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Combustion synthesis of B4C/Al2O3/C composite powders and their effects on properties of low carbon MgO-C refractories

机译:B4C / Al2O3 / C复合粉末的燃烧合成及其对低碳MgO-C耐火性能的影响

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摘要

To improve the dispersity and oxidation resistance of nano carbon black (CB) in low carbon MgO-C refractories, B4C/Al2O3/C composite powders were prepared by a combustion synthesis method using B2O3, CB and Al powders as the raw materials. The phase compositions and microstructures of the synthesized products were characterized by X-ray diffraction (XRD), Raman spectroscopy, and a scanning electron microscopy/energy dispersive spectrometry (SEM/EDS). The results show that an 80 wt% excess of CB is the maximum amount of CB that can be added under the condition of a self-propagating combustion wave, and the phase compositions of the products are B4C, alpha-Al2O3 and CB. B4C particles with uniform sizes and cubic polyhedral structures are embedded in the Al2O3 matrix. The combustion-synthesized B4C/Al2O3/C powders and mechanically mixed B4C/Al2O3/C powders were added to the low carbon MgO-C refractories, and their corresponding properties were compared. The apparent porosity (AP) of the refractories with the synthesized powders (labelled as M3) is lower than those of the refractories with mechanically mixed powders (labelled as M2) and without composite powders (labelled as M1). The oxidation ratio and slag erosion depth of M3 were lower than those of M2 and M1. The thickness of the decarburized layer of M3 was 10.2% and 22.4% less than that of M2 and M1, respectively. The penetration depth of M3 was 12.0% and 27.9% less than that of M2 and M1, respectively. The thermal shock resistance of M3 was better than that of M2 and M1. The residual strength ratio of M3 was 15.8% and 17.2% more than that of M2 and M1, respectively. These results suggest that the combustion-synthesized B4C/Al2O3/C composite powders can be used as new and promising additives for low carbon MgO-C refractories.
机译:为了改善低碳MgO-C耐火材料中纳米炭黑(CB)的分散性和抗氧化性,通过使用B2O3,CB和Al粉末作为原料,通过燃烧合成方法制备B4C / Al 2 O 3 / C复合粉末。通过X射线衍射(XRD),拉曼光谱和扫描电子显微镜/能量分散光谱法(SEM / EDS)表征合成产物的相组合物和微观结构。结果表明,80wt%过量的Cb是可以在自增殖燃烧波的条件下添加的Cb的最大量,并且产品的相组合物是B4C,α-Al2O3和Cb。具有均匀尺寸和立方多面体结构的B4C颗粒嵌入Al2O3基质中。将燃烧合成的B4C / Al 2 O 3 / C粉末和机械混合的B4C / Al 2 O 3 / C粉末加入低碳MgO-C耐火材料中,并进行了相应的性质。用合成粉末(标记为M3)的耐火材料的表观孔隙率(Ap)低于具有机械混合粉末(标记为M2)的耐火材料的耐火材料,而无需复合粉末(标记为M1)。 M3的氧化比和熔渣侵蚀深度低于M2和M1。脱碳层的M3层的厚度分别比M2和M1的厚度为10.2%和22.4%。 P3的渗透深度分别为12.0%,分别低于M2和M1的12.0%和27.9%。 M3的热抗冲击性优于M2和M1的热抗冲击性。 M3的残余强度比分别为15.8%,分别比M2和M1的约17.2%。这些结果表明,燃烧合成的B4C / Al 2 O 3 / C复合粉末可用作低碳MgO-C耐火材料的新型和有前途的添加剂。

著录项

  • 来源
    《CERAMICS INTERNATIONAL》 |2019年第13期|共9页
  • 作者单位

    Xian Univ Architecture &

    Technol Coll Mat Sci &

    Engn Xian 710055 Shaanxi Peoples R China;

    Xian Univ Architecture &

    Technol Coll Mat Sci &

    Engn Xian 710055 Shaanxi Peoples R China;

    Xian Univ Architecture &

    Technol Coll Mat Sci &

    Engn Xian 710055 Shaanxi Peoples R China;

    Xian Univ Architecture &

    Technol Coll Mat Sci &

    Engn Xian 710055 Shaanxi Peoples R China;

    Xian Univ Architecture &

    Technol Coll Mat Sci &

    Engn Xian 710055 Shaanxi Peoples R China;

    Xian Univ Architecture &

    Technol Coll Mat Sci &

    Engn Xian 710055 Shaanxi Peoples R China;

    Xian Univ Architecture &

    Technol Coll Mat Sci &

    Engn Xian 710055 Shaanxi Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 陶瓷工业;硅酸盐工业;
  • 关键词

    B4C/Al2O3/C; Combustion synthesis; Low carbon MgO-C refractories;

    机译:B4C / AL2O3 / C;燃烧合成;低碳MgO-C耐火材料;

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