Plasticity and fracture of cast and SLM AlSi10Mg: High-throughput testing and modeling AITranslate
Abstract AITranslate
Highlights • Performed about 360 plasticity and fracture experiments using a robotic system. • Employed micro-CT and EBSD to characterize microstructural features. • SLM-made AlSi10Mg is stronger, but also more brittle than its cast counterpart. • Property variations are due to porosity in castings and build height effect in the SLM. • Stochastic plasticity and fracture models are determined. Both additively-manufactured and cast metals are known to exhibit stochastic mechanical properties at the macroscopic level. Using a robot-assisted mechanical testing system, more than 360 experiments are performed on flat specimens extracted from AlSi10Mg components that are either cast or made through laser powder bed fusion (LPBF), commonly known as selective laser melting (SLM). Aside from basic EBSD analysis of the respective microstructures, micro-computed tomography is performed revealing a significantly higher porosity and pore size for the cast material. The results from uniaxial tension experiments reveal a 10% higher yield strength (on average) and an about 20% higher ultimate tensile strength for the SLM made AlSi10Mg. The tracking of the specimen origin within the SLM component shows a clear location dependence of the observed hardening response on the build height. The shear and tension fracture experiments revealed a strong stress-state dependence and significantly higher fracture strains for the cast material as compared to its SLM-made counterpart. To facilitate the computer aided engineering of structures with additively-manufactured AlSiMg alloys, a build height dependent hardening model is proposed along with a probabilistic plasticity and fracture modeling framework. Graphical Download : Download high-res image (363KB) Download : Download full-size image
KeyWords AITranslate
Basic Information:
DOI:https://doi.org/10.1016/j.addma.2021.101998
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Highlights • Performed about 360 plasticity and fracture experiments using a robotic system. • Employed micro-CT and EBSD to characterize microstructural features. • SLM-made AlSi10Mg is stronger, but also more brittle than its cast counterpart. • Property variations are due to porosity in castings and build height effect in the SLM. • Stochastic plasticity and fracture models are determined. Both additively-manufactured and cast metals are known to exhibit stochastic mechanical properties at the macroscopic level. Using a robot-assisted mechanical testing system, more than 360 experiments are performed on flat specimens extracted from AlSi10Mg components that are either cast or made through laser powder bed fusion (LPBF), commonly known as selective laser melting (SLM). Aside from basic EBSD analysis of the respective microstructures, micro-computed tomography is performed revealing a significantly higher porosity and pore size for the cast material. The results from uniaxial tension experiments reveal a 10% higher yield strength (on average) and an about 20% higher ultimate tensile strength for the SLM made AlSi10Mg. The tracking of the specimen origin within the SLM component shows a clear location dependence of the observed hardening response on the build height. The shear and tension fracture experiments revealed a strong stress-state dependence and significantly higher fracture strains for the cast material as compared to its SLM-made counterpart. To facilitate the computer aided engineering of structures with additively-manufactured AlSiMg alloys, a build height dependent hardening model is proposed along with a probabilistic plasticity and fracture modeling framework. Graphical Download : Download high-res image (363KB) Download : Download full-size image
quote
| GB/T 7714-2015 | [1] Christian C. Roth, Thomas TancogneDejean, Dirk Mohr. Additive Manufacturing, 2021(43). DOI:10.1016/j.addma.2021.101998. |
| MLA | [1] Christian C. Roth, et al., Additive Manufacturing, no. 43, 2021, https://doi.org/10.1016/j.addma.2021.101998. |
| APA | [1] Christian C. Roth, Thomas TancogneDejean, & Dirk Mohr. (2021). Additive Manufacturing(43). https://doi.org/10.1016/j.addma.2021.101998 |
| IEEE | [1] Christian C. Roth, Thomas TancogneDejean, and Dirk Mohr, Additive Manufacturing, no. 43, 2021, doi: 10.1016/j.addma.2021.101998. keywords: {Powder bed fusion;Aluminum alloy;Automated largescale testing;Ductile failure} |
