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Study of hot cracking potential in a 6-ton steel ingot casting

机译:6吨钢锭铸造中的热裂化潜力研究

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摘要

A new hot cracking potential (HCP) criterion, for the appearance of hot tearing in steel ingot castings, is proposed. The maximum value of the first principal stress, divided by the dynamic yield strength in the brittle temperature range (BTR), was used to identify the HCP. Experiments were carried out on a 6-ton P91 steel ingot in which severe hot tearing was detected in the upper centerline. Another ingot, with a better heat preservation riser, and without hot tearing, was used for comparison. Samples were obtained from the area of the ingot body with hot tearing, and their morphologies were inspected by a X-ray high energy industrial computed tomography. The carbon and sulfur distributions around the hot tearing were characterized by an infrared spectrometry carbon and sulfur analyzer. High temperature mechanical properties were obtained by a Gleeble thermal simulation machine, under different strain rates. Then, thermo-mechanical simulations using an elasto-viscoplastic finite-element model were conducted to analyze the stress and strain evolution during ingot solidification. The results showed that the hot tearing area, which was rich in both carbon and sulfur, was under excessive tensile stress in the BTR, bearing the highest HCP.
机译:提出了一种新的热裂解电位(HCP)标准,用于钢锭铸件的热撕裂外观。第一个主应力的最大值除以脆性温度范围(BTR)中的动态屈服强度除以鉴定HCP。在6吨P91钢锭上进行实验,其中在上中心线中检测到严重的热撕裂。使用更好的保温提升管和没有热撕裂的另一锭进行比较。用热撕裂从铸锭体的面积获得样品,并通过X射线高能量工业计算断层扫描检查它们的形态。热撕裂周围的碳和硫分布的特征在于红外光谱碳和硫分析仪。通过Gleeble热模拟机在不同的应变速率下获得高温机械性能。然后,进行了使用弹性粘塑料有限元模型的热机械模拟,以分析铸锭凝固过程中的应力和应变进化。结果表明,富含碳和硫的热撕裂面积在BTR中的过度拉伸应力呈现最高的HCP。

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