{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:64860"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:64860","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Micromechanical studies and modelling of toughness in high strength aluminium alloys","abstract":"In this thesis the influence of microstructure on fracture toughness is investigated for two<br/>different medium/high strength Al-alloys for aerospace application. In weldable AA6156<br/>(Al-Mg-Si-Cu) alloy sheet, the quench sensitivity in toughness is assessed via enhanced<br/>Kahn tear tests. Toughness was seen to be reduced for both 60°C water quenched and air<br/>cooled materials cf. 20°C water quench material. Fractography via scanning electron<br/>microscopy (SEM) and synchrotron radiation computed tomography (SRCT), as well as<br/>Differential Scanning Calorimetry (DSC) and Transmission Electron Microscopy (TEM)<br/>studies, have clarified the mechanisms of the quench sensitivity with respect to toughness.<br/>Both the coverage of grain boundary decoration and precipitate free zone (PFZ) width<br/>increase with reduced quench rates. The failure morphology of the air cooled material<br/>appears consistent with classical intergranular ductile failure. Coarse voiding and shear<br/>decohesion was prevalent in 20°C water quenched material (depending on local<br/>triaxiality), whilst the 60°C water quenched material showed a mixture of transgranular<br/>and intergranular fracture modes. The experimental toughness trends are compared to<br/>models in the literature and a simple new model is suggested.<br/>Fracture toughness anisotropy of AA2139 (Al-Cu-Mg), a candidate alloy for age forming,<br/>in T351 and T8 conditions has been investigated via mechanical testing of smooth and<br/>notched specimens of different geometries, loaded in the rolling direction (L) or in the<br/>transverse direction (T). Fracture mechanisms are again investigated via SEM and SRCT.<br/>Fracture toughness is seen to be anisotropic for both heat treatment conditions tested, but<br/>is substantially reduced for the T8 condition compared to the T351. Contributions to<br/>failure behaviour have been identified with: (i) anisotropic initial void shape and growth,<br/>(ii) plastic behaviour, including isotropic/kinematic hardening and plastic anisotropy, and<br/>(iii) nucleation at a 2nd population of 2nd phase particles leading to coalescence via narrow<br/>crack regions. SRCT analysis of arrested cracks revealed alignment of voids in the crack<br/>during propagation in the rolling direction, resulting in shorter intervoid ligaments than for<br/>crack propagation in the transverse direction. Coalescence through shear decohesion in the<br/>crack initiation and propagation region was found indicating the necessity to investigate<br/>and account for this mechanism. A model based in part on the Gurson-Tvergaard-<br/>Needleman approach is constructed to describe and predict deformation behaviour, crack<br/>propagation and, in particular, toughness anisotropy. Model parameters are fitted using<br/>microstructural data and data on deformation and crack propagation for a range of small<br/>test samples. The model accounts for the material features found in the experimental study<br/>and its transferability has been shown by simulating tests of large M(T) samples showing<br/>strong fracture toughness anisotropy. A parametric study shows that nucleation of small<br/>voids at different strains for different loading directions is crucial for a correct model of<br/>toughness anisotropy; the combined effects of kinematic hardening and void growth<br/>anisotropy can not fully describe fracture toughness anisotropy.","abstract_html":"In this thesis the influence of microstructure on fracture toughness is investigated for two&lt;br/&gt;different medium/high strength Al-alloys for aerospace application. In weldable AA6156&lt;br/&gt;(Al-Mg-Si-Cu) alloy sheet, the quench sensitivity in toughness is assessed via enhanced&lt;br/&gt;Kahn tear tests. Toughness was seen to be reduced for both 60°C water quenched and air&lt;br/&gt;cooled materials cf. 20°C water quench material. Fractography via scanning electron&lt;br/&gt;microscopy (SEM) and synchrotron radiation computed tomography (SRCT), as well as&lt;br/&gt;Differential Scanning Calorimetry (DSC) and Transmission Electron Microscopy (TEM)&lt;br/&gt;studies, have clarified the mechanisms of the quench sensitivity with respect to toughness.&lt;br/&gt;Both the coverage of grain boundary decoration and precipitate free zone (PFZ) width&lt;br/&gt;increase with reduced quench rates. The failure morphology of the air cooled material&lt;br/&gt;appears consistent with classical intergranular ductile failure. Coarse voiding and shear&lt;br/&gt;decohesion was prevalent in 20°C water quenched material (depending on local&lt;br/&gt;triaxiality), whilst the 60°C water quenched material showed a mixture of transgranular&lt;br/&gt;and intergranular fracture modes. The experimental toughness trends are compared to&lt;br/&gt;models in the literature and a simple new model is suggested.&lt;br/&gt;Fracture toughness anisotropy of AA2139 (Al-Cu-Mg), a candidate alloy for age forming,&lt;br/&gt;in T351 and T8 conditions has been investigated via mechanical testing of smooth and&lt;br/&gt;notched specimens of different geometries, loaded in the rolling direction (L) or in the&lt;br/&gt;transverse direction (T). Fracture mechanisms are again investigated via SEM and SRCT.&lt;br/&gt;Fracture toughness is seen to be anisotropic for both heat treatment conditions tested, but&lt;br/&gt;is substantially reduced for the T8 condition compared to the T351. Contributions to&lt;br/&gt;failure behaviour have been identified with: (i) anisotropic initial void shape and growth,&lt;br/&gt;(ii) plastic behaviour, including isotropic/kinematic hardening and plastic anisotropy, and&lt;br/&gt;(iii) nucleation at a 2nd population of 2nd phase particles leading to coalescence via narrow&lt;br/&gt;crack regions. SRCT analysis of arrested cracks revealed alignment of voids in the crack&lt;br/&gt;during propagation in the rolling direction, resulting in shorter intervoid ligaments than for&lt;br/&gt;crack propagation in the transverse direction. Coalescence through shear decohesion in the&lt;br/&gt;crack initiation and propagation region was found indicating the necessity to investigate&lt;br/&gt;and account for this mechanism. A model based in part on the Gurson-Tvergaard-&lt;br/&gt;Needleman approach is constructed to describe and predict deformation behaviour, crack&lt;br/&gt;propagation and, in particular, toughness anisotropy. Model parameters are fitted using&lt;br/&gt;microstructural data and data on deformation and crack propagation for a range of small&lt;br/&gt;test samples. The model accounts for the material features found in the experimental study&lt;br/&gt;and its transferability has been shown by simulating tests of large M(T) samples showing&lt;br/&gt;strong fracture toughness anisotropy. A parametric study shows that nucleation of small&lt;br/&gt;voids at different strains for different loading directions is crucial for a correct model of&lt;br/&gt;toughness anisotropy; the combined effects of kinematic hardening and void growth&lt;br/&gt;anisotropy can not fully describe fracture toughness anisotropy.","abstract_has_math":false,"creators":["Morgeneyer, Thilo F"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Sinclair, Ian","Starink, Marco"],"committee_chairs":[],"committee_members":[],"year":2008,"date_issued":"2008-04","date_published":"2008-04","updated_at":"2026-07-24T04:35:54Z","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":["Sinclair, Ian","Starink, Marco"]},{"key":"dc:creator","label":"Author","values":["Morgeneyer, Thilo F"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2008-04"]},{"key":"dc:date.issued","label":"Date","values":["2008-04"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Engineering Mats & Surface Engineerg Gp (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/64860/"]},{"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/64860/1/Morgeneyer_PhD_Thesis.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["In this thesis the influence of microstructure on fracture toughness is investigated for two<br/>different medium/high strength Al-alloys for aerospace application. In weldable AA6156<br/>(Al-Mg-Si-Cu) alloy sheet, the quench sensitivity in toughness is assessed via enhanced<br/>Kahn tear tests. Toughness was seen to be reduced for both 60°C water quenched and air<br/>cooled materials cf. 20°C water quench material. Fractography via scanning electron<br/>microscopy (SEM) and synchrotron radiation computed tomography (SRCT), as well as<br/>Differential Scanning Calorimetry (DSC) and Transmission Electron Microscopy (TEM)<br/>studies, have clarified the mechanisms of the quench sensitivity with respect to toughness.<br/>Both the coverage of grain boundary decoration and precipitate free zone (PFZ) width<br/>increase with reduced quench rates. The failure morphology of the air cooled material<br/>appears consistent with classical intergranular ductile failure. Coarse voiding and shear<br/>decohesion was prevalent in 20°C water quenched material (depending on local<br/>triaxiality), whilst the 60°C water quenched material showed a mixture of transgranular<br/>and intergranular fracture modes. The experimental toughness trends are compared to<br/>models in the literature and a simple new model is suggested.<br/>Fracture toughness anisotropy of AA2139 (Al-Cu-Mg), a candidate alloy for age forming,<br/>in T351 and T8 conditions has been investigated via mechanical testing of smooth and<br/>notched specimens of different geometries, loaded in the rolling direction (L) or in the<br/>transverse direction (T). Fracture mechanisms are again investigated via SEM and SRCT.<br/>Fracture toughness is seen to be anisotropic for both heat treatment conditions tested, but<br/>is substantially reduced for the T8 condition compared to the T351. Contributions to<br/>failure behaviour have been identified with: (i) anisotropic initial void shape and growth,<br/>(ii) plastic behaviour, including isotropic/kinematic hardening and plastic anisotropy, and<br/>(iii) nucleation at a 2nd population of 2nd phase particles leading to coalescence via narrow<br/>crack regions. SRCT analysis of arrested cracks revealed alignment of voids in the crack<br/>during propagation in the rolling direction, resulting in shorter intervoid ligaments than for<br/>crack propagation in the transverse direction. Coalescence through shear decohesion in the<br/>crack initiation and propagation region was found indicating the necessity to investigate<br/>and account for this mechanism. A model based in part on the Gurson-Tvergaard-<br/>Needleman approach is constructed to describe and predict deformation behaviour, crack<br/>propagation and, in particular, toughness anisotropy. Model parameters are fitted using<br/>microstructural data and data on deformation and crack propagation for a range of small<br/>test samples. The model accounts for the material features found in the experimental study<br/>and its transferability has been shown by simulating tests of large M(T) samples showing<br/>strong fracture toughness anisotropy. A parametric study shows that nucleation of small<br/>voids at different strains for different loading directions is crucial for a correct model of<br/>toughness anisotropy; the combined effects of kinematic hardening and void growth<br/>anisotropy can not fully describe fracture toughness anisotropy."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Micromechanical studies and modelling of toughness in high strength aluminium alloys"]}]}],"canonical_facts":{"dc:contributor.advisor":["Sinclair, Ian","Starink, Marco"],"dc:creator":["Morgeneyer, Thilo F"],"dc:date":["2008-04"],"dc:date.issued":["2008-04"],"dc:description.abstract":["In this thesis the influence of microstructure on fracture toughness is investigated for two<br/>different medium/high strength Al-alloys for aerospace application. In weldable AA6156<br/>(Al-Mg-Si-Cu) alloy sheet, the quench sensitivity in toughness is assessed via enhanced<br/>Kahn tear tests. Toughness was seen to be reduced for both 60°C water quenched and air<br/>cooled materials cf. 20°C water quench material. Fractography via scanning electron<br/>microscopy (SEM) and synchrotron radiation computed tomography (SRCT), as well as<br/>Differential Scanning Calorimetry (DSC) and Transmission Electron Microscopy (TEM)<br/>studies, have clarified the mechanisms of the quench sensitivity with respect to toughness.<br/>Both the coverage of grain boundary decoration and precipitate free zone (PFZ) width<br/>increase with reduced quench rates. The failure morphology of the air cooled material<br/>appears consistent with classical intergranular ductile failure. Coarse voiding and shear<br/>decohesion was prevalent in 20°C water quenched material (depending on local<br/>triaxiality), whilst the 60°C water quenched material showed a mixture of transgranular<br/>and intergranular fracture modes. The experimental toughness trends are compared to<br/>models in the literature and a simple new model is suggested.<br/>Fracture toughness anisotropy of AA2139 (Al-Cu-Mg), a candidate alloy for age forming,<br/>in T351 and T8 conditions has been investigated via mechanical testing of smooth and<br/>notched specimens of different geometries, loaded in the rolling direction (L) or in the<br/>transverse direction (T). Fracture mechanisms are again investigated via SEM and SRCT.<br/>Fracture toughness is seen to be anisotropic for both heat treatment conditions tested, but<br/>is substantially reduced for the T8 condition compared to the T351. Contributions to<br/>failure behaviour have been identified with: (i) anisotropic initial void shape and growth,<br/>(ii) plastic behaviour, including isotropic/kinematic hardening and plastic anisotropy, and<br/>(iii) nucleation at a 2nd population of 2nd phase particles leading to coalescence via narrow<br/>crack regions. SRCT analysis of arrested cracks revealed alignment of voids in the crack<br/>during propagation in the rolling direction, resulting in shorter intervoid ligaments than for<br/>crack propagation in the transverse direction. Coalescence through shear decohesion in the<br/>crack initiation and propagation region was found indicating the necessity to investigate<br/>and account for this mechanism. A model based in part on the Gurson-Tvergaard-<br/>Needleman approach is constructed to describe and predict deformation behaviour, crack<br/>propagation and, in particular, toughness anisotropy. Model parameters are fitted using<br/>microstructural data and data on deformation and crack propagation for a range of small<br/>test samples. The model accounts for the material features found in the experimental study<br/>and its transferability has been shown by simulating tests of large M(T) samples showing<br/>strong fracture toughness anisotropy. A parametric study shows that nucleation of small<br/>voids at different strains for different loading directions is crucial for a correct model of<br/>toughness anisotropy; the combined effects of kinematic hardening and void growth<br/>anisotropy can not fully describe fracture toughness anisotropy."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/64860/1/Morgeneyer_PhD_Thesis.pdf"],"dc:publisher.department":["Engineering Mats & Surface Engineerg Gp (pre 2018 reorg)","School of Engineering Sciences"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/64860/"],"dc:title":["Micromechanical studies and modelling of toughness in high strength aluminium alloys"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:35:54Z"}