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Predictive Model to Aid Selection of Heat Treating Process Parameter for Alloy Steel Forgings

机译:用于帮助选择合金钢锻件热处理工艺参数的预测模型

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Heat treatment is a very complex process involving many process parameters. It is important to select optimum process parameters to achieve desired mechanical properties. Predictive models are very useful tools to aid in the selection of these parameters. A regression model is developed to aid heat-treating process parameter selection for UNS G41300 grade of steel. This study gives a better understanding of factors affecting hardness of heat-treated forgings. The model performed comparable to a human expert in selecting the critical parameter, temper temperature at Gulf Coast Machine and Supply Company (Gulfco), Beaumont, Texas. Suggestions have also been made to improve the monitoring and control of the heat treatment process.
机译:热处理是一种非常复杂的过程,涉及许多工艺参数。重要的是选择最佳过程参数以获得所需的机械性能。预测模型是有助于选择这些参数的非常有用的工具。开发了一种回归模型,以帮助为UNS G41300等级钢的热处理过程参数选择。该研究更好地了解影响热处理锻件硬度的因素。该模型与人类专家进行了相当的选择临界参数,海湾海岸机器和供应公司(Gulfco),Beaumont,德克萨斯州的临界参数。还建议改善热处理过程的监测和控制。

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