ASTM E3045-16
(Practice)Standard Practice for Crack Detection Using Vibroacoustic Thermography
Standard Practice for Crack Detection Using Vibroacoustic Thermography
SCOPE
1.1 Purpose—This practice covers procedures required to conduct an examination of components using vibroacoustic thermography.
1.2 Application—The vibroacoustic thermography process has been used for component inspections in the aircraft, power generation, automotive, and other industries for testing new and serviced components, both coated and uncoated. Current applications are mostly targeting metallic components, but composite and ceramic component applications are under development.
1.3 Background—Vibroacoustic thermography is a new technique within the area of active thermography. The technique was first published by Henneke, et al. in 1979 (1)2 and has been expanded on and popularized by Favro, et al. (2). During the test a defect thermal response resulting from a short burst of ultrasonic energy typically in the range of 15 kHz to 40 kHz is detected by an infrared camera. The ultrasound coupled into the component being tested can activate a thermal response in defects with contact areas that can move against each other, that is, cracks and delamination. There are different energizing and coupling techniques that are commonly used depending on the needs and capabilities. These variations and the down selection process are not included in the procedure and should be developed/optimized by experimentation for each new component application.
Note 1: Vibroacoustic thermography is typically sensitive to tight planar defects (3). Volumetric defects such as porosity, inclusions, open ruptures or cracks in wide-open areas, will not typically result in an indication. Therefore, an augmenting method should be conducted to detect volumetric defects.
Note 2: Vibroacoustic thermography is a surface examination but has demonstrated detection sensitivity for subsurface defects including back wall defects for thin components (4), (5). Care should be taken when developing vibroacoustic thermography for the detection of subsurface defects.
1.4 Warning—Vibroacoustic thermography requires the energization of the test article with vibrational energy. During energization, the complete component may be excited with vibroacoustic (vibration) energy for as long as several seconds. The development of this test for a new application requires special measurements, precautions and attention to component response. The component design engineer and the NDE engineering specialist, knowledgeable of this technique should be satisfied that the test will not cause damage or reduction of service life.
1.5 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety and health practices and determine the applicability of regulatory limitations prior to use.
General Information
Standards Content (Sample)
NOTICE: This standard has either been superseded and replaced by a new version or withdrawn.
Contact ASTM International (www.astm.org) for the latest information
Designation: E3045 − 16
Standard Practice for
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Crack Detection Using Vibroacoustic Thermography
This standard is issued under the fixed designation E3045; the number immediately following the designation indicates the year of
original adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. A
superscript epsilon (´) indicates an editorial change since the last revision or reapproval.
1. Scope 1.4 Warning—Vibroacoustic thermography requires the
energization of the test article with vibrational energy. During
1.1 Purpose—This practice covers procedures required to
energization, the complete component may be excited with
conduct an examination of components using vibroacoustic
vibroacoustic (vibration) energy for as long as several seconds.
thermography.
The development of this test for a new application requires
special measurements, precautions and attention to component
1.2 Application—The vibroacoustic thermography process
has been used for component inspections in the aircraft, power response. The component design engineer and the NDE engi-
neering specialist, knowledgeable of this technique should be
generation, automotive, and other industries for testing new
and serviced components, both coated and uncoated. Current satisfied that the test will not cause damage or reduction of
service life.
applications are mostly targeting metallic components, but
composite and ceramic component applications are under
1.5 This standard does not purport to address all of the
development.
safety concerns, if any, associated with its use. It is the
responsibility of the user of this standard to establish appro-
1.3 Background—Vibroacoustic thermography is a new
priate safety and health practices and determine the applica-
technique within the area of active thermography. The tech-
2
bility of regulatory limitations prior to use.
nique was first published by Henneke, et al. in 1979 (1) and
has been expanded on and popularized by Favro, et al. (2).
2. Referenced Documents
During the test a defect thermal response resulting from a short
2.1 ASTM Standards:
burstofultrasonicenergytypicallyintherangeof15kHzto40
E168 Practices for General Techniques of Infrared Quanti-
kHz is detected by an infrared camera. The ultrasound coupled
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tative Analysis (Withdrawn 2015)
into the component being tested can activate a thermal re-
E1213 Practice for Minimum Resolvable Temperature Dif-
sponseindefectswithcontactareasthatcanmoveagainsteach
ference for Thermal Imaging Systems
other, that is, cracks and delamination. There are different
E1252 Practice for General Techniques for Obtaining Infra-
energizing and coupling techniques that are commonly used
red Spectra for Qualitative Analysis
depending on the needs and capabilities. These variations and
E1311 Practice for Minimum Detectable Temperature Dif-
the down selection process are not included in the procedure
ference for Thermal Imaging Systems
and should be developed/optimized by experimentation for
E1316 Terminology for Nondestructive Examinations
each new component application.
E1933 Practice for Measuring and Compensating for Emis-
NOTE 1—Vibroacoustic thermography is typically sensitive to tight
sivity Using Infrared Imaging Radiometers
planar defects (3). Volumetric defects such as porosity, inclusions, open
E2585 Practice for Thermal Diffusivity by the Flash Method
ruptures or cracks in wide-open areas, will not typically result in an
4
indication. Therefore, an augmenting method should be conducted to
2.2 ASNT Standards:
detect volumetric defects.
SNT-TC-1A Recommended Practice, Personnel Qualifica-
NOTE 2—Vibroacoustic thermography is a surface examination but has
tion and Certification in Nondestructive Testing
demonstrated detection sensitivity for subsurface defects including back
ANSI/ASNT CP-189-2001 Standard for Qualification and
wall defects for thin components (4), (5). Care should be taken when
Certification of Nondestructive Testing Personnel
developing vibroacoustic thermography for the detection of subsurface
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defects. 2.3 ATA Standards:
ATA-105 Guidelines for Training and Qualifying Personnel
in Nondestructive Testing
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This test method is under the jurisdiction of ASTM Committee E07 on
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Nondestructive Testing and is the direct responsibility of Subcommittee E07.10 on The last approved version of this historical standard is referenced on
Specialized NDT Methods. www.astm.org.
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Current edition approved April 1, 2016. Published April 2016. DOI: 10.1520/ AvailablefromAmericanSocietyforNondestructiveTesting(ASNT),P.O.Box
E3045-15 28518, 1711 Arlingate Ln., Columbus, OH 43228-0518, http://www.asnt.org.
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The boldface numbers in parentheses refer to a list of references at the end of Available from Air Transport Association, 1301 Pennsylvania
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