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Ti-Mg復合脫氧和硫含量對鋼中夾雜物特征及MnS析出行為的影響

Effects of Ti-Mg complex deoxidation and sulfur content on the characteristics of inclusions and the precipitation behavior of MnS

  • 摘要: 采用掃描電鏡/能譜儀表征了管線鋼中夾雜物的形貌、尺寸、成分及數量,考察了不同Ti/Mg比的鋼中夾雜物特征、硫含量及脫氧產物數量對MnS析出行為的影響,并進行了熱力學計算.結果表明:Ti-Mg脫氧鋼中夾雜物以MgO-Al2O3-Ti2O3、MgO-Ti2O3或MgO為核心,表面包裹或局部析出MnS,粒徑小于1.3μm,數量為300~450 mm-2,形貌為圓形、多邊形和方形;夾雜物中Ti/Mg原子數比為0.05~0.2時,夾雜物細小且近圓形;隨硫含量減少,凝固過程中MnS析出傾向減小,MnS在夾雜物表面由包裹析出向局部析出轉變,提高氧化物夾雜數量,有利于細小MnS的包裹或局部異質形核;Ti-Mg復合脫氧產物細小、彌散,可作為MnS異質形核核心,可同時降低MnS及氧化物的危害.

     

    Abstract: The morphology, size, composition, and number of inclusions in pipeline steel were characterized by scanning electron microscopy and energy dispersive spectroscopy. The characteristics of the inclusions with different Ti/Mg ratios as well as the influence of sulfur content and the number of deoxidation products on the precipitation behavior of MnS were investigated, and the corresponding thermodynamic calculations were carried out. It is found that the core of the inclusions is mainly composed of MgO-Al2O3-Ti2O3, MgO-Ti2O3 or MgO, and then MnS wraps or locally precipitates on them. The inclusions have the average size smaller than 1.3 txm and the number of 300 to 450 mm-2; moreover, their morphology is diverse such as round, polygonal and square. When the Ti/Mg atomic ratio is 0.05 to 0.2, the inclusions are round and small. With the decrease of sulfur content, MnS less tends to precipitate during solidification, its ways of precipitation on the inclusion surface will change from wrapped to local precipitated. A great number of oxides is conducive to the heterogeneous nucleation of more finely MnS on the surface of complex oxides. The Ti-Mg complex deoxidation products are small and dispersed, can become the heterogeneous nucleation core of MnS, and may reduce the harm of MnS and oxides at the same time.

     

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