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Nonlinear ultrasonic techniques for material characterization
J. Y. Kim
, L. Jacobs
,
J. Qu
Department of Mechanical Engineering
Stevens Institute of Technology
Georgia Institute of Technology
Research output
:
Chapter in Book/Report/Conference proceeding
›
Chapter
›
peer-review
8
Scopus citations
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Engineering
Measurement
100%
Elastic Solid
100%
Ultrasonics
100%
Macroscopic
66%
Nonlinearity
33%
Acoustics
33%
Surfaces
33%
Determines
33%
Applications
33%
Measurer
33%
Crack
33%
Fatigue Life
33%
Mechanical Loading
33%
Guided Wave
33%
Small Crack
33%
Wave Motion
33%
Engineering Component
33%
Life Prediction
33%
Dislocation
33%
Crack Initiation
33%
Material Science
Material
100%
Ultrasonic Testing
100%
Materials Characterization
100%
Solid
50%
Metal
33%
Surface
16%
Mechanical Strength
16%
Microstructure
16%
Crack
16%
Fatigue of Materials
16%
Toughness
16%
Physics
Ultrasonics
100%
Ultrasound
100%
Solid State
60%
Utilization
20%
Assessments
20%
Starting
20%
Cracks
20%
Metal
20%
Nonlinear Acoustics
20%
Toughness
20%
Crack Initiation
20%
Fatigue Life
20%