Inverse method to determine fatigue properties of materials by combining cyclic indentation and numerical simulation

  • The application of instrumented indentation to assess material properties like Young's modulus and microhardness has become a standard method. In recent developments, indentation experiments and simulations have been combined to inverse methods, from which further material parameters such as yield strength, work hardening rate, and tensile strength can be determined. In this work, an inverse method is introduced by which material parameters for cyclic plasticity, i.e., kinematic hardening parameters, can be determined. To accomplish this, cyclic Vickers indentation experiments are combined with finite element simulations of the indentation with unknown material properties, which are then determined by inverse analysis. To validate the proposed method, these parameters are subsequently applied to predict the uniaxial stress–strain response of a material with success. The method has been validated successfully for a quenched and tempered martensitic steel and for technically pure copper, where an excellent agreement between measured and predicted cyclic stress–strain curves has been achieved. Hence, the proposed inverse method based on cyclic nanoindentation, as a quasi-nondestructive method, could complement or even substitute the resource-intensive conventional fatigue testing in the future for some applications.

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Metadaten
Author:Hafiz Muhammad SajjadORCiDGND, Hamad ul HassanORCiDGND, Matthias KuntzORCiDGND, Benjamin Josef SchäferORCiDGND, Petra Sonnweber-RibicGND, Alexander HartmaierORCiDGND
URN:urn:nbn:de:hbz:294-78445
DOI:https://doi.org/10.3390/ma13143126
Parent Title (English):Materials
Publisher:MDPI
Place of publication:Basel
Document Type:Article
Language:English
Date of Publication (online):2021/02/08
Date of first Publication:2020/07/13
Publishing Institution:Ruhr-Universität Bochum, Universitätsbibliothek
Tag:Open Access Fonds
Vickers hardness; cyclic indentation; cyclic material properties; fatigue life; inverse analysis; numerical simulations
Volume:13
Issue:14, Article 3126
First Page:3126-1
Last Page:3126-14
Note:
Article Processing Charge funded by the Deutsche Forschungsgemeinschaft (DFG) and the Open Access Publication Fund of Ruhr-Universität Bochum.
Institutes/Facilities:Interdisciplinary Centre for Advanced Materials Simulation (ICAMS), Department of micromechanical and macroscopic modelling
open_access (DINI-Set):open_access
Licence (English):License LogoCreative Commons - CC BY 4.0 - Attribution 4.0 International