Damage Mechanisms and Mechanical Properties of High-Strength Multiphase Steels

被引:81
作者
Heibel, Sebastian [1 ]
Dettinger, Thomas [1 ]
Nester, Winfried [1 ]
Clausmeyer, Till [2 ]
Tekkaya, A. Erman [2 ]
机构
[1] Mercedes Benz Cars, Proc Engn & Mat, Benzstr, D-71059 Sindelfingen, Germany
[2] TU Dortmund Univ, Inst Forming Technol & Lightweight Components, Baroper Str 303, D-44227 Dortmund, Germany
关键词
damage; AHSS; UHSS; global formability; local formability; damage tolerance; edge-crack sensitivity; damage mechanics; fracture; bendability; DUAL-PHASE STEELS; DUCTILE FRACTURE; STRETCH-FLANGEABILITY; DEFORMATION-BEHAVIOR; MARTENSITE VOLUME; SHEET STEELS; FORMABILITY; EVOLUTION; TOUGHNESS; DP600;
D O I
10.3390/ma11050761
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The usage of high-strength steels for structural components and reinforcement parts is inevitable for modern car-body manufacture in reaching lightweight design as well as increasing passive safety. Depending on their microstructure these steels show differing damage mechanisms and various mechanical properties which cannot be classified comprehensively via classical uniaxial tensile testing. In this research, damage initiation, evolution and final material failure are characterized for commercially produced complex-phase (CP) and dual-phase (DP) steels in a strength range between 600 and 1000 MPa. Based on these investigations CP steels with their homogeneous microstructure are characterized as damage tolerant and hence less edge-crack sensitive than DP steels. As final fracture occurs after a combination of ductile damage evolution and local shear band localization in ferrite grains at a characteristic thickness strain, this strain measure is introduced as a new parameter for local formability. In terms of global formability DP steels display advantages because of their microstructural composition of soft ferrite matrix including hard martensite particles. Combining true uniform elongation as a measure for global formability with the true thickness strain at fracture for local formability the mechanical material response can be assessed on basis of uniaxial tensile testing incorporating all microstructural characteristics on a macroscopic scale. Based on these findings a new classification scheme for the recently developed high-strength multiphase steels with significantly better formability resulting of complex underlying microstructures is introduced. The scheme overcomes the steel designations using microstructural concepts, which provide no information about design and production properties.
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页数:34
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