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Low carbon containing Al2O3-C refractories with nanocarbon as the sole carbon source

机译:低碳含有Al2O3-C耐火剂,纳米碳作为唯一碳源

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The functional refractories used in the continuous casting process of steel are mostly made up of alumina (Al2O3) - carbon (C) system. Graphite is used as the main carbon source because of the properties it offered. Generally, these refractories contain about 30% residual carbon after coking. But the use of high carbon content leads to several disadvantages like carbon pickup by steel, high heat loss and generation of higher extent of COx gases, etc. Hence, the development of low carbon Al2O3-C refractories without conceding any beneficial properties is the challenge to the refractory technologists. Such a challenge is intended in current study with the use of nanocarbon as a complete alternative for graphite. The variation in physical, mechanical and thermo-mechanical properties with variation in amount of nanocarbon in the composition is studied. Phase analysis and micro-structural developments are also evaluated along with the oxidation resistance at different temperatures. Because of its high reactivity, nanocarbon helps to form in-situ ceramic phases at much lower temperatures thereby enhances strength and other properties. But the increase in amount of nanocarbon above 2% found to deteriorate the properties.
机译:连续铸造钢的功能耐火材料主要由氧化铝(Al2O3) - 碳(C)系统组成。由于提供的属性,石墨用作主要碳源。通常,这些耐火材料在焦化后含有约30%的残余碳。但是,使用高碳含量的使用导致碳拾取等几个缺点,如碳拾取,高热损失和较高程度的Cox气体等,因此,低碳Al2O3-C耐火材料的发育而不承认任何有益特性是挑战到耐火技术家。这种挑战在目前使用纳米碳作为石墨的完整替代方案的研究。研究了组合物中纳米碳量的变化的物理,机械和热机械性能的变化。还评估了相分析和微结构发展以及不同温度下的抗氧化性。由于其高反应性,纳米碳有助于在较低的温度下形成原位陶瓷相,从而提高强度和其他性质。但上面2%以上的纳米碳量的增加会劣化性质。

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