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Microstructural effects on fracture toughness of ultra-high strength dual phase sheet steels

Frómeta, D. (författare)
Eurecat, Centre Tecnològic de Catalunya, Unit of Metallic and Ceramic Materials, Plaça de la Ciència, 2, Manresa, 08243, Spain
Cuadrado, N. (författare)
Eurecat, Centre Tecnològic de Catalunya, Unit of Metallic and Ceramic Materials, Plaça de la Ciència, 2, Manresa, 08243, Spain
Rehrl, J. (författare)
Voestalpine Stahl GmbH, Voestalpine-Straße 3, 4020, Linz, Austria
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Suppan, C. (författare)
Voestalpine Stahl GmbH, Voestalpine-Straße 3, 4020, Linz, Austria
Dieudonné, T. (författare)
ArcelorMittal Maizières Research SA, Voie Romaine, BP30320, 57283, Maizières-les-Metz, France
Dietsch, P. (författare)
ArcelorMittal Maizières Research SA, Voie Romaine, BP30320, 57283, Maizières-les-Metz, France
Calvo, J. (författare)
Universitat Politècnica de Catalunya, Eduard Maristany 16, 08019, Barcelona, Spain
Casellas, Daniel (författare)
Luleå tekniska universitet,Material- och solidmekanik,Eurecat, Centre Tecnològic de Catalunya, Unit of Metallic and Ceramic Materials, Plaça de la Ciència, 2, Manresa, 08243, Spain
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 (creator_code:org_t)
Elsevier, 2021
2021
Engelska.
Ingår i: Materials Science & Engineering. - : Elsevier. - 0921-5093 .- 1873-4936. ; 802
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • The influence of microstructure on the fracture toughness of two industrially processed 1000 MPa dual-phase (DP) steel grades is investigated. Crack initiation and propagation resistance are evaluated by means of the essential work of fracture (EWF) methodology and the main damage and fracture mechanisms are investigated. The results are discussed in terms of the proportion and distribution of the different microstructural constituents, which is assessed by scanning electron microscopy (SEM), high-resolution electron backscatter diffraction (HR-EBSD) and nanoindentation hardness measurements. The investigations show that the strain-induced transformation of retained austenite to martensite (TRIP effect), may be detrimental to cracking resistance, even though it increases tensile properties. This phenomenon is attributed to a “brittle” network effect generated by the presence of hard fresh martensite islands in the fracture process zone. The connectivity of the hard secondary phases and the proportion of soft phase (ferrite) also have a major role in fracture toughness. The DP steel with the larger volume fraction of ferrite and homogeneously distributed martensite islands shows significantly higher crack propagation resistance. The contribution of necking to the ductile fracture process is evaluated by means of thickness measurements in fractured DENT specimens and the correlation between the specific essential work of fracture (we) and tensile properties is investigated. It is concluded that the global formability and cracking resistance of high strength DP steels can be balanced through microstructural tailoring. © 2020 The Author(s)

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Maskinteknik -- Teknisk mekanik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Mechanical Engineering -- Applied Mechanics (hsv//eng)

Nyckelord

Advanced high strength Steel
Cracks
Dual phase steel
Ductile fracture
Ferrite
High strength steel
Martensite
Scanning electron microscopy
Thickness measurement
Crack initiation and propagation
Crack propagation resistance
Essential work of fracture
High resolution electron backscatter diffractions
Micro-structural effects
Microstructural tailoring
Nano-indentation hardness
Strain induced transformation
Fracture toughness
Hållfasthetslära
Solid Mechanics

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