{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:51292"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:51292","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Identification of damage in composite materials using thermoelastic stress analysis","abstract":"A quantitative damage assessment methodology for composite materials has been<br/>achieved using Thermoelastic Stress Analysis (TSA). The TSA technique provides fullfield<br/>data which is collected in a non-contacting and real time manner. The damage<br/>assessment methodology proposed requires a means of calibrating and temperature<br/>correcting the thermoelastic signal; these are developed and presented in this thesis.<br/><br/>The thermoelastic theory for calibrating thermoelastic data from orthotropic bodies has<br/>traditionally been based on a stress formulation. There are difficulties in calibrating<br/>orthotropic materials in this manner and an alternative calibration routine has been<br/>devised and validated. The calibration routine provides the thermoelastic theory as a<br/>function of strain and permits a simplified calibration route as the laminate strains are<br/>the basis and can be measured in a straightforward manner.<br/><br/>During damage propagation in laminated structures the specimen heats. The increase in<br/>temperature has a significant effect on the thermoelastic data and necessitates that the<br/>thermoelastic data be corrected to remove the effect of temperature from the data. A<br/>routine is developed that enables the correction of the thermoelastic data in a point-bypoint<br/>manner.<br/><br/>By combining the strain calibration and temperature correction procedures a damage<br/>assessment methodology has been devised. The application of the methodology is<br/>demonstrated on glass / epoxy laminate specimens that are fatigue damaged and the<br/>damage state assessed using this method; the extent and type of damage is verified<br/>qualitatively using visual inspection methods. The work described is applicable to any<br/>orthotropic material. The effect of fatigue damage is assessed by periodically collecting<br/>thermoelastic data during the specimen life. This data is analysed using damage metrics<br/>based on the calibrated strain obtained from the TSA.<br/><br/>The wider application of the TSA damage assessment methodology is considered by<br/>assessing the ability to locate subsurface damage. A complementary IR technique is used<br/>in conjunction with TSA known as Pulse Phase Thermography (PPT). Initial studies<br/>demonstrate the ability to resolve the spatial extents of subsurface damage. The purpose<br/>of this step is to guide TSA to areas of concern that can subsequently be assessed using<br/>the damage metrics to characterise the effect of damage on the residual life of the<br/>component.<br/><br/>The strain calibration and temperature correction methods that enable TSA to be<br/>applied quantitatively to damaged composite materials have not been accomplished prior<br/>to this work. They provide novel methods by which TSA data can be assessed, and their<br/>application is not restricted to damage studies alone. The ability to temperature correct<br/>TSA data has been shown to be of vital importance if thermoelastic data is to be<br/>compared in a quantitative fashion. The strain calibration procedure presented will<br/>enable thermoelastic studies to be reported quantitatively and expand the application of<br/>TSA particularly in validation studies. The damage assessment methodology presented<br/>represents a step forward in the application of TSA to the damage assessment of<br/>composite materials.","abstract_html":"A quantitative damage assessment methodology for composite materials has been&lt;br/&gt;achieved using Thermoelastic Stress Analysis (TSA). The TSA technique provides fullfield&lt;br/&gt;data which is collected in a non-contacting and real time manner. The damage&lt;br/&gt;assessment methodology proposed requires a means of calibrating and temperature&lt;br/&gt;correcting the thermoelastic signal; these are developed and presented in this thesis.&lt;br/&gt;&lt;br/&gt;The thermoelastic theory for calibrating thermoelastic data from orthotropic bodies has&lt;br/&gt;traditionally been based on a stress formulation. There are difficulties in calibrating&lt;br/&gt;orthotropic materials in this manner and an alternative calibration routine has been&lt;br/&gt;devised and validated. The calibration routine provides the thermoelastic theory as a&lt;br/&gt;function of strain and permits a simplified calibration route as the laminate strains are&lt;br/&gt;the basis and can be measured in a straightforward manner.&lt;br/&gt;&lt;br/&gt;During damage propagation in laminated structures the specimen heats. The increase in&lt;br/&gt;temperature has a significant effect on the thermoelastic data and necessitates that the&lt;br/&gt;thermoelastic data be corrected to remove the effect of temperature from the data. A&lt;br/&gt;routine is developed that enables the correction of the thermoelastic data in a point-bypoint&lt;br/&gt;manner.&lt;br/&gt;&lt;br/&gt;By combining the strain calibration and temperature correction procedures a damage&lt;br/&gt;assessment methodology has been devised. The application of the methodology is&lt;br/&gt;demonstrated on glass / epoxy laminate specimens that are fatigue damaged and the&lt;br/&gt;damage state assessed using this method; the extent and type of damage is verified&lt;br/&gt;qualitatively using visual inspection methods. The work described is applicable to any&lt;br/&gt;orthotropic material. The effect of fatigue damage is assessed by periodically collecting&lt;br/&gt;thermoelastic data during the specimen life. This data is analysed using damage metrics&lt;br/&gt;based on the calibrated strain obtained from the TSA.&lt;br/&gt;&lt;br/&gt;The wider application of the TSA damage assessment methodology is considered by&lt;br/&gt;assessing the ability to locate subsurface damage. A complementary IR technique is used&lt;br/&gt;in conjunction with TSA known as Pulse Phase Thermography (PPT). Initial studies&lt;br/&gt;demonstrate the ability to resolve the spatial extents of subsurface damage. The purpose&lt;br/&gt;of this step is to guide TSA to areas of concern that can subsequently be assessed using&lt;br/&gt;the damage metrics to characterise the effect of damage on the residual life of the&lt;br/&gt;component.&lt;br/&gt;&lt;br/&gt;The strain calibration and temperature correction methods that enable TSA to be&lt;br/&gt;applied quantitatively to damaged composite materials have not been accomplished prior&lt;br/&gt;to this work. They provide novel methods by which TSA data can be assessed, and their&lt;br/&gt;application is not restricted to damage studies alone. The ability to temperature correct&lt;br/&gt;TSA data has been shown to be of vital importance if thermoelastic data is to be&lt;br/&gt;compared in a quantitative fashion. The strain calibration procedure presented will&lt;br/&gt;enable thermoelastic studies to be reported quantitatively and expand the application of&lt;br/&gt;TSA particularly in validation studies. The damage assessment methodology presented&lt;br/&gt;represents a step forward in the application of TSA to the damage assessment of&lt;br/&gt;composite materials.","abstract_has_math":false,"creators":["Emery, Trystan Ross"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Barton, Janice"],"committee_chairs":[],"committee_members":[],"year":2007,"date_issued":"2007-05","date_published":"2007-05","updated_at":"2026-07-24T04:35:50Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":null,"outbound_label":null,"outbound_source":null},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Barton, Janice"]},{"key":"dc:creator","label":"Author","values":["Emery, Trystan Ross"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2007-05"]},{"key":"dc:date.issued","label":"Date","values":["2007-05"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Fluid Structure Interactions Group (pre 2018 reorg)","School of Engineering Sciences"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Southampton"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://eprints.soton.ac.uk/51292/"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["doctoral"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Ph.D."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://eprints.soton.ac.uk/51292/1/emery_phd_thesis_07.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["A quantitative damage assessment methodology for composite materials has been<br/>achieved using Thermoelastic Stress Analysis (TSA). The TSA technique provides fullfield<br/>data which is collected in a non-contacting and real time manner. The damage<br/>assessment methodology proposed requires a means of calibrating and temperature<br/>correcting the thermoelastic signal; these are developed and presented in this thesis.<br/><br/>The thermoelastic theory for calibrating thermoelastic data from orthotropic bodies has<br/>traditionally been based on a stress formulation. There are difficulties in calibrating<br/>orthotropic materials in this manner and an alternative calibration routine has been<br/>devised and validated. The calibration routine provides the thermoelastic theory as a<br/>function of strain and permits a simplified calibration route as the laminate strains are<br/>the basis and can be measured in a straightforward manner.<br/><br/>During damage propagation in laminated structures the specimen heats. The increase in<br/>temperature has a significant effect on the thermoelastic data and necessitates that the<br/>thermoelastic data be corrected to remove the effect of temperature from the data. A<br/>routine is developed that enables the correction of the thermoelastic data in a point-bypoint<br/>manner.<br/><br/>By combining the strain calibration and temperature correction procedures a damage<br/>assessment methodology has been devised. The application of the methodology is<br/>demonstrated on glass / epoxy laminate specimens that are fatigue damaged and the<br/>damage state assessed using this method; the extent and type of damage is verified<br/>qualitatively using visual inspection methods. The work described is applicable to any<br/>orthotropic material. The effect of fatigue damage is assessed by periodically collecting<br/>thermoelastic data during the specimen life. This data is analysed using damage metrics<br/>based on the calibrated strain obtained from the TSA.<br/><br/>The wider application of the TSA damage assessment methodology is considered by<br/>assessing the ability to locate subsurface damage. A complementary IR technique is used<br/>in conjunction with TSA known as Pulse Phase Thermography (PPT). Initial studies<br/>demonstrate the ability to resolve the spatial extents of subsurface damage. The purpose<br/>of this step is to guide TSA to areas of concern that can subsequently be assessed using<br/>the damage metrics to characterise the effect of damage on the residual life of the<br/>component.<br/><br/>The strain calibration and temperature correction methods that enable TSA to be<br/>applied quantitatively to damaged composite materials have not been accomplished prior<br/>to this work. They provide novel methods by which TSA data can be assessed, and their<br/>application is not restricted to damage studies alone. The ability to temperature correct<br/>TSA data has been shown to be of vital importance if thermoelastic data is to be<br/>compared in a quantitative fashion. The strain calibration procedure presented will<br/>enable thermoelastic studies to be reported quantitatively and expand the application of<br/>TSA particularly in validation studies. The damage assessment methodology presented<br/>represents a step forward in the application of TSA to the damage assessment of<br/>composite materials."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Identification of damage in composite materials using thermoelastic stress analysis"]}]}],"canonical_facts":{"dc:contributor.advisor":["Barton, Janice"],"dc:creator":["Emery, Trystan Ross"],"dc:date":["2007-05"],"dc:date.issued":["2007-05"],"dc:description.abstract":["A quantitative damage assessment methodology for composite materials has been<br/>achieved using Thermoelastic Stress Analysis (TSA). The TSA technique provides fullfield<br/>data which is collected in a non-contacting and real time manner. The damage<br/>assessment methodology proposed requires a means of calibrating and temperature<br/>correcting the thermoelastic signal; these are developed and presented in this thesis.<br/><br/>The thermoelastic theory for calibrating thermoelastic data from orthotropic bodies has<br/>traditionally been based on a stress formulation. There are difficulties in calibrating<br/>orthotropic materials in this manner and an alternative calibration routine has been<br/>devised and validated. The calibration routine provides the thermoelastic theory as a<br/>function of strain and permits a simplified calibration route as the laminate strains are<br/>the basis and can be measured in a straightforward manner.<br/><br/>During damage propagation in laminated structures the specimen heats. The increase in<br/>temperature has a significant effect on the thermoelastic data and necessitates that the<br/>thermoelastic data be corrected to remove the effect of temperature from the data. A<br/>routine is developed that enables the correction of the thermoelastic data in a point-bypoint<br/>manner.<br/><br/>By combining the strain calibration and temperature correction procedures a damage<br/>assessment methodology has been devised. The application of the methodology is<br/>demonstrated on glass / epoxy laminate specimens that are fatigue damaged and the<br/>damage state assessed using this method; the extent and type of damage is verified<br/>qualitatively using visual inspection methods. The work described is applicable to any<br/>orthotropic material. The effect of fatigue damage is assessed by periodically collecting<br/>thermoelastic data during the specimen life. This data is analysed using damage metrics<br/>based on the calibrated strain obtained from the TSA.<br/><br/>The wider application of the TSA damage assessment methodology is considered by<br/>assessing the ability to locate subsurface damage. A complementary IR technique is used<br/>in conjunction with TSA known as Pulse Phase Thermography (PPT). Initial studies<br/>demonstrate the ability to resolve the spatial extents of subsurface damage. The purpose<br/>of this step is to guide TSA to areas of concern that can subsequently be assessed using<br/>the damage metrics to characterise the effect of damage on the residual life of the<br/>component.<br/><br/>The strain calibration and temperature correction methods that enable TSA to be<br/>applied quantitatively to damaged composite materials have not been accomplished prior<br/>to this work. They provide novel methods by which TSA data can be assessed, and their<br/>application is not restricted to damage studies alone. The ability to temperature correct<br/>TSA data has been shown to be of vital importance if thermoelastic data is to be<br/>compared in a quantitative fashion. The strain calibration procedure presented will<br/>enable thermoelastic studies to be reported quantitatively and expand the application of<br/>TSA particularly in validation studies. The damage assessment methodology presented<br/>represents a step forward in the application of TSA to the damage assessment of<br/>composite materials."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/51292/1/emery_phd_thesis_07.pdf"],"dc:publisher.department":["Fluid Structure Interactions Group (pre 2018 reorg)","School of Engineering Sciences"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/51292/"],"dc:title":["Identification of damage in composite materials using thermoelastic stress analysis"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:35:50Z"}