Charakterisierung der Schädigungsentwicklung in ultrafeinkörnigem IF Stahl mittels digitaler Bildkorrelation

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Titel in ÜbersetzungCharacterization of the damage development in Ultrafinegrained interstitial-free steel by digital image correlation
OriginalspracheDeutsch
Seiten (von - bis)27-35
Seitenumfang9
FachzeitschriftMaterialpruefung/Materials Testing
Jahrgang52
Ausgabenummer1-2
PublikationsstatusVeröffentlicht - Feb. 2010
Extern publiziertJa

Abstract

Ultrafine-grained (UFG) interstitial-free (IF) steel is characterized by extraordinary mechanical properties under monotonie and cyclic loading. However, unusual damage evolution was observed in some UFG-IF steel samples from specific processing routes. In particular, cracks in fatigued samples did not propagate perpendicular to the loading axis. In order to characterize the evolution of damage localized strain fields were investigated by means of digital image correlation. It is demonstrated that monitoring the accumulation of localized strains is an efficient tool that allows for identification of the critical microstructural features already in the very early stages of deformation. Thus, the microstructural features leading to failure upon further loading could be investigated in detail by means of electron-optical microscopy. In case of the UFG-IF steel, process-induced microstructural heterogeneities were identified, which promoted failure along characteristic directions.

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Charakterisierung der Schädigungsentwicklung in ultrafeinkörnigem IF Stahl mittels digitaler Bildkorrelation. / Niendorf, Thomas; Maier, Hans J.
in: Materialpruefung/Materials Testing, Jahrgang 52, Nr. 1-2, 02.2010, S. 27-35.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

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abstract = "Ultrafine-grained (UFG) interstitial-free (IF) steel is characterized by extraordinary mechanical properties under monotonie and cyclic loading. However, unusual damage evolution was observed in some UFG-IF steel samples from specific processing routes. In particular, cracks in fatigued samples did not propagate perpendicular to the loading axis. In order to characterize the evolution of damage localized strain fields were investigated by means of digital image correlation. It is demonstrated that monitoring the accumulation of localized strains is an efficient tool that allows for identification of the critical microstructural features already in the very early stages of deformation. Thus, the microstructural features leading to failure upon further loading could be investigated in detail by means of electron-optical microscopy. In case of the UFG-IF steel, process-induced microstructural heterogeneities were identified, which promoted failure along characteristic directions.",
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Download

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AU - Maier, Hans J.

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Y1 - 2010/2

N2 - Ultrafine-grained (UFG) interstitial-free (IF) steel is characterized by extraordinary mechanical properties under monotonie and cyclic loading. However, unusual damage evolution was observed in some UFG-IF steel samples from specific processing routes. In particular, cracks in fatigued samples did not propagate perpendicular to the loading axis. In order to characterize the evolution of damage localized strain fields were investigated by means of digital image correlation. It is demonstrated that monitoring the accumulation of localized strains is an efficient tool that allows for identification of the critical microstructural features already in the very early stages of deformation. Thus, the microstructural features leading to failure upon further loading could be investigated in detail by means of electron-optical microscopy. In case of the UFG-IF steel, process-induced microstructural heterogeneities were identified, which promoted failure along characteristic directions.

AB - Ultrafine-grained (UFG) interstitial-free (IF) steel is characterized by extraordinary mechanical properties under monotonie and cyclic loading. However, unusual damage evolution was observed in some UFG-IF steel samples from specific processing routes. In particular, cracks in fatigued samples did not propagate perpendicular to the loading axis. In order to characterize the evolution of damage localized strain fields were investigated by means of digital image correlation. It is demonstrated that monitoring the accumulation of localized strains is an efficient tool that allows for identification of the critical microstructural features already in the very early stages of deformation. Thus, the microstructural features leading to failure upon further loading could be investigated in detail by means of electron-optical microscopy. In case of the UFG-IF steel, process-induced microstructural heterogeneities were identified, which promoted failure along characteristic directions.

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