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Effect of Thermal Cycle and Nitrogen Content on the Hot Ductility of Boron-bearing Steel

机译:热循环和氮含量对含硼钢热延性的影响

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Hot ductility of Boron (B)-bearing steel has been examined in view of slab corner cracking problem. Addition of B to the low carbon steel reduced its hot ductility under a thermal cycle in which samples were cooled directly to the test temperature before straining. The change in hot ductility of B-bearing steel with deformation temperature showed one trough in the temperature range of 800–1000°C, which covered the lower temperature region of austenite single phase (region (I)), and near the austenite/ferrite transformation temperature (Ae_(3)) (region (II)). An abrupt temperature decrease and reheating before straining heavily deteriorated the hot ductility of B-bearing steel in the region (I). In all steels, the strain concentration in the film-like ferrite primarily reduced hot ductility in region (II) regardless of the addition of B and the thermal cycles before straining. The ductility reduction of B-bearing steel is caused by the distribution and amount of BN precipitation, which is determined by the thermal cycles and the N content. Increase in the N content remarkably reduced hot ductility of B-bearing steel in region (I), where the behavior of BN precipitates controlled hot ductility. The results shows that the improvement of hot ductility in B-bearing steel can be attained by decreasing the N content and by avoiding an abrupt temperature decrease in the secondary cooling stage of the slab after solidification.
机译:鉴于板坯角部开裂问题,已经研究了含硼(B)钢的热延展性。在低碳钢中添加B会降低其在热循环中的热延展性,在热循环中,样品在拉伸之前直接冷却至测试温度。 B形钢的热延性随变形温度的变化在800-1000°C的温度范围内出现一个波谷,覆盖奥氏体单相的较低温度区域(区域(I)),并且靠近奥氏体/铁素体相变温度(Ae_(3))(区域(II))。在应变之前,突然的温度下降和重新加热会严重破坏区域(I)中含B的钢的热延展性。在所有钢中,薄膜状铁素体中的应变集中主要降低了区域(II)的热延展性,而与添加B和应变前的热循环无关。 B轴承钢的延展性降低是由BN析出物的分布和数量引起的,BN析出物的分布和数量由热循环和N含量决定。 N含量的增加显着降低了区域(I)中含B钢的热延性,在该区域BN的行为导致受控的热延性。结果表明,通过降低氮含量并避免凝固后的板坯二次冷却阶段温度急剧下降,可以提高含B钢的热延性。

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