Simultaneous Tomography and Diffraction Analysis of Creep Damage
Creep damage by void nucleation and growth limits the lifetime of components subjected to loading at high temperatures. We report a combined tomography and diffraction experiment using high-energy synchrotron radiation that permitted us to follow in situ void growth and microstructure development in...
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Published in | Science (American Association for the Advancement of Science) Vol. 308; no. 5718; pp. 92 - 95 |
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Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Washington, DC
American Association for the Advancement of Science
01.04.2005
The American Association for the Advancement of Science |
Subjects | |
Online Access | Get full text |
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Abstract | Creep damage by void nucleation and growth limits the lifetime of components subjected to loading at high temperatures. We report a combined tomography and diffraction experiment using high-energy synchrotron radiation that permitted us to follow in situ void growth and microstructure development in bulk samples. The results reveal that void growth versus time follows an exponential growth law. The formation of large void volumes coincides with texture evolution and dislocation density, reaching a steady state. Creep damage during a large proportion of sample creep life is homogeneous before damage localization occurs, which leads to rapid failure. The in situ determination of void evolution in bulk samples should allow for the assessment of creep damage in metallic materials and subsequently for lifetime predictions about samples and components that are subject to high-temperature loading. |
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AbstractList | Creep damage by void nucleation and growth limits the lifetime of components subjected to loading at high temperatures. We report a combined tomography and diffraction experiment using high-energy synchrotron radiation that permitted us to follow in situ void growth and microstructure development in bulk samples. The results reveal that void growth versus time follows an exponential growth law. The formation of large void volumes coincides with texture evolution and dislocation density, reaching a steady state. Creep damage during a large proportion of sample creep life is homogeneous before damage localization occurs, which leads to rapid failure. The in situ determination of void evolution in bulk samples should allow for the assessment of creep damage in metallic materials and subsequently for lifetime predictions about samples and components that are subject to high-temperature loading. Creep damage by void nucleation and growth limits the lifetime of components subjected to loading at high temperatures. We report a combined tomography and diffraction experiment using high-energy synchrotron radiation that permitted us to follow in situ void growth and microstructure development in bulk samples. The results reveal that void growth versus time follows an exponential growth law. The formation of large void volumes coincides with texture evolution and dislocation density, reaching a steady state. Creep damage during a large proportion of sample creep life is homogeneous before damage localization occurs, which leads to rapid failure. The in situ determination of void evolution in bulk samples should allow for the assessment of creep damage in metallic materials and subsequently for lifetime predictions about samples and components that are subject to high-temperature loading. [PUBLICATION ABSTRACT] Creep damage by void nucleation and growth limits the lifetime of components subjected to loading at high temperatures. We report a combined tomography and diffraction experiment using high-energy synchrotron radiation that permitted us to follow in situ void growth and microstructure development in bulk samples. The results reveal that void growth versus time follows an exponential growth law. The formation of large void volumes coincides with texture evolution and dislocation density, reaching a steady state. Creep damage during a large proportion of sample creep life is homogeneous before damage localization occurs, which leads to rapid failure. The in situ determination of void evolution in bulk samples should allow for the assessment of creep damage in metallic materials and subsequently for lifetime predictions about samples and components that are subject to high-temperature loading.Creep damage by void nucleation and growth limits the lifetime of components subjected to loading at high temperatures. We report a combined tomography and diffraction experiment using high-energy synchrotron radiation that permitted us to follow in situ void growth and microstructure development in bulk samples. The results reveal that void growth versus time follows an exponential growth law. The formation of large void volumes coincides with texture evolution and dislocation density, reaching a steady state. Creep damage during a large proportion of sample creep life is homogeneous before damage localization occurs, which leads to rapid failure. The in situ determination of void evolution in bulk samples should allow for the assessment of creep damage in metallic materials and subsequently for lifetime predictions about samples and components that are subject to high-temperature loading. |
Audience | Academic |
Author | Pernack, A Di Michiel, M Kottar, A Reimers, W Buslaps, T Pyzalla, A Kaminski, H Camin, B |
Author_xml | – sequence: 1 fullname: Pyzalla, A – sequence: 2 fullname: Camin, B – sequence: 3 fullname: Buslaps, T – sequence: 4 fullname: Di Michiel, M – sequence: 5 fullname: Kaminski, H – sequence: 6 fullname: Kottar, A – sequence: 7 fullname: Pernack, A – sequence: 8 fullname: Reimers, W |
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CODEN | SCIEAS |
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Keywords | Creep fracture Image processing In situ Tomography Time evolution XRD High temperature Microstructure Creep deformation |
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Snippet | Creep damage by void nucleation and growth limits the lifetime of components subjected to loading at high temperatures. We report a combined tomography and... |
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SubjectTerms | Algorithms Analysis Carbonates Condensed matter: structure, mechanical and thermal properties Creep Data Processing Deformation, plasticity, and creep Diffraction Electric generators Electricity Energy Exact sciences and technology Fossils Grain growth High temperature Maintenance and repair Materials Mathematics Mechanical and acoustical properties of condensed matter Mechanical properties of solids Metals creep microstructure Physics prediction Radiation damage Shales Storm damage Synchrotron radiation temperature texture Tomography Turbines Wave diffraction X-ray diffraction X-rays |
Title | Simultaneous Tomography and Diffraction Analysis of Creep Damage |
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