Experimental analysis of anisotropic damage in dual-phase steel by resonance measurement

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  • TU Dortmund University
  • South Ukrainian National Pedagogical University
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Original languageEnglish
Pages (from-to)1147-1169
Number of pages23
JournalInternational Journal of Damage Mechanics
Volume26
Issue number8
Publication statusPublished - 19 May 2016

Abstract

The ductile damage in deformed dual-phase steel sheets (DP600) was investigated based on measurements of the degradation of the direction-dependent Young's modulus. The study focuses on the material-induced damage anisotropy in such advanced high-strength steel. The elastic properties in the direction of applied loading of the deformed sheets were determined by measuring the resonance frequency of rectangular samples. The material was investigated in the as-delivered condition and after annealing at 220 for 48 h. Tensile strains of up to 10% were applied after annealing. Tensile tests were performed in different directions with respect to the rolling direction to determine the evolution of damage in different directions. The comparison of the obtained results with the electron micrographs shows that the damage in the steel sheets occurs in the form of nano and micro damages near the grain boundary and interfaces of phases. The maximum decrease of the Young's modulus in the transverse direction was observed for the largest applied deformation of 10% tensile strain in the transverse direction. An efficient calculation method to obtain information on the distribution of anisotropy in the plane of the sheet was applied. This calculation method relies on an efficient representation of the material's texture. In order to assess the influence of texture, the texture was determined experimentally.

Keywords

    anisotropy, Dual-phase steel, ductile damage, dynamic Young's modulus, resonance frequency

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Cite this

Experimental analysis of anisotropic damage in dual-phase steel by resonance measurement. / Gerstein, Gregory; Clausmeyer, Till; Isik, Kerim et al.
In: International Journal of Damage Mechanics, Vol. 26, No. 8, 19.05.2016, p. 1147-1169.

Research output: Contribution to journalArticleResearchpeer review

Gerstein G, Clausmeyer T, Isik K, Nürnberger F, Tekkaya AE, Bruchanov AA et al. Experimental analysis of anisotropic damage in dual-phase steel by resonance measurement. International Journal of Damage Mechanics. 2016 May 19;26(8):1147-1169. doi: 10.1177/1056789516650245
Gerstein, Gregory ; Clausmeyer, Till ; Isik, Kerim et al. / Experimental analysis of anisotropic damage in dual-phase steel by resonance measurement. In: International Journal of Damage Mechanics. 2016 ; Vol. 26, No. 8. pp. 1147-1169.
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abstract = "The ductile damage in deformed dual-phase steel sheets (DP600) was investigated based on measurements of the degradation of the direction-dependent Young's modulus. The study focuses on the material-induced damage anisotropy in such advanced high-strength steel. The elastic properties in the direction of applied loading of the deformed sheets were determined by measuring the resonance frequency of rectangular samples. The material was investigated in the as-delivered condition and after annealing at 220 for 48 h. Tensile strains of up to 10% were applied after annealing. Tensile tests were performed in different directions with respect to the rolling direction to determine the evolution of damage in different directions. The comparison of the obtained results with the electron micrographs shows that the damage in the steel sheets occurs in the form of nano and micro damages near the grain boundary and interfaces of phases. The maximum decrease of the Young's modulus in the transverse direction was observed for the largest applied deformation of 10% tensile strain in the transverse direction. An efficient calculation method to obtain information on the distribution of anisotropy in the plane of the sheet was applied. This calculation method relies on an efficient representation of the material's texture. In order to assess the influence of texture, the texture was determined experimentally.",
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AU - Clausmeyer, Till

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AU - Nürnberger, Florian

AU - Tekkaya, A. Erman

AU - Bruchanov, Arkadii A.

AU - Maier, Hans J.

N1 - Funding information: The author(s) disclosed receipt of the following financial support for the research, authorship, and/or publication of this article: The authors gratefully acknowledge funding by the German Research Foundation (DFG) within the scope of the Transregional Collaborative Research Centre on sheet-bulk metal forming (SFB/TR 73) in the subproject C4 ‘‘Analysis of load history dependent evolution of damage and microstructure for the numerical design of sheet-bulk metal forming processes.’’

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