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Featured researches published by Stefan Prüger.


VII European Congress on Computational Methods in Applied Sciences and Engineering | 2016

MODELING OF LOW-ALLOYED TRIP-STEELS BASED ON DIRECT MICRO-MACRO SIMULATIONS

Stefan Prüger; Ashutosh Gandhi; Daniel Balzani

Low-alloyed TRIP steels are often used in the automotive industry due to their favorable mechanical properties such as high ductility and strength and their moderate production costs. These steels possess a heterogeneous multiphase microstructure, initially consisting of ferrite, bainite and retained austenite which is responsible for the mechanical properties. Upon deformation, a diffusionless, stress-induced, martensitic phase transformation from austenite to martensite is observed, enhancing ductility and strength. We focus on multi-scale methods in the sense of FE to describe the macroscopic behavior of low-alloyed TRIP-steels, because this approach allows for a straightforward inclusion of various influencing factors such as residual stress distribution, graded material properties which can hardly included in phenomenological descriptions of these heterogeneous multiphase materials. In order to allow for efficient computations, a simplified microstructure is used in an illustrative direct micro-macro simulation. The inelastic processes in the austenitic inclusions involve the phase transformation from austenite to martensite and the inelastic deformation of these two phases. The isotropic, rate-independent, hyperelastic-plastic material model of Hallberg et al. (IJP, 23, pp.1213–1239, 2007), originally proposed for high-alloyed TRIP steel, is adopted here for the inclusion phase. Minor modifications of the model are proposed to improve its implementation and performance. The influence of various material parameters associated with the phase transformation on the evolution of retained austenite is studied for different homogeneous deformation states. The non-monotonic stress-state dependence observed in experiments is clearly captured by the model. A numerical two-scale calculation is carried out to enlighten the ductility enhancement in low-alloyed TRIP-steels due to the martensitic phase transformation.


International Journal for Numerical Methods in Engineering | 2011

Development of a quadratic finite element formulation based on the XFEM and NURBS

Georg Haasemann; Markus Kästner; Stefan Prüger; Volker Ulbricht


International Journal of Plasticity | 2014

A thermomechanically coupled material model for TRIP-steel

Stefan Prüger; Andreas Seupel; Meinhard Kuna


Steel Research International | 2011

A Material Model for TRIP-Steels and its Application to a CrMnNi Cast Alloy

Stefan Prüger; Meinhard Kuna; Steffen Wolf; Lutz Krüger


Advanced Engineering Materials | 2013

Study of Reinforcing Mechanisms in TRIP‐Matrix Composites under Compressive Loading by Means of Micromechanical Simulations

Stefan Prüger; Lars Mehlhorn; Uwe Mühlich; Meinhard Kuna


Procedia Materials Science | 2014

Material Forces in Consideration of Phase Transformation in TRIP-steel☆

Andreas Burgold; Meinhard Kuna; Stefan Prüger


Steel Research International | 2011

Influence of Material and Interface Properties on the Overall Behaviour of Particle Reinforced Steel with Focus on the Phase Transformation Capabilities of the Individual Components

Lars Mehlhorn; Stefan Prüger; Stefan Soltysiak; Uwe Mühlich; Meinhard Kuna


Computational Materials Science | 2012

Influence of material and interface properties on the transformation behaviour of particle reinforced TRIP-matrix composites

Stefan Prüger; Lars Mehlhorn; Stefan Soltysiak; Meinhard Kuna


Pamm | 2011

A constitutive model for a high alloyed cast CrMnNi TRIP-steel

Stefan Prüger; Meinhard Kuna


Pamm | 2009

Development of a quadratic element formulation based on the X‐FEM and NURBS surfaces

Georg Haasemann; Markus Kästner; Stefan Prüger; Volker Ulbricht

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Meinhard Kuna

Freiberg University of Mining and Technology

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Daniel Balzani

Dresden University of Technology

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Lars Mehlhorn

Freiberg University of Mining and Technology

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Ashutosh Gandhi

University of Duisburg-Essen

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Georg Haasemann

Dresden University of Technology

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Markus Kästner

Dresden University of Technology

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Stefan Soltysiak

Freiberg University of Mining and Technology

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Uwe Mühlich

Freiberg University of Mining and Technology

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Volker Ulbricht

Dresden University of Technology

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Andreas Burgold

Freiberg University of Mining and Technology

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