首页> 外文会议>Sohn International Symposium on Advanced Processing of Metals and Materials vol.2; 20060827-31; San Diego,CA(US) >CONTINUOUS COOLING TRANSFORMATION BEHAVIOR OF AN AS-ROLLED DUAL PHASE STEEL WITH LOW CARBON AND LOW ALLOY
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CONTINUOUS COOLING TRANSFORMATION BEHAVIOR OF AN AS-ROLLED DUAL PHASE STEEL WITH LOW CARBON AND LOW ALLOY

机译:低碳低合金双相轧钢的连续冷却转变行为

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The development of DP(Dual Phase) steels and TRIP(Transformation Induced Plasticity) steels has received much attention in recent years due to their high strength and simultaneous good ductility, which provides the potential for weight reduce and resource savings on certain components in automobile or other industries. So a controlled rolling process was simulated in the present study by thermomechanical simulator (Gleeble 1500) for producing DP steels on a kind of low carbon steel containing a small amount of Si and Cr. F+M dual phase microstructures have been obtained during continuous cooling processes of a wide cooling rate range from 10℃ /s to 60℃ /s. The grain size of the dual phase steel developed can be refined to less than 5μm through the mechanism of deformation induced ferrite (DIF) transformation. The ultrafine ferritic grains are equiaxed with high-angle boundary, and the martensite islands of an average size less than 5μm disperse uniformly in the ferrite matrix. The ultrafine martensite islands not only inhibit the growth of ultrafine ferritic grains and improve the bonding of F/M interface, but also increase remarkably the strain hardening rate in the processing of the present Dual-Phase steel. As a result, the tensile strength of ultrafine grained Dual-Phase steel reaches higher than 1000 MPa. The result shows that an ultrafine grained Dual-Phase steel of low carbon and low alloy is promised to exhibit desired F+M microstructure by means of this new TMCP process.
机译:DP(双相)钢和TRIP(相变诱导塑性)钢的开发近年来由于其高强度和同时良好的延展性而备受关注,这为减轻汽车或某些汽车零部件的重量和节省资源提供了潜力。其他行业。因此,在本研究中,通过热机械模拟器(Gleeble 1500)模拟了受控轧制过程,以在一种含少量Si和Cr的低碳钢上生产DP钢。在连续冷却过程中获得了F + M双相微结构,冷却速率范围从10℃/ s到60℃/ s。通过变形诱导铁素体(DIF)转变的机理,可以将开发的双相钢的晶粒尺寸细化到5μm以下。超细铁素体晶粒具有高角度边界等轴,平均尺寸小于5μm的马氏体岛均匀地分散在铁素体基体中。超细马氏体岛不仅抑制了超细铁素体晶粒的生长并改善了F / M界面的结合,而且显着提高了本双相钢在加工过程中的应变硬化速率。结果,超细晶粒双相钢的拉伸强度达到1000 MPa以上。结果表明,通过这种新的TMCP工艺,低碳低合金的超细晶粒双相钢有望展现出所需的F + M显微组织。

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