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Continuously Cooled Ultrafine Bainitlc Steel with Excellent Strength-Elongation Combination

机译:具有优异的强度-伸长率组合的连续冷却超细贝氏体钢

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摘要

Serious efforts have been made to simultaneously improve the strength and ductility of steels for different applications. However, steel with the ultimate tensile strength (UTS) above 1200 MPa with minimum elongation of 20 pct is still difficult to produce. In the current work, an effort has been made to design such a steel that could be directly produced in any hot strip mill, after accelerated cooling on the runout table followed by coiling. Basically this steel consisted of C, Mn, Si, and Cr and the intended final microstructure at room temperature was about 80 pct carbide-free bainite and 20 pct retained austenite. The steel was exposed to a thermal treatment which is generally experienced by a hot strip coil. This newly developed steel possesses an UTS of minimum ~1370 MPa with minimum ~21 pct elongation. The combination of such encouraging mechanical properties can be primarily attributed to the formation of ultrafine bainite plates (~100 to 130 nm) and a high density of dislocations arising out of the bainitic transformation. The presence of sufficient quantity of retained austenite (minimum 21 pct) in the final microstructure could be the reason for the attainment of outstanding ductility values at such a high strength level.
机译:为了同时提高用于不同应用的钢的强度和延展性,已经做出了认真的努力。但是,仍然难以生产极限拉伸强度(UTS)超过1200 MPa,最小伸长率为20 pct的钢。在目前的工作中,已经进行了设计这样的钢的设计,该钢可以在跳动台上加速冷却然后卷取之后,可以在任何热轧机上直接生产。该钢基本上由C,Mn,Si和Cr组成,室温下预期的最终显微组织为约80%无碳化物贝氏体和20%残余奥氏体。对该钢进行热处理,该热处理通常是热轧带卷进行的。这种新开发的钢具有最小〜1370 MPa的UTS和最小〜21 pct的伸长率。这种令人鼓舞的机械性能的结合主要归因于超细贝氏体板(约100至130 nm)的形成以及贝氏体转变引起的高位错密度。在最终的显微组织中存在足够数量的残留奥氏体(至少21 pct)可能是在如此高的强度水平下获得出色的延展性值的原因。

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