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ASME Turbo Expo 2007: Power for Land, Sea, and Air | 2007

Reliability and Creep/Fatigue Analysis of a CMC Component

Pappu L. N. Murthy; Subodh K. Mital; John Z. Gyekenyesi; John P. Gyekenyesi

Abstract High temperature ceramic matrix composites (CMC) are being explored as viable candidate materials for hot section gas turbine components. These advanced composites can potentially lead to reduced weight and enable higher operating temperatures requiring less cooling; thus leading to increased engine efficiencies. There is a need for convenient design tools that can accommodate various loading conditions and material data with their associated uncertainties to estimate the minimum predicted life as well as the failure probabilities of a structural component. This paper presents a review of the life prediction and probabilistic analyses performed for a CMC turbine stator vane. A computer code, NASALife, is used to predict the life of a 2-D woven silicon carbide fiber reinforced silicon carbide matrix (SiC/SiC) turbine stator vane due to a mission cycle which induces low cycle fatigue and creep. The output from this program includes damage from creep loading, damage due to cyclic loading and the combined damage due to the given loading cycle. Results indicate that the trends predicted by NASALife are as expected for the loading conditions used for this study. In addition, a combination of woven composite micromechanics, finite element structural analysis and Fast Probability Integration (FPI) techniques has been used to evaluate the maximum stress and its probabilistic distribution in a CMC turbine stator vane. Input variables causing scatter are identified and ranked based upon their sensitivity magnitude. Results indicate that reducing the scatter in proportional limit strength of the vane material has the greatest effect in improving the overall reliability of the CMC vane.


Proceedings of the 15th Annual Conference on Composites and Advanced Ceramic Materials, Part 1 of 2: Ceramic Engineering and Science Proceedings, Volume 12, Issue 7/8 | 1991

Thermal Shock Fiber‐Reinforced Ceramic Matrix Composites

Andrew J. Eckel; Thomas P. Herbell; Edward R. Generazio; John Z. Gyekenyesi


Proceedings of the 15th Annual Conference on Composites and Advanced Ceramic Materials, Part 1 of 2: Ceramic Engineering and Science Proceedings, Volume 12, Issue 7/8 | 1991

Polymeric Routes to Silicon Carbide and Silicon Oxycarbide CMC

Frances I. Hurwitz; Paula J. Heimann; John Z. Gyekenyesi; John Masnovi; Xin Ya Bu


A Collection of Papers Presented at the 13th Annual Conference on Composites and Advanced Ceramic Materials, Part 1 of 2: Ceramic Engineering and Science Proceedings, Volume 10, Issue 7/8 | 1989

Polymer derived Nicalon/Si-C-O composites - Processing and mechanical behavior

Frances I. Hurwitz; John Z. Gyekenyesi; Paula J. Conroy


Proceedings of the 16th Annual Conference on Composites and Advanced Ceramic Materials, Part 1 of 2: Ceramic Engineering and Science Proceedings, Volume 13, Issue 7/8 | 1992

Failure mechanisms of 3-D woven SiC/SiC composites under tensile and flexural loading at room and elevated temperatures

Abhisak Chulya; John Z. Gyekenyesi; John P. Gyekenyesi


A Collection of Papers Presented at the 14th Annual Conference on Composites and Advanced Ceramic Materials, Part 1 of 2: Ceramic Engineering and Science Proceedings, Volume 11, Issue 7/8 | 1990

Nicalon/siliconoxycarbide ceramic composites

Frances I. Hurwitz; John Z. Gyekenyesi; Paula J. Conroy; Ann L. Rivera


Archive | 1987

Optical strain measuring techniques for high temperature tensile testing

John Z. Gyekenyesi; John H. Hemann


Proceedings of the 12th Annual Conference on Composites and Advanced Ceramic Materials, Part 1 of 2: Ceramic Engineering and Science Proceedings, Volume 9, Issue 7/8 | 2008

High Temperature Tensile Testing of Ceramic Composites

John Z. Gyekenyesi; John H. Hemann


Archive | 2014

NASALIFE - Component Fatigue and Creep Life Prediction Program

John Z. Gyekenyesi; Pappu L. N. Murthy; Subodh K. Mital


Archive | 1988

High temperature tensile testing of ceramic composites. Annual report

John Z. Gyekenyesi; John H. Hemann

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John H. Hemann

Cleveland State University

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Paula J. Conroy

Cleveland State University

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Abhisak Chulya

Cleveland State University

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Ann L. Rivera

Case Western Reserve University

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John Masnovi

Cleveland State University

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Paula J. Heimann

Cleveland State University

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