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Ultrasonic characterization of microstructure in powder metal alloyThe ultrasonic wave propagation characteristics were measured for IN-100, a powder metallurgy alloy used for aircraft engine components. This material was as a model system for testing the feasibility of characterizing the microstructure of a variety of inhomogeneous media including powder metals, ceramics, castings and components. The data were obtained for a frequency range from about 2 to 20 MHz and were statistically averaged over numerous volume elements of the samples. Micrographical examination provided size and number distributions for grain and pore structure. The results showed that the predominant source for the ultrasonic attenuation and backscatter was a dense (approx. 100/cubic mm) distribution of small micropores (approx. 10 micron radius). Two samples with different micropore densities were studied in detail to test the feasibility of calculating from observed microstructural parameters the frequency dependence of the microstructural backscatter in the regime for which the wavelength is much larger than the size of the individual scattering centers. Excellent agreement was found between predicted and observed values so as to demonstrate the feasibility of solving the forward problem. The results suggest a way towards the nondestructive detection and characterization of anomalous distributions of micropores when conventional ultrasonic imaging is difficult. The findings are potentially significant toward the application of the early detection of porosity during the materials fabrication process and after manufacturing of potential sites for stress induced void coalescence leading to crack initiation and subsequent failure.
Document ID
19860013493
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Tittmann, B. R.
(Rockwell International Science Center Thousand Oaks, CA, United States)
Ahlberg, L. A.
(Rockwell International Science Center Thousand Oaks, CA, United States)
Fertig, K.
(Rockwell International Science Center Thousand Oaks, CA, United States)
Date Acquired
August 12, 2013
Publication Date
January 1, 1986
Publication Information
Publication: NASA. Lewis Research Center Analytical Ultrasonics in Materials Research and Testing
Subject Category
Acoustics
Accession Number
86N22964
Funding Number(s)
CONTRACT_GRANT: W-7405-ENG-82
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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