Published August 1, 2004 | Version v1
Report

Material Property Measurement in Hostile Environments using Laser Acoustics

Description

Acoustic methods are well known and have been used to measure various intrinsic material properties, such as, elastic coefficients, density, crystal axis orientation, microstructural texture, and residual stress. Extrinsic properties, such as, dimensions, motion variables or temperature are also readily determined from acoustic methods. Laser acoustics, employing optical generation and detection of elastic waves, has a unique advantage over other acoustic methods-it is noncontacting, uses the sample surface itself for transduction, requires no couplant or invasive sample surface preparation and can be utilized in any hostile environment allowing optical access to the sample surface. In addition, optical generation and detection probe beams can be focused to the micron scale and/or shaped to alter the transduction process with a degree of control not possible using contact transduction methods. Laser methods are amenable to both continuous wave and pulse-echo measurements and have been used from Hz to 100's of GHz (time scales from sec to psec) and with amplitudes sufficient to fracture materials. This paper shall review recent applications of laser acoustic methods to determining material properties in hostile environments that preclude the use of contacting transduction techniques. Example environments include high temperature (>1000C) sintering and molten metal processing, thin film deposition by plasma techniques, materials moving at high velocity during the fabrication process and nuclear high radiation regions. Recent technological advances in solid-state lasers and telecommunications have greatly aided the development and implementation of laser acoustic methods, particularly at ultra high frequencies. Consequently, laser acoustic material property measurements exhibit high precision and reproducibility today. In addition, optical techniques provide methods of imaging acoustic motion that is both quantitative and rapid. Possible future directions for laser acoustics shall be discussed drawing from examples in materials science, microelectronic and nuclear fields.

Additional details

Publishing Information

Imprint Pagination
vp.
Report number
INEEL/CON--04-01559

Conference

Title
2004 IEEE International Ultrasonics, Ferroelectrics and Frequency Control
Dates
24-27 Aug 2004
Place
Montreal (Canada)

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
39019840
Subject category
S36: MATERIALS SCIENCE; S46: INSTRUMENTATION RELATED TO NUCLEAR SCIENCE AND TECHNOLOGY;
Resource subtype / Literary indicator
Conference, Non-conventional Literature
Descriptors DEI
ACOUSTICS; AMPLITUDES; DETECTION; FABRICATION; FRACTURES; FREQUENCY CONTROL; IMPLEMENTATION; LASERS; MICROELECTRONICS; PLASMA; PROCESSING; RADIATIONS; SINTERING; THIN FILMS; ULTRASONIC WAVES
Descriptors DEC
CONTROL; FABRICATION; FAILURES; FILMS; SOUND WAVES

Optional Information

Contract/Grant/Project number
AC07-99ID-13727
Funding organization
DOE - EE (United States)