Finite element validation dataset of additively manufactured equal angle section stub columns
This article provides experimental and numerical data pertaining to the compressive testing and model calibration for a novel design of 316 L stainless steel equal angle sections (EAS) produced through additive manufacturing, wherein each leg of the EAS is replaced by a wavy surface resembling high...
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| Published in | Data in brief Vol. 54; p. 110318 |
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| Main Authors | , , |
| Format | Journal Article |
| Language | English |
| Published |
Netherlands
Elsevier Inc
01.06.2024
Elsevier |
| Subjects | |
| Online Access | Get full text |
| ISSN | 2352-3409 2352-3409 |
| DOI | 10.1016/j.dib.2024.110318 |
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| Abstract | This article provides experimental and numerical data pertaining to the compressive testing and model calibration for a novel design of 316 L stainless steel equal angle sections (EAS) produced through additive manufacturing, wherein each leg of the EAS is replaced by a wavy surface resembling high order buckling modes of the flat plate. The experimental data were acquired from testing 9 unique stub column sections, in all combinations of 3 different thicknesses and 2 wave magnitudes, with a control section provided for each thickness. The provided numerical data was produced to calibrate a finite element model of the tested sections by varying imperfection magnitudes, and selected values fit strongly to the physical tests. Both physical and numerical tests data herein are given in two parts each, one summary spreadsheet describing section geometry and peak load, and one more detailed spreadsheet providing load-displacement history for all physical sections and selected finite element sections. This data provides insight into finite element analysis of additively manufactured stainless steel sections, making it valuable for the validation of numerical models and stainless steel material behaviour. |
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| AbstractList | This article provides experimental and numerical data pertaining to the compressive testing and model calibration for a novel design of 316 L stainless steel equal angle sections (EAS) produced through additive manufacturing, wherein each leg of the EAS is replaced by a wavy surface resembling high order buckling modes of the flat plate. The experimental data were acquired from testing 9 unique stub column sections, in all combinations of 3 different thicknesses and 2 wave magnitudes, with a control section provided for each thickness. The provided numerical data was produced to calibrate a finite element model of the tested sections by varying imperfection magnitudes, and selected values fit strongly to the physical tests. Both physical and numerical tests data herein are given in two parts each, one summary spreadsheet describing section geometry and peak load, and one more detailed spreadsheet providing load-displacement history for all physical sections and selected finite element sections. This data provides insight into finite element analysis of additively manufactured stainless steel sections, making it valuable for the validation of numerical models and stainless steel material behaviour. This article provides experimental and numerical data pertaining to the compressive testing and model calibration for a novel design of 316 L stainless steel equal angle sections (EAS) produced through additive manufacturing, wherein each leg of the EAS is replaced by a wavy surface resembling high order buckling modes of the flat plate. The experimental data were acquired from testing 9 unique stub column sections, in all combinations of 3 different thicknesses and 2 wave magnitudes, with a control section provided for each thickness. The provided numerical data was produced to calibrate a finite element model of the tested sections by varying imperfection magnitudes, and selected values fit strongly to the physical tests. Both physical and numerical tests data herein are given in two parts each, one summary spreadsheet describing section geometry and peak load, and one more detailed spreadsheet providing load-displacement history for all physical sections and selected finite element sections. This data provides insight into finite element analysis of additively manufactured stainless steel sections, making it valuable for the validation of numerical models and stainless steel material behaviour.This article provides experimental and numerical data pertaining to the compressive testing and model calibration for a novel design of 316 L stainless steel equal angle sections (EAS) produced through additive manufacturing, wherein each leg of the EAS is replaced by a wavy surface resembling high order buckling modes of the flat plate. The experimental data were acquired from testing 9 unique stub column sections, in all combinations of 3 different thicknesses and 2 wave magnitudes, with a control section provided for each thickness. The provided numerical data was produced to calibrate a finite element model of the tested sections by varying imperfection magnitudes, and selected values fit strongly to the physical tests. Both physical and numerical tests data herein are given in two parts each, one summary spreadsheet describing section geometry and peak load, and one more detailed spreadsheet providing load-displacement history for all physical sections and selected finite element sections. This data provides insight into finite element analysis of additively manufactured stainless steel sections, making it valuable for the validation of numerical models and stainless steel material behaviour. |
| ArticleNumber | 110318 |
| Author | Chater, Ben Evernden, Mark Wang, Jie |
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| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/38559818$$D View this record in MEDLINE/PubMed |
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| Keywords | Local buckling Additive manufacturing Finite element analysis GMNIA Stainless steel |
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| References | Toffolon, Müller, Niko, Taras (bib0005) 2019 Chater, Wang, Evernden, Pan (bib0003) 2023 Wang, Evernden, Chater, Pan (bib0001) 2021 Hradil, Talja, Real, Mirambell, Rossi (bib0002) 2013; 63 (bib0004) 2009 Pan, Wang, Evernden, Tian, Chater (bib0006) 2023; 293 Pan (10.1016/j.dib.2024.110318_bib0006) 2023; 293 (10.1016/j.dib.2024.110318_bib0004) 2009 Toffolon (10.1016/j.dib.2024.110318_bib0005) 2019 Hradil (10.1016/j.dib.2024.110318_bib0002) 2013; 63 Wang (10.1016/j.dib.2024.110318_bib0001) 2021 Chater (10.1016/j.dib.2024.110318_bib0003) 2023 |
| References_xml | – year: 2023 ident: bib0003 article-title: Experimental local stability of 3D-printed stub columns stiffened by sinusoidal waves publication-title: Proceedings of Eurosteel 2023 – year: 2009 ident: bib0004 article-title: ABAQUS Analysis User's Manual, Version 6.6 – year: 2019 ident: bib0005 article-title: Experimental and numerical analysis of the local and interactive buckling behaviour of hollow sections publication-title: Proceedings of the 14th Nordic Steel Construction Conference – volume: 63 start-page: 63 year: 2013 end-page: 69 ident: bib0002 article-title: Generalized multistage mechanical model for nonlinear metallic materials publication-title: Thin-Walled Struct. – year: 2021 ident: bib0001 article-title: Printing imperfections – geometric patterns to improve resistances of 3D printed steel plates publication-title: Proceedings of Eurosteel 2021 – volume: 293 year: 2023 ident: bib0006 article-title: Experimental and numerical study of 3D printed steel plates stiffened by sinusoidal waves for enhanced stability publication-title: Eng. Struct. – year: 2023 ident: 10.1016/j.dib.2024.110318_bib0003 article-title: Experimental local stability of 3D-printed stub columns stiffened by sinusoidal waves – volume: 293 year: 2023 ident: 10.1016/j.dib.2024.110318_bib0006 article-title: Experimental and numerical study of 3D printed steel plates stiffened by sinusoidal waves for enhanced stability publication-title: Eng. Struct. doi: 10.1016/j.engstruct.2023.116577 – year: 2009 ident: 10.1016/j.dib.2024.110318_bib0004 – year: 2019 ident: 10.1016/j.dib.2024.110318_bib0005 article-title: Experimental and numerical analysis of the local and interactive buckling behaviour of hollow sections – year: 2021 ident: 10.1016/j.dib.2024.110318_bib0001 article-title: Printing imperfections – geometric patterns to improve resistances of 3D printed steel plates – volume: 63 start-page: 63 year: 2013 ident: 10.1016/j.dib.2024.110318_bib0002 article-title: Generalized multistage mechanical model for nonlinear metallic materials publication-title: Thin-Walled Struct. doi: 10.1016/j.tws.2012.10.006 |
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| SubjectTerms | Additive manufacturing data collection Finite element analysis geometry GMNIA Local buckling Stainless steel |
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| Title | Finite element validation dataset of additively manufactured equal angle section stub columns |
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