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Strengthening of Al2O3-C slide gate plate refractories with microcrystalline graphite

机译:用微晶石墨加强Al2O3-C滑动栅极板耐火材料

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摘要

The novel carbon sources (including nano-carbon black, carbon nanotubes and graphene oxide nanosheets, etc.) have been extensively researched in low carbon Al2O3-C refractory systems. In the present work, ultrafine microcrystalline graphite (UMCG) and nickel-loaded ultrafine microcrystalline graphite (NMCG) were added into low carbon Al2O3-C slide gate plate refractories to partially replace graphite flake (GF), respectively. The mechanical properties, phase compositions and microstructures were investigated by three-point bending test, X-ray diffraction, scanning electron microscopy, transmission electron microscopy and energy dispersive X-ray spectroscopy. Also, the reaction mechanisms of in-situ formed ceramic phases were discussed by thermodynamic analysis. The results indicate that the existence of UMCG powders can facilitate the in-situ formation of intertwined ceramic whiskers, leading to increased densification and mechanical properties of low carbon Al2O3-C slide gate plate. Moreover, multi-walled carbon nanotubes and ceramic phases intensively interlock with each other in the Al2O3-C refractories containing NMCG powders, which results in their better mechanical properties; the cold modulus of rupture are 36.03 +/- 0.12 MPa and 32.14 +/- 0.17 MPa for the specimens after coking at 1200 degrees C and 1350 degrees C, respectively. This work puts forward a practical application for the microcrystalline graphite as a candidate carbon source in Al2O3-C slide gate plate refractories.
机译:在低碳Al2O3-C耐火系统中广泛地研究了新型碳源(包括纳米炭黑,碳纳米管和石墨烯纳米烯片等)。在本作工作中,将超细微晶石墨(UMCG)和镍加载的超细微晶石墨(NMCG)加入低碳Al2O3-C滑块耐火材料中,分别替换石墨片(GF)。通过三点弯曲试验,X射线衍射,扫描电子显微镜,透射电子显微镜和能量分散X射线光谱研究了机械性能,相相组合物和微结构。此外,通过热力学分析讨论了原位形成陶瓷相的反应机制。结果表明,UMCG粉末的存在可以促进交织陶瓷晶须的原位形成,从而增加了低碳AL2O3-C滑块的致密化和机械性能。此外,多壁碳纳米管和陶瓷阶段在含有NMCG粉末的Al 2 O 3-C耐火材料中彼此强烈互锁,这导致其更好的机械性能;在1200℃和1350摄氏度下焦化后,凝结的寒冷模量为36.03 +/- 0.12MPa和32.14 +/- 0.17MPa。这项工作提出了微晶石墨的实际应用,作为Al2O3-C滑块耐火材料中的候选碳源。

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