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不銹鋼中夾雜物三維形貌及其熱力學計算

張一民 孫彥輝 白雪峰 卓超

張一民, 孫彥輝, 白雪峰, 卓超. 不銹鋼中夾雜物三維形貌及其熱力學計算[J]. 工程科學學報, 2020, 42(S): 14-20. doi: 10.13374/j.issn2095-9389.2020.03.25.s13
引用本文: 張一民, 孫彥輝, 白雪峰, 卓超. 不銹鋼中夾雜物三維形貌及其熱力學計算[J]. 工程科學學報, 2020, 42(S): 14-20. doi: 10.13374/j.issn2095-9389.2020.03.25.s13
ZHANG Yi-min, SUN Yan-hui, BAI Xue-feng, ZHUO Chao. Three-dimensional morphology and thermodynamic calculation of inclusions in stainless steel[J]. Chinese Journal of Engineering, 2020, 42(S): 14-20. doi: 10.13374/j.issn2095-9389.2020.03.25.s13
Citation: ZHANG Yi-min, SUN Yan-hui, BAI Xue-feng, ZHUO Chao. Three-dimensional morphology and thermodynamic calculation of inclusions in stainless steel[J]. Chinese Journal of Engineering, 2020, 42(S): 14-20. doi: 10.13374/j.issn2095-9389.2020.03.25.s13

不銹鋼中夾雜物三維形貌及其熱力學計算

doi: 10.13374/j.issn2095-9389.2020.03.25.s13
基金項目: 國家自然科學基金資助項目(51574026)
詳細信息
    通訊作者:

    E-mail:ustb420@126.com

  • 中圖分類號: TG115

Three-dimensional morphology and thermodynamic calculation of inclusions in stainless steel

More Information
  • 摘要: 采用無水電解法提取不銹鋼中存在的典型夾雜物,通過掃描電子顯微鏡觀察夾雜物三維形貌,并根據元素組成對夾雜物進行分類和形貌分析,對具有相同化學成分但不同三維形貌的夾雜物進行了表征和歸納。利用FactSage 7.0熱力學軟件,對不同夾雜物的平衡狀態進行了計算,研究了溫度和鋼液成分對于夾雜物平衡的影響,并得到相應的平衡相圖。結果表明,無水電解可以有效地將不銹鋼中夾雜物完整地提取出來,避免了金相法帶來的誤差,可以更加清晰的觀測夾雜物的三維形貌;經掃描電子顯微鏡觀察和測量,較大的氧化鋁夾雜物表面較為容易出現鈦元素的富集區域,且大部分夾雜物形貌主要為球狀和表面較為光滑的多面體狀,直徑一般不大于5 μm。通過熱力學計算得到,鋼中夾雜物的生成與鋼中元素質量分數密切相關,在1873 K時,Mg、Ti、Si元素質量分數的不同會導致生成不同的夾雜物。

     

  • 圖  1  不銹鋼中氧化鋁夾雜三維形貌

    Figure  1.  Three-dimensional morphology of the alumina inclusions in stainless steels

    圖  2  不銹鋼中氮化鈦夾雜三維形貌

    Figure  2.  Three-dimensional morphology of the titanium nitride inclusions in stainless steels

    圖  3  不銹鋼中鈦鋁夾雜三維形貌

    Figure  3.  Three-dimensional morphology of the titanium and aluminum inclusions in stainless steels

    圖  4  不銹鋼中鈦鋁夾雜(氮化鈦+氧化鋁)三維形貌高倍圖

    Figure  4.  Three-dimensional morphology of the titanium and aluminum inclusions (titanium nitride + alumina) in stainless steels at high magnification

    圖  5  不銹鋼中硅鋁夾雜三維形貌

    Figure  5.  Three-dimensional morphology of the silicon-aluminum inclusions in stainless steels

    圖  6  不銹鋼中鈣鋁夾雜三維形貌

    Figure  6.  Three-dimensional morphology of the calcium and aluminum inclusions in stainless steels

    圖  7  1873 K鋼中Al?O熱力學平衡曲線

    Figure  7.  Thermodynamic equilibrium curves of Al?O in steels at 1873 K

    圖  8  1873 K鋼中Al?Ti熱力學平衡曲線

    Figure  8.  Thermodynamic equilibrium curves of Al?Ti in steels at 1873 K

    圖  9  不同溫度下鋼中Ti?N熱力學平衡曲線

    Figure  9.  Thermodynamic equilibrium curves of Ti?N in steels at different temperatures

    圖  10  1873 K下鋼中Al?Si熱力學平衡曲線

    Figure  10.  Thermodynamic equilibrium curves of Al?Si in steels at 1873 K

    圖  11  1873 K下鋼中Al?Mg熱力學平衡曲線

    Figure  11.  Thermodynamic equilibrium curves of Al?Mg in steel at 1873 K

    表  1  AISI321不銹鋼化學成分(質量分數)

    Table  1.   Chemical composition of AISI321 stainless steels %

    CSiMnPSCrNiTiAlN
    0.030.371.130.0390.00219.148.760.3070.0260.02
    下載: 導出CSV
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  • 收稿日期:  2020-03-25
  • 刊出日期:  2020-12-25

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