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Application of microstructural engineering to the controlled cooling of steel wire rod.

机译:微观结构工程在控制盘条冷却中的应用。

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摘要

The concept of microstructural engineering has been applied to Stelmor cooling of steel wire rod. The Stelmor process is situated immediately following the rod mill and utilizes forced air to cool steel rod from the rolling temperature, through austenite transformation, down to a temperature suitable for handling. A mathematical model has been developed for the prediction of the mechanical properties of the steel rod as a function of cooling parameters in the process and steel composition. The model is based on one-dimensional heat conduction within the rod and is limited to plain-carbon eutectoid and hypoeutectoid steels. Phase transformation kinetics in the model, for both the austenite-ferrite and austenite-pearlite reactions, have been characterized through the use of the Avrami equation. A combination of experimental and literature data have been employed for the development of equations to quantitatively predict the microstructure formed in the steel rod after transformation. A modified Gladman equation was adopted for the strength predictions.;Comparisons of the model-predicted thermal histories, microstructures and mechanical properties with those measured in both the laboratory and plant tests have been made. The results of the thermal history comparison for both laboratory and plant conditions showed good agreement between the model-predicted and measured centreline temperatures of control-cooled steel rod. Predicted temperatures during the austenite-ferrite and austenite-pearlite phase transformations were within the expected error associated with prediction of transformation kinetics. Good agreement was obtained between model-predicted and measured ferrite fraction, ferrite grain diameter and interlamellar pearlite spacing. Yield strengths and ultimate tensile strengths predicted by the model for the laboratory and plant tests displayed excellent agreement with measured strengths.;In order to obtain a test of the predictive capability of the model under Stelmor line conditions, an independent set of ultimate strengths for Stelmor-cooled steel grades was obtained. These samples were taken directly from grades being processed on the line. A comparison between model-predicted and measured UTS for these grades yielded excellent agreement in the 1020-1040 and eutectoid composition range, with a fair prediction obtained for 1055-1065 grades. (Abstract shortened with permission of author.)
机译:微观结构工程的概念已应用于钢丝的Stelmor冷却。 Stelmor工艺紧邻棒材轧机,利用强制空气将钢棒从轧制温度通过奥氏体转变冷却至适合处理的温度。已经开发出数学模型来预测钢棒的机械性能,该钢棒的机械性能是工艺中的冷却参数和钢成分的函数。该模型基于棒内的一维热传导,并且仅限于普通碳共析和次共析钢。通过使用Avrami方程表征了模型中奥氏体-铁素体和奥氏体-珠光体反应的相变动力学。实验和文献数据的组合已用于方程的开发,以定量预测相变后在钢棒中形成的微观结构。强度预测采用修正的Gladman方程。对模型预测的热历史,微观结构和力学性能与在实验室和工厂测试中测得的结果进行了比较。实验室和工厂条件下的热历史比较结果表明,模型预测的和实测的控制冷却钢中心线温度之间具有很好的一致性。奥氏体-铁素体和奥氏体-珠光体相变过程中的预测温度在与预测转变动力学有关的预期误差范围内。在模型预测和测量的铁素体分数,铁素体晶粒直径和层间珠光体间距之间取得了良好的一致性。模型在实验室和工厂测试中预测的屈服强度和极限抗拉强度与测得的强度表现出极好的一致性。;为了获得在Stelmor线条件下模型的预测能力的测试,需要一套独立的Stelmor极限强度获得了冷却钢种。这些样品直接取自生产线上正在加工的等级。对这些等级的模型预测的UTS与测得的UTS进行比较,得出在1020至1040年和共析成分范围内的出色一致性,并且对1055-1065等级获得了合理的预测。 (摘要经作者许可缩短。)

著录项

  • 作者

    Campbell, Peter Cameron.;

  • 作者单位

    The University of British Columbia (Canada).;

  • 授予单位 The University of British Columbia (Canada).;
  • 学科 Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 1989
  • 页码
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 冶金工业;
  • 关键词

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