The method of direct current potential drop (DCPD) can be utilized as an effective and convenient approach for in situ damage detection, and as a nondestructive evaluation technique. We present the results from use of a multiprobe DCPD technique for in situ damage detection in loading of a SiC/SiC composite. It is shown that in three different modes of loading (monotonic, fatigue, and cyclic load–unload), the sensing capabilities of DCPD technique compare well to the techniques of modal acoustic emission (AE) and digital image correlation (DIC). It was also found that DCPD technique provides a far earlier warning of failure under fatigue loading than the other two methods. In addition, we show that strategically placed multiple voltage leads on the specimen surface provide a promising way of qualitatively determining the crack initiation site. Therefore, the use of multiple lead DCPD method, together with other techniques, provides a viable option for sensing damage in ceramic matrix composites (CMCs) with complex geometries, and for applications at higher temperatures.
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March 2019
Research-Article
Multi-Lead Direct Current Potential Drop Method for In Situ Health Monitoring of Ceramic Matrix Composites
Yogesh P. Singh,
Yogesh P. Singh
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: ysingh@uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: ysingh@uakron.edu
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Michael J. Presby,
Michael J. Presby
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mjp80@zips.uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mjp80@zips.uakron.edu
Search for other works by this author on:
Manigandan Kannan,
Manigandan Kannan
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mk77@uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mk77@uakron.edu
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Gregory N. Morscher
Gregory N. Morscher
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: gm33@uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: gm33@uakron.edu
Search for other works by this author on:
Yogesh P. Singh
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: ysingh@uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: ysingh@uakron.edu
Michael J. Presby
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mjp80@zips.uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mjp80@zips.uakron.edu
Manigandan Kannan
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mk77@uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: mk77@uakron.edu
Gregory N. Morscher
Department of Mechanical Engineering,
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: gm33@uakron.edu
University of Akron,
ASEC 504,
Akron, OH 44325
e-mail: gm33@uakron.edu
1Corresponding author.
Contributed by the Ceramics Committee of ASME for publication in the JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER. Manuscript received July 30, 2018; final manuscript received August 5, 2018; published online October 4, 2018. Editor: Jerzy T. Sawicki.
J. Eng. Gas Turbines Power. Mar 2019, 141(3): 031301 (10 pages)
Published Online: October 4, 2018
Article history
Received:
July 30, 2018
Revised:
August 5, 2018
Citation
Singh, Y. P., Presby, M. J., Kannan, M., and Morscher, G. N. (October 4, 2018). "Multi-Lead Direct Current Potential Drop Method for In Situ Health Monitoring of Ceramic Matrix Composites." ASME. J. Eng. Gas Turbines Power. March 2019; 141(3): 031301. https://doi.org/10.1115/1.4041271
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