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Development of an Ultra-Low Carbon MgO Refractory Doped with α-Al2O3 Nanoparticles for the Steelmaking Industry: A Microstructural and Thermo-Mechanical Study

机译:含α-Al2O3纳米粒子的超低碳MgO耐火材料的开发用于炼钢工业:微观结构和热机械研究

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摘要

The effect of α-Al O nanoparticles (up to 5 wt.%) on the physical, mechanical, and thermal properties, as well as on the microstructural evolution of a dense magnesia refractory is studied. Sintering temperatures at 1300, 1500, and 1600 °C are used. The physical properties of interest were bulk density and apparent porosity, which were evaluated by the Archimedes method. Thermal properties were examined by differential scanning calorimetry. The mechanical behavior was studied by cold crushing strength and microhardness tests. Finally, the microstructure and mineralogical qualitative characteristics were studied by scanning electron microscopy and X-ray diffraction, respectively. Increasing the sintering temperature resulted in improved density and reduced apparent porosity. However, as the α-Al O nanoparticle content increased, the density and microhardness decreased. Microstructural observations showed that the presence of α-Al O nanoparticles in the magnesia matrix induced the magnesium-aluminate spinel formation (MgAl O ), which improved the mechanical resistance most significantly at 1500 °C.
机译:研究了α-AlO纳米颗粒(最多5 wt。%)对物理,机械和热性能以及致密氧化镁耐火材料微观结构演变的影响。使用的烧结温度为1300、1500和1600°C。感兴趣的物理性质是堆积密度和表观孔隙率,这是通过阿基米德方法评估的。通过差示扫描量热法检查热性质。通过冷压强度和显微硬度测试研究了机械性能。最后,分别通过扫描电子显微镜和X射线衍射研究了显微组织和矿物学定性特征。烧结温度的提高导致密度的提高和表观孔隙率的降低。然而,随着α-AlO纳米颗粒含量的增加,密度和显微硬度降低。显微组织观察表明,氧化镁基质中存在α-AlO纳米颗粒会诱导铝酸镁尖晶石的形成(MgAl O),这在1500°C时可显着提高机械强度。

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