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基于機器學習的8620鋼淬透性預測模型

Hardenability prediction model of 8620 steel based on machine learning

  • 摘要: 8620鋼作為一種廣泛應用于齒輪和軸類零件的合金結構鋼,其淬透性直接影響產品的硬度分布和力學性能。傳統的淬透性評估方法依賴于大量的實驗測試,既耗時又成本高昂,難以滿足現代工業對高效、精準預測的需求。本文通過分析化學成分和Jominy端淬硬度數據,對834條淬透性數據進行了數據預處理,采用SHAP方法對特征進行重要性評估,揭示了Cr、C、Mn、Mo、Al和N等元素對淬透性的顯著影響,隨后進行特征篩選,并構建了8620鋼淬透性機器學習預測模型,實現J7.9值的高精度預測,為鋼材合金設計和熱處理工藝優化提供了科學依據。

     

    Abstract: As a widely used alloy structural steel in gear and shaft components, the hardenability of 8620 steel significantly influences the hardness distribution and mechanical properties of the final product. Traditional methods for assessing hardenability rely heavily on extensive experimental testing, which is both time-consuming and costly, and fails to meet the demands of modern industry for efficient and accurate predictions. In this study, 834 hardenability data points were preprocessed by analyzing the chemical composition and Jominy end-quenching hardness data. The SHAP method was employed to evaluate the importance of individual features, revealing the significant influence of elements such as Cr, C, Mn, Mo, Al, and N on hardenability. Following feature screening, a machine learning prediction model for the hardenability of 8620 steel was developed to achieve high-precision prediction of the J7.9 value. This approach provides a scientific basis for alloy design and optimization of heat treatment processes in steel manufacturing.

     

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