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Constellium is seeking an engineering intern to explore the impact of crystallographic texture orientation and its spatial distribution on the mechanical performance of aluminium alloys for automotive applications.
You will work in the C-TEC center in Grenoble (Voreppe) with a cross-functional team, handling EBSD, XRD measurements and advanced numerical modeling to improve recycled content’s effect on ductility and formability.
Microstructure Engineering and Mechanical Performance of Aluminium Alloys
Constellium is a world leader in the development and manufacture of high value-added aluminum products and solutions for a wide range of markets and applications, focusing in particular on aerospace, automotive and packaging. Constellium also has nearly 12,000 employees worldwide.We are committed to minimizing the environmental impact of our operations and improving the life cycle footprint of aluminum throughout the value chain.
In our company, safety is essential, it is one of our core values without compromise. Our Research and Technology Center, C-TEC Constellium Technology Center, based in Grenoble (Voreppe – 38) employs about 240 people.
By joining our company, you will discover a multicultural company (over 20 nationalities) which is committed to diversity and the well-being of its employees.
Your mission : Impact of crystallographic texture orientation and its spatial distribution on mechanical performance of Al alloys for automotive – modeling approach
Context
Due to its low density, aluminium (Al) is a key material for sustainability as it allows lightweighting. To decrease the CO2 emissions associated with its production, it is required to massively use recycled aluminium, meaning remelting Al scrap to make new ingots. However, switching from primary synthesis (bauxite reduction) to secondary synthesis (scrap melting) often leads to increasing impurities, the main one being iron in aluminium. Such contaminants may impact the performance of the current alloys in terms of ductility/formability,. It is the case for the hemming of automotive outer panels. The latter are bent around the inner part after stamping to ensure mechanical assembly. The project of the internship is linked to microstructure optimization, and especially crystallographic texture (meaning grain orientations and their spatial arrangement) to mitigate the detrimental effects of impurities. Thus, it is key to identify how grain microstructure could be tuned to maintain current product performance, while increasing recycled content. For that, Constellium C-TEC has integrated within its modeling tools an open-source software, Damask, allowing to model the mechanical behavior of grains aggregates under different loading types, including tension and bending. A model combining Finite Element Modeling (FEM) and Crystal Plasticity (Damask) has been developed. Up to now, the simulations are performed on a Representative Volume Element (RVE) of the material (hundreds of microns size) which is built with two constraints: mean grain size and grain orientations. No spatial position and size is imposed for each texture component.
Objective
The main topic of this internship is to model explicitly a spatial distribution of orientations, using experimental data coming from EBSD (Electron BackScatter Diffraction), DCT (Diffraction Contrast Tomography) and XRD (X-ray diffraction) measurements to understand how this spatial distribution can impact the mechanical response of the material, both the plastic anisotropy (yield surface) and the strain localization during loading. Tensile loading will be a first case of application, particularly relevant for surface defects appearing during stamping (roping). And the model will then be extended to the more complex case of bending.
The project has several components
The role of the intern will consist, after a first phase of training in our trades and tools, to do :
At C-TEC, the intern will be part of an R&D team of engineers with expertise in metallurgy and mechanics and will be in relation with partners handling the experimental aspects of the investigations. Interaction with an academic expert of crystal plasticity (SIMaP laboratory) is part of the project.
Profile
Education level: Bac+5 / M.Sc.
Mechanical Engineering - Physics or Material Science
Competencies & technical & soft skills requirement :