date: 2021-11-04T14:20:32Z pdf:PDFVersion: 1.7 pdf:docinfo:title: Simulation of the ' Precipitation Process with Interfacial Anisotropy Effects in Al-Cu Alloys xmp:CreatorTool: LaTeX with hyperref access_permission:can_print_degraded: true subject: The effects of anisotropic interfacial properties and heterogeneous elasticity on the growth and ripening of plate-like '-phase (Al2Cu) in Al-1.69 at.% Cu alloy are studied. Multi-phase-field simulations are conducted and discussed in comparison with aging experiments. The precipitate/matrix interface is considered to be anisotropic in terms of its energy and mobility. We find that the additional incorporation of an anisotropic interfacial mobility in conjunction with the elastic anisotropy result in substantially larger aspect ratios of the precipitates closer to the experimental observations. The anisotropy of the interfacial energy shows comparably small effect on the precipitate?s aspect ratio but changes the interface?s shape at the rim. The effect of the chemo-mechanical coupling, i.e., the composition dependence of the elastic constants, is studied as well. We show that the inverse ripening phenomenon, recently evidenced for ? precipitates in Al-Li alloys (Park et al. Sci. Rep. 2019, 9, 3981), does not establish for the ' precipitates. This is because of the anisotropic stress fields built around the ' precipitates, stemming from the precipitate?s shape and the interaction among different variants of the ' precipitate, that disturb the chemo-mechanical effects. These results show that the chemo-mechanical effects on the precipitation ripening strongly depend on the degree of sphericity and elastic isotropy of the precipitate and matrix phases. dc:format: application/pdf; version=1.7 pdf:docinfo:creator_tool: LaTeX with hyperref access_permission:fill_in_form: true pdf:encrypted: false dc:title: Simulation of the ' Precipitation Process with Interfacial Anisotropy Effects in Al-Cu Alloys modified: 2021-11-04T14:20:32Z cp:subject: The effects of anisotropic interfacial properties and heterogeneous elasticity on the growth and ripening of plate-like '-phase (Al2Cu) in Al-1.69 at.% Cu alloy are studied. Multi-phase-field simulations are conducted and discussed in comparison with aging experiments. The precipitate/matrix interface is considered to be anisotropic in terms of its energy and mobility. We find that the additional incorporation of an anisotropic interfacial mobility in conjunction with the elastic anisotropy result in substantially larger aspect ratios of the precipitates closer to the experimental observations. The anisotropy of the interfacial energy shows comparably small effect on the precipitate?s aspect ratio but changes the interface?s shape at the rim. The effect of the chemo-mechanical coupling, i.e., the composition dependence of the elastic constants, is studied as well. We show that the inverse ripening phenomenon, recently evidenced for ? precipitates in Al-Li alloys (Park et al. Sci. Rep. 2019, 9, 3981), does not establish for the ' precipitates. This is because of the anisotropic stress fields built around the ' precipitates, stemming from the precipitate?s shape and the interaction among different variants of the ' precipitate, that disturb the chemo-mechanical effects. These results show that the chemo-mechanical effects on the precipitation ripening strongly depend on the degree of sphericity and elastic isotropy of the precipitate and matrix phases. pdf:docinfo:subject: The effects of anisotropic interfacial properties and heterogeneous elasticity on the growth and ripening of plate-like '-phase (Al2Cu) in Al-1.69 at.% Cu alloy are studied. Multi-phase-field simulations are conducted and discussed in comparison with aging experiments. The precipitate/matrix interface is considered to be anisotropic in terms of its energy and mobility. We find that the additional incorporation of an anisotropic interfacial mobility in conjunction with the elastic anisotropy result in substantially larger aspect ratios of the precipitates closer to the experimental observations. The anisotropy of the interfacial energy shows comparably small effect on the precipitate?s aspect ratio but changes the interface?s shape at the rim. The effect of the chemo-mechanical coupling, i.e., the composition dependence of the elastic constants, is studied as well. We show that the inverse ripening phenomenon, recently evidenced for ? precipitates in Al-Li alloys (Park et al. Sci. Rep. 2019, 9, 3981), does not establish for the ' precipitates. This is because of the anisotropic stress fields built around the ' precipitates, stemming from the precipitate?s shape and the interaction among different variants of the ' precipitate, that disturb the chemo-mechanical effects. These results show that the chemo-mechanical effects on the precipitation ripening strongly depend on the degree of sphericity and elastic isotropy of the precipitate and matrix phases. pdf:docinfo:creator: Na Ta, Muhammad Umer Bilal, Ines Häusler, Alaukik Saxena, Yueh-Yu Lin, Felix Schleifer, Michael Fleck, Uwe Glatzel, Birgit Skrotzki and Reza Darvishi Kamachali meta:author: Na Ta meta:creation-date: 2021-03-08T15:44:55Z created: 2021-03-08T15:44:55Z access_permission:extract_for_accessibility: true Creation-Date: 2021-03-08T15:44:55Z Author: Na Ta producer: pdfTeX-1.40.21 pdf:docinfo:producer: pdfTeX-1.40.21 pdf:unmappedUnicodeCharsPerPage: 24 dc:description: The effects of anisotropic interfacial properties and heterogeneous elasticity on the growth and ripening of plate-like '-phase (Al2Cu) in Al-1.69 at.% Cu alloy are studied. Multi-phase-field simulations are conducted and discussed in comparison with aging experiments. The precipitate/matrix interface is considered to be anisotropic in terms of its energy and mobility. We find that the additional incorporation of an anisotropic interfacial mobility in conjunction with the elastic anisotropy result in substantially larger aspect ratios of the precipitates closer to the experimental observations. The anisotropy of the interfacial energy shows comparably small effect on the precipitate?s aspect ratio but changes the interface?s shape at the rim. The effect of the chemo-mechanical coupling, i.e., the composition dependence of the elastic constants, is studied as well. We show that the inverse ripening phenomenon, recently evidenced for ? precipitates in Al-Li alloys (Park et al. Sci. Rep. 2019, 9, 3981), does not establish for the ' precipitates. This is because of the anisotropic stress fields built around the ' precipitates, stemming from the precipitate?s shape and the interaction among different variants of the ' precipitate, that disturb the chemo-mechanical effects. These results show that the chemo-mechanical effects on the precipitation ripening strongly depend on the degree of sphericity and elastic isotropy of the precipitate and matrix phases. Keywords: phase-field simulation; interfacial anisotropy; chemo-mechanical coupling; precipitation; elasticity; '-(Al2Cu) precipitate phase; aging access_permission:modify_annotations: true dc:creator: Na Ta description: The effects of anisotropic interfacial properties and heterogeneous elasticity on the growth and ripening of plate-like '-phase (Al2Cu) in Al-1.69 at.% Cu alloy are studied. Multi-phase-field simulations are conducted and discussed in comparison with aging experiments. The precipitate/matrix interface is considered to be anisotropic in terms of its energy and mobility. We find that the additional incorporation of an anisotropic interfacial mobility in conjunction with the elastic anisotropy result in substantially larger aspect ratios of the precipitates closer to the experimental observations. The anisotropy of the interfacial energy shows comparably small effect on the precipitate?s aspect ratio but changes the interface?s shape at the rim. The effect of the chemo-mechanical coupling, i.e., the composition dependence of the elastic constants, is studied as well. We show that the inverse ripening phenomenon, recently evidenced for ? precipitates in Al-Li alloys (Park et al. Sci. Rep. 2019, 9, 3981), does not establish for the ' precipitates. This is because of the anisotropic stress fields built around the ' precipitates, stemming from the precipitate?s shape and the interaction among different variants of the ' precipitate, that disturb the chemo-mechanical effects. These results show that the chemo-mechanical effects on the precipitation ripening strongly depend on the degree of sphericity and elastic isotropy of the precipitate and matrix phases. dcterms:created: 2021-03-08T15:44:55Z Last-Modified: 2021-11-04T14:20:32Z dcterms:modified: 2021-11-04T14:20:32Z title: Simulation of the ' Precipitation Process with Interfacial Anisotropy Effects in Al-Cu Alloys xmpMM:DocumentID: uuid:99251979-eb45-4e09-9ffe-f11fc6c5c33b Last-Save-Date: 2021-11-04T14:20:32Z pdf:docinfo:keywords: phase-field simulation; interfacial anisotropy; chemo-mechanical coupling; precipitation; elasticity; '-(Al2Cu) precipitate phase; aging pdf:docinfo:modified: 2021-11-04T14:20:32Z meta:save-date: 2021-11-04T14:20:32Z Content-Type: application/pdf X-Parsed-By: org.apache.tika.parser.DefaultParser creator: Na Ta dc:subject: phase-field simulation; interfacial anisotropy; chemo-mechanical coupling; precipitation; elasticity; '-(Al2Cu) precipitate phase; aging access_permission:assemble_document: true xmpTPg:NPages: 18 pdf:charsPerPage: 4107 access_permission:extract_content: true access_permission:can_print: true meta:keyword: phase-field simulation; interfacial anisotropy; chemo-mechanical coupling; precipitation; elasticity; '-(Al2Cu) precipitate phase; aging access_permission:can_modify: true pdf:docinfo:created: 2021-03-08T15:44:55Z