Enhancing the crashworthiness of high-manganese steel by strain-hardening engineering, and tailored folding by local heat-treatment

被引:34
作者
Bambach, Markus [1 ]
Conrads, Laura [2 ]
Daamen, Markus [2 ]
Guvenc, Onur [2 ]
Hirt, Gerhard [2 ]
机构
[1] Brandenburg Univ Technol Cottbus Senftenberg, Chair Mech Design & Mfg, Konrad Wachsmann Allee 17, D-03046 Cottbus, Germany
[2] Rhein Westfal TH Aachen, Inst Met Forming, Intzestr 10, D-52056 Aachen, Germany
关键词
Crashworthiness; TWIP steel; Recovery annealing; Laser heat treatment; Strain-hardening engineering; Tailored folding; INDUCED PLASTICITY STEEL; TWIP STEELS; MECHANICAL-PROPERTIES; TENSILE DUCTILITY; AUSTENITIC STEEL; BEHAVIOR; ENERGY; MICROSTRUCTURE; PARAMETERS; EVOLUTION;
D O I
10.1016/j.matdes.2016.07.065
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
High-manganese twinning induced plasticity steels are a promising alternative for enhancing crashworthiness in automobiles due to their combined high strength and ductility. In this work, we argue that their so-called exceptional tensile strength and ductility are not directly relevant from a component design perspective, but those properties enable tailoring the material response for a given requirement. For this purpose, we compared their crashworthiness with that of an industrial grade steel via drop-tower test. The industrial grade steel performed better although the conventional metrics of crashworthiness predicted otherwise. Then, the crucial effect of strain hardening on the mechanical response of the high-manganese steels is represented by applying two completely different strain-hardening engineering strategies: Recovery annealing and tailored folding. Both approaches enabled high-manganese steel samples to outperform the industrial steel grade ones. Finally, we introduce a new energy absorption metric based on the plastic deformation energy and the deformation volume in order to assess the benefits of the introduced approaches. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:157 / 168
页数:12
相关论文
共 63 条
[41]   Grain refinement effect on cryogenic tensile ductility in a Fe-Mn-C twinning-induced plasticity steel [J].
Koyama, Motomichi ;
Lee, Taekyung ;
Lee, Chong Soo ;
Tsuzaki, Kaneaki .
MATERIALS & DESIGN, 2013, 49 :234-241
[42]  
Laumann T., 2010, QUALITATIVE QUANTITA
[43]   Influences of Nb-microalloying on microstructure and mechanical properties of Fe-25Mn-3Si-3Al TWIP steel [J].
Li, Dejun ;
Feng, Yaorong ;
Song, Shengyin ;
Liu, Qiang ;
Bai, Qiang ;
Wu, Gang ;
Lv, Neng ;
Ren, Fengzhang .
MATERIALS & DESIGN, 2015, 84 :238-244
[44]  
Magee C. L., 1977, J ENG MATER-T ASME, V99, P114
[45]   An investment methodology for materials [J].
Maine, EMA ;
Ashby, MF .
MATERIALS & DESIGN, 2002, 23 (03) :297-306
[46]  
Neu RW, 2013, MAT PERFORM CHARACT, V2
[47]  
Niendorf T., 2013, METALLURGICAL MAT B, P1
[48]   'Back-annealing' of cold rolled steels through recovery and/or partial recrystallisation [J].
Ray, R. K. ;
Hutchinson, B. ;
Ghosh, C. .
INTERNATIONAL MATERIALS REVIEWS, 2011, 56 (02) :73-97
[49]   Characterization and Prediction of Flow Behavior in High-Manganese Twinning Induced Plasticity Steels: Part I. Mechanism Maps and Work-Hardening Behavior [J].
Saeed-Akbari, A. ;
Mosecker, L. ;
Schwedt, A. ;
Bleck, W. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2012, 43A (05) :1688-1704
[50]   Crash behavior of box columns filled with aluminum honeycomb or foam [J].
Santosa, S ;
Wierzbicki, T .
COMPUTERS & STRUCTURES, 1998, 68 (04) :343-367