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RIS is a specialist in the fields of ultrasonics, acoustic microscopy, and resonance techniques for non destructive testing, manufacturing process development and control, and non-destructive characterization of materials. RIS is a leading authority in these fields.
Some of the benefits of NDE are reduced failures, reduction in process development time, more efficient designs, and better performance. NDE techniques have the potential to offer robust and economical means for insuring that the target specifications of a parts bulk properties, dimensional and surface properties are achieved at critical stages of the manufacturing process. It is desirable to move the inspection of the part upstream in the manufacturing process so any rejectable defect can be detected before further value is added to the part. Ultrasonic techniques are useful and versatile methods for evaluating microstructure and mechanical properties as well as detecting microscopic and macroscopic discontinuities in solids.
Advantages of Ultrasonic Testing
Application of Ultrasonics include:
The microstructure and mechanical properties of the material effect the ultrasonic velocity and attenuation of an ultrasonic wave. Determining the mechanical properties and metallurgical structures of material is a growing application for ultrasonics.
Elastic Constant Measurements - The velocity of ultrasonic waves in a solid depends on the density of the material and its elastic constants. Ultrasonics can be used to determine the elastic constants of small samples that would be impossible to test using a tensile testing machine. One application involved determining the elastic constants and Debye Temperature of an Al3Sc polycrystalline intermetallic material. A run to produce this intermetallic resulted in a button ingot roughly 1/8 inch thick and _ inch in diameter. A sample of this geometry could not be easily tested using a tensile testing machine. However, the elastic constants were easily determined by measuring the density of the material and then measuring the longitudinal and shear wave velocity in the ingot. The elastic constants were higher than both aluminum and scandium indicating that an intermetallic phase was formed.
Metallurgical Structure Determination The degree of recrystallization of hot rolled aluminum determines the texture of the cold rolled material and dictates the type and degree of earing in drawn and ironed products such as beverage cans. The texture of hot rolled material varies with the degree of recrystallization which can be from 0% (Figure 1) to close to 100% (Figure 2). Since recrystallized material exhibits different texture components than unrecrystallized material, and thus different elastic constants, measuring elastic wave speeds has the potential for determining the degree of recrystallization. Because of the slight anisotropy of a textured material, the speed of ultrasonic waves will depend on the direction they propagate with respect to the rolling direction (Figure 3). Ultrasonic techniques can be used to measure the degree of recrystallization for process monitoring. Electromagnetic acoustic transducers (Figure 4) were used to generate horizontally polarized shear waves which were propagated at 0 and 45 degrees with respect to the rolling direction. Figure 5 shows the degree of recrystallization vs the change in velocity, (V(45)-V(0))/V(0). This indicated that measuring the ultrasonic wave speed could be a good predictor for determining the degree of recrystallization in hot rolled sheet.
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Kevin Kennedy & Associates, Inc.
Rapid Response Engineering® Solutions
3905 Vincennes Road, Suite 320
Indianapolis, Indiana 46268
(317) 536-7000 voice
(317) 536-7220 fax