H2020Индивидуална стипендия2016–2018

MIGRATE · Cosserat phase field modelling and simulation of viscoplasticity induced grain boundary migration and recrystallisation in metallic polycrystals

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2016-11-01 → 2018-10-31
Финансиране от ЕС
173 076 €
Участници
1
Схема
MSCA-IF-EF-ST

Линиите свързват координатора с партньорите.

Накратко на български

Металите и техните кристални структури се анализират чрез компютърни симулации, за да се разбере как се променят зърната в материала при нагряване и деформация. Това помага за по-доброто контролиране на свойствата на металните сплави при тяхното производство.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Cosserat phase field modelling and simulation of viscoplasticity induced grain boundary migration and recrystallisation in metallic polycrystals

Metals and metallic alloys are so important to humans that there are even epochs in history named after them (Iron Age, Bronze Age). Long before modern powerful microscopy, skilled metal workers knew how to manipulate the microstructure and thereby the behavior of metals. Imagine the blacksmith, alternately heating the sword in the fire, deforming it and then quenching it in a barrel of water. These principles for manufacturing largely persist to this day. We now know that the atoms in metals arrange themselves in regular, crystalline structures.During solidification a microstructure is formed of highly ordered crystalline grains, separated by grain boundaries that are a few layers of atoms thick. The macoscopic behavior of a metal can be manipulated by changing the microstructure and the microstructure can be changed by deforming, heating and cooling the material, like the blacksmith did. This is referred to as thermomechanical processing and usually consists of at least two steps. heavily deform the metal beyond the elastic limit (the deformation is permanent even on release of load) and then heat it. During the deformation, energy is stored in the microstructure through the production and accumulation of atomistic defects. When the metal is heated, new grains free of defects nucleate and grow and after a certain time the old microstructure may be entirely replaced. In this digital age, numerical computations is an important tool which complements and sometimes replaces experimental investigations. Simulations may for instance allow one to study what is going on inside a material or crash hundreds of digital car prototypes in rather than actually building them and crashing them in the lab. In order for the simulation models to be useful, they need to be robust and efficient and of course, most importantly, must faithfully represent the real phenomena they are intended to model. In the case of metals, the underlying physics is very rich. Much of the macroscopic behavior can be explained by the presence of atomistic defects in the crystal lattice. On the other hand, metals are often used in technological applications on a large scale (turbine blades, car, boat hull…) It is therefore not surprising that metals are studied on many scales and in many different research fields. Formicrostructure evolution during manufacturing, the scale of interest is the microscopic (micrometer or possibly nanometer) scale. Although information from the atomistic scale is useful and should be incorporated, atomistic simulations require too much in terms of computational resources to be feasible for modeling microstructure evolution in a polycrystal. Instead, the collective behavior of a large number of individual defects can be used to describe how energy is stored in the grain structure. Models that deal with microstructure evolution in metals and metallic alloys undergoing thermomechanical processing is a topic of extensive research. Existing approaches tend to combine different models for the three main phenomena occuring : deformation, nucleation and grain growth. The separate models may often require using separate numerical methods, including discretization, for computations. In addition, an overall thermodynamic framework is not applied. With this project, the aim is to establish a unified model, formulated to be thermodynamically consistent, which can take into consideration both deformation and grain boundary migration. In addition, such a model should contain the possibility to account for nucleation without needing to resort to artificially introduce nuclei (new grains) in the structure. The activities and outcome of the project can be summarized in the following research objectives: 1. Formulate a modeling framework combining, in a unified manner, methods that describe microstructure evolution through deformation and grain boundary migration due to stored energy in the structure 2. A numerical platform enabling simulation of grain deformation and grain boundary motion under load at high temperature. 3. Calibration of the model using data available in the literature for some pure metal(s). 4. Validation of the model by simulation of realistic examples and comparison with full-field experimental measurements.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The microstructure evolution of metallic alloys undergoing thermomechanical loads involves strain hardening, dynamic recovery, recrystallisation and grain growth. Predicting such phenomena is crucial for the control and optimisation of the mechanical properties of final components. Phase field approaches are used to simulate the change in grain morphology, growth and coalescence induced by grain boundary and stored energies due to prior viscoplastic deformation. On the other hand, continuum crystal viscoplasticity theory is well-established for finite element simulations of the deformation of polycrystalline aggregates. Currently, phase field and crystal plasticity models are used separately or successively: the field of stored elastoplastic energy computed from the crystal plasticity model serves as the initial energy distribution in the phase field simulation of subsequent grain morphology evolution. The objective of the project is to strongly couple both approaches so as to simulate dynamic grain morphology evolution during deformation processes. Each theory, i.e. the phase field model and the continuum crystal plasticity approach, possesses an evolution equation for the crystal lattice orientation. An essential driving force for lattice rotation evolution is the orientation gradient, the lattice curvature, which is the primary constitutive variable of the Cosserat continuum theory. The Cosserat theory offers a unique way of reconciling both approaches. The results of finite element simulations based on this new theory will be compared to experimental results, namely lattice orientation maps and strain field measurements, available for aluminium and copper polycrystals. The proposed model is the missing link between the physical description of grain boundary motion and macroscopic recrystallisation models. Such a paradigm has not yet been proposed and will open new ways for the understanding of elementary recrystallisation mechanisms in polycrystals.

Оригинален текст от CORDIS (на английски).

Участници

  • ECOLE NATIONALE SUPERIEURE DES MINES DE PARIS · ParisКоординаторФранция

Връзки

Данни: CORDIS, © Европейски съюз