Static and dynamic response of ultra-fast annealed advanced high strength steels

被引:1
|
作者
Vercruysse, Florian [1 ]
Castro Cerda, Felipe M. [2 ]
Petrov, Roumen [1 ]
Verleysen, Patricia [1 ]
机构
[1] Univ Ghent, EEMMECS, Tech Lane Sci Pk Campus A, Ghent, Belgium
[2] Univ Santiago Chile, Dept Met Engn, Estn Cent, Av Lib Bdo OHiggins 3363, Santiago, Chile
关键词
D O I
10.1051/epjconf/201818303017
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ultra-fast annealing (UFA) is a viable alternative for processing of 31(1 generation advanced high strength steels (AHSS). Use of heating rates up to 1000 degrees C/s shows a significant grain refinement effect in low carbon steel (0.1 wt.%), and creates multiphase structures containing ferrite, martensite, bainite and retained austenite. This mixture of structural constituents is attributed to carbon gradients in the steel due to limited diffusional time during UFA treatment. Quasi-static (strain rate of 0.0033s(-1)) and dynamic (stain rate 600s(-1)) tensile tests showed that tensile strength of both conventional and UFA sample increases at high strain rates, whereas the elongation at fracture decreases. The ultrafast heated samples are less sensitive to deterioration of elongation at high strain rates then the conventionally heat treated ones. Based on metallographic studies was concluded that the presence of up to 5% of retained austenite together with a lower carbon martensite/bainite fraction are the main reason for the improved tensile properties. An extended stability of retained austenite towards higher strain values was observed in the high strain rate tests which is attributed to adiabatic heating. The extension of the transformation induced plasticity (TRIP) effect towards higher strain values allowed the UFA-samples to better preserve their deformation capacity resulting in expected better crashworthiness.
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页数:6
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