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首页> 外文期刊>Materials Characterization >The effect of thermomechanical treatment and tempering on the subsurface microstructure and bendability of direct-quenched low-carbon strip steel
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The effect of thermomechanical treatment and tempering on the subsurface microstructure and bendability of direct-quenched low-carbon strip steel

机译:热机械处理和回火对直接淬火低碳钢材地下微观结构和弯曲性的影响

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AbstractRecent results in the literature have shown that subsurface properties play a key role during the bending of steel plates. Now, for the first time, surface microstructure, surface texture, subsurface hardness and dislocation density have been studied to reveal the effect of tempering and thermomechanical treatment on the bendability of a direct-quenched strip steel. In the experiments, different thermomechanical treatments as well as non-isothermal tempering treatments were performed with slow heating to 570°C and slow cooling to simulate the tempering of large steel coils in a batch annealing furnace. The results show that in addition to the improved production efficiency obtained through direct quenching and a single tempering process, tempering improves bendability by reducing subsurface dislocation density and hardness without a significant loss of strip yield strength. The subsurface microstructure and texture of the strip are the result of thermo-mechanical processing and transformation behaviour. Upper bainite containing elongated Martensite-Austenite (MA) islands in addition to an intense shear texture component {112}〈111〉αleads to shear band formation, and therefore poorer bendability when the bend axis is perpendicular to the rolling direction. This texture is not affected by tempering. Therefore, tempering does not improve the bendability of steels with an unfavourable texture. When the subsurface layers comprise a softer ferritic microstructure, good bendability is obtained in the untempered direct-quenched condition with a modest improvement caused by tempering.Highlights?Surface properties mainly determine the bendability of high strength steel.?Tempering improves bendability by softening the microstructure.?Surface texture is affected by thermomechanical treatment but not by tempering.?Strong shear texture component and upper bainite are detrimental to bendability.]]>
机译:<![cdata [ 抽象 在文献中的最近结果表明,地下属性在钢板弯曲期间发挥着关键作用。现在,已经研究了表面微观结构,表面纹理,地下硬度和位错密度,以揭示回火和热机械处理对直接淬火带钢的弯曲性的影响。在实验中,使用缓慢加热至570℃并缓慢冷却以模拟批量退火炉中的大钢卷的回火进行不同的热机械处理和非等温回火处理。结果表明,除了通过直接淬火获得的提高生产效率和通过直接淬火和单回火过程,还通过降低地下位错密度和硬度来提高弯曲性,而无需显着损失带屈服强度。条带的地下微观结构和纹理是热机械加工和转化行为的结果。除了强烈的剪切纹理组件外当弯曲轴垂直于滚动方向时较差的弯曲性。这种纹理不受回火的影响。因此,回火不会提高具有不利纹理的钢的弯曲性。当地下层包括更柔软的铁素体微结构时,在没有温和的直接淬火条件下获得良好的可弯曲性,其温度造成的适度改善。 突出显示 表面属性主要确定高强度钢的弯曲性。 < CE:列表项ID =“LI0010”> 回火通过软化微观结构来提高弯曲性。 表面te. xture受到热机械治疗的影响,而不是通过回火。 < CE:PARA ID =“P0020”View =“全部”>强剪切纹理组件和上贝卡特对弯曲性有害。 ]]>

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