• <noscript id="y4y0w"><source id="y4y0w"></source></noscript>
    <table id="y4y0w"><option id="y4y0w"></option></table>
  • <li id="y4y0w"></li>
    <noscript id="y4y0w"></noscript>
    <noscript id="y4y0w"><kbd id="y4y0w"></kbd></noscript>
    <noscript id="y4y0w"><source id="y4y0w"></source></noscript>
    <menu id="y4y0w"></menu>
    <table id="y4y0w"><rt id="y4y0w"></rt></table>
  • 基于定向凝固實驗高碳中錳耐磨鋼凝固組織與枝晶生長行為分析

    Analysis of solidification structure and dendrite growth behavior of high-carbon medium-manganese wear-resisting steel based on directional solidification experiment

    • 摘要: 通過定向凝固試驗、金相顯微鏡、共聚焦顯微鏡、理論計算等手段對高碳中錳耐磨鋼凝固組織及晶體生長行為進行了系統研究. 在實驗拉速下中錳鋼凝固組織均表現為發達的樹枝晶組織,未發生胞/枝晶轉變. 中錳鋼枝晶間距隨拉速的增加而減小,拉速由5 μm·s?1增加到300 μm·s?1,一次枝晶間距(PDAS)由423.6 μm減小到179.6 μm;二次枝晶間距(SDAS)由110.38 μm減小到30.66 μm. 通過經典凝固理論模型對中錳鋼枝晶間距進行了預測,與定向凝固實驗值相比,Kurz–Fisher模型對一次枝晶間距預測綜合誤差率最小,Imagumbai模型對二次枝晶間距預測值誤差最小. 基于實驗值,構建得到一次枝晶間距與拉速關系為Y=173.01+264.21exp(?X/86.77),二次枝晶間距與拉速的關系為Y=189.49X?0.314.

       

      Abstract: The dendrite growth behavior and solidification microstructure of high-carbon medium-manganese wear-resistant steel (medium-manganese steel) were systematically investigated by means of directional solidification experiments, metallographic microscopy, confocal microscopy, and theoretical calculations. The results calculated by Factsage 8.0 showed that the microstructural transformation of the medium-manganese steel was L→L+γ→γ, which belonged to the austenite solidification mode, with no peritectic reaction and no δ phase or other phases appearing. The directional solidification experiments showed that, under the experimental conditions (pulling speed from 5 μm·s?1 to 300 μm·s?1), the solidification structure of the medium-manganese steel exhibited a developed dendritic structure, and there was no cell-to-dendrite transformation during solidification. These results were consistent with the theoretical calculations. According to the directional experiments, the dendrite spacing of medium-manganese steel decreased as the pulling speed increased. Specifically, the average primary dendrite arm spacing (PDAS) decreased from 423.6 μm to 317.9, 258.9, 201.0, and 179.6 μm as the pulling speed increased from 5 μm·s?1 to 50, 100, 200, and 300 μm·s?1 respectively. Notably, pulling speed had a significant effect on reducing λ1 at low pulling speed (5–200 μm·s?1). However, this effect declined when the pulling speed was high (≥300 μm·s?1). Meanwhile, the average secondary dendrite arm spacing (SDAS) sharply decreased from 110.38 μm to 59.77 μm as the velocity increased from 5 μm·s?1 to 50 μm·s?1 and then decreased more slowly to 45.0, 34.88, and 30.66 μm as the velocity increased to 100, 200, and 300 μm·s?1, respectively. Therefore, compared with SDAS, PDAS in medium-manganese steel was more sensitive to the cooling rate. Moreover, when the pulling speed exceeded 200 μm·s?1, both PDAS and SDAS changed little with further increases in velocity. The classical solidification theory models of Hunt, Kurz–Fisher, and Trivedi were used to predict the PDAS of medium-manganese steel. Compared with the experimental values, the comprehensive error rate of the Kurz–Fisher was the smallest, at approximately 17.95%. In addition, the Imagumbai, Furer–Wundelin, and Edvardsson classical solidification theory models were applied to calculate the SDAS of medium-manganese steel. Compared with the directional experiments, the comprehensive error rate of the Imagumbai model was again the smallest at approximately 13%. The PDAS and SDAS results predicted by classical solidification models did not fit well with the experimental results. This discrepancy may be related to the relatively high Mn and Cr contents in the medium-manganese steel. Therefore, to predict the PDAS and SDAS of medium-manganese steel more accurately, optimized models based on directional experiments were established. The relational expression between PDAS and pulling speed was Y=173.01+264.21e(?X/86.77), with a regression coefficient of 0.999. In addition, the relationship between SDAS and pulling speed was Y=189.49X?0.314, with a regression coefficient of 0.993. This research clarified the relationship between pulling speed and dendrite spacing in medium-manganese steel, providing theoretical guidance for improving the quality of medium-manganese steel, particularly in the development of continuous casting processes.

       

    /

    返回文章
    返回
  • <noscript id="y4y0w"><source id="y4y0w"></source></noscript>
    <table id="y4y0w"><option id="y4y0w"></option></table>
  • <li id="y4y0w"></li>
    <noscript id="y4y0w"></noscript>
    <noscript id="y4y0w"><kbd id="y4y0w"></kbd></noscript>
    <noscript id="y4y0w"><source id="y4y0w"></source></noscript>
    <menu id="y4y0w"></menu>
    <table id="y4y0w"><rt id="y4y0w"></rt></table>
  • 啪啪啪视频