An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite Materials

Acoustic Emission technique is a versatile method for characterization in materials science. It is considered to be a “passive” non-destructive method since damage can be only evaluated when de defects are being developed during the test which, at the end of the day, it is considered an advantage be...

Full description

Bibliographic Details
Main Author: Rios-Soberanis C.R.
Format: Article
Language:English
Published: EDP Sciences 2015-01-01
Series:MATEC Web of Conferences
Online Access:http://dx.doi.org/10.1051/matecconf/20153003009
id doaj-4a82807d74f4464e8e3ae09b8f3892a0
record_format Article
spelling doaj-4a82807d74f4464e8e3ae09b8f3892a02021-02-02T03:10:51ZengEDP SciencesMATEC Web of Conferences2261-236X2015-01-01300300910.1051/matecconf/20153003009matecconf_icmset2015_03009An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite MaterialsRios-Soberanis C.R.0Centro de Investigación Científica de YucatánAcoustic Emission technique is a versatile method for characterization in materials science. It is considered to be a “passive” non-destructive method since damage can be only evaluated when de defects are being developed during the test which, at the end of the day, it is considered an advantage because failure mechanisms and damage process can be monitored and identified during the load history. When a failure mechanism is activated due to a discontinuity in the material such as crack propagation, part of the total strain energy is dissipated as an elastic waves that propagate from the damage source through the medium. Therefore, this released energy can be detected by piezoelectric sensors that perceive the emitted signal from the damage notation site by the surface dynamic movement and convert it in an electrical response. Acoustic emission signals can be correlated with the onset of damage process occurring in the tested materials and also to de diverse failure mechanisms such as matrix cracking, interface damage, fiber fracture, etc. This paper proposes to discuss our information and results on acoustic emission materials characterization undertaken on different types of materials.http://dx.doi.org/10.1051/matecconf/20153003009
collection DOAJ
language English
format Article
sources DOAJ
author Rios-Soberanis C.R.
spellingShingle Rios-Soberanis C.R.
An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite Materials
MATEC Web of Conferences
author_facet Rios-Soberanis C.R.
author_sort Rios-Soberanis C.R.
title An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite Materials
title_short An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite Materials
title_full An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite Materials
title_fullStr An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite Materials
title_full_unstemmed An Approach to Acoustic Emission Technique Applications to Evaluate Damage Mechanisms in Composite Materials
title_sort approach to acoustic emission technique applications to evaluate damage mechanisms in composite materials
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2015-01-01
description Acoustic Emission technique is a versatile method for characterization in materials science. It is considered to be a “passive” non-destructive method since damage can be only evaluated when de defects are being developed during the test which, at the end of the day, it is considered an advantage because failure mechanisms and damage process can be monitored and identified during the load history. When a failure mechanism is activated due to a discontinuity in the material such as crack propagation, part of the total strain energy is dissipated as an elastic waves that propagate from the damage source through the medium. Therefore, this released energy can be detected by piezoelectric sensors that perceive the emitted signal from the damage notation site by the surface dynamic movement and convert it in an electrical response. Acoustic emission signals can be correlated with the onset of damage process occurring in the tested materials and also to de diverse failure mechanisms such as matrix cracking, interface damage, fiber fracture, etc. This paper proposes to discuss our information and results on acoustic emission materials characterization undertaken on different types of materials.
url http://dx.doi.org/10.1051/matecconf/20153003009
work_keys_str_mv AT riossoberaniscr anapproachtoacousticemissiontechniqueapplicationstoevaluatedamagemechanismsincompositematerials
AT riossoberaniscr approachtoacousticemissiontechniqueapplicationstoevaluatedamagemechanismsincompositematerials
_version_ 1724308479309512704