposed, which takes the crack closure effect, time-independent crack increment, and transient vibrational analysis into account. In order to verify the proposed method, a Ferris wheel system was established to conduct CCF test on the full-scale turbine attachment at elevated temperature. This study provides an effective methodology to predict the fatigue crack growth (FCG) life of full-scale turbine attachment under CCF loading.

Publisher

ASME International

Subject

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

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2. A hybrid modeling method of fatigue crack growth for gas turbine blades under combined high and low cycle fatigue loadings;Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science;2023-12-26

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4. Deep learning regression-based stratified probabilistic combined cycle fatigue damage evaluation for turbine bladed disks;International Journal of Fatigue;2022-06

5. Threshold damage-based fatigue life prediction of turbine blades under combined high and low cycle fatigue;International Journal of Fatigue;2021-09

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