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Sinterability, microstructure and compressive strength of porous glass ceramics from metallurgical silicon slag and waste glass

机译:冶金硅矿渣和废玻璃多孔玻璃陶瓷的烧结性,微观结构和抗压强度

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Porous glass-ceramics have been prepared by the direct sintering of powder mixtures of metallurgical silicon slag and waste glass. The thermal behavior of silicon slag was examined by differential thermal analysis and thermogravimetry to clarify the foaming mechanism of porous glass-ceramics. The mass loss of silicon slag below 700 degrees C was attributed to the oxidation of amorphous carbon from residual metallurgical coke in the silicon slag, and the mass gain above 800 degrees C to the passive oxidation of silicon carbide. The porosity of sintered glass-ceramics was characterized in terms of the apparent density and pore size. By simply adjusting the content of waste glass and sintering parameters (i.e. temperature, time and heating rate), the apparent density changed from 0.4 g/cm(3) to 0.5 g/cm(3), and the pore size from 0.7 mm to 1.4 mm. In addition to the existing crystalline phases in the silicon slag, the gehlenite phase appeared in the sintered glass-ceramics. The compressive strength of porous glass-ceramics firstly increased and then decreased with the sintering temperature, reaching a maximal value of 1.8 MPa at 750 degrees C. The mechanical strength was primarily influenced by the crystallinity of glass-ceramics and the interfaces between the crystalline phases and the glassy matrix. These sintered porous glass-ceramics exhibit superior properties such as light-weight, heat-insulation and sound-absorption, and could found their potential applications in the construction decoration. (C) 2016 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
机译:通过冶金硅矿渣和废玻璃的粉末混合物的直接烧结制备多孔玻璃陶瓷。通过差分热分析和热重率来检查硅炉渣的热行为,以阐明多孔玻璃陶瓷的发泡机理。低于700摄氏度的硅渣的质量损失归因于硅渣中的残余冶金焦炭的无定形碳氧化,并且质量增益高于800℃,碳化硅的被动氧化。烧结玻璃陶瓷的孔隙率在表观密度和孔径方面表征。通过简单地调节废玻璃和烧结参数的含量(即温度,时间和加热速率),表观密度从0.4g / cm(3)变为0.5g / cm(3),孔径为0.7 mm 1.4毫米。除了硅渣中的现有结晶相之外,Gehlenite相对于烧结玻璃陶瓷出现。多孔玻璃陶瓷的抗压强度首先增加,然后随着烧结温度降低,在750℃下达到1.8MPa的最大值。机械强度主要受玻璃陶瓷的结晶度和结晶相之间的界面影响和玻璃状矩阵。这些烧结多孔玻璃陶瓷表现出优异的性质,例如轻质,隔热和吸声,并且可以在施工装饰中发现它们的潜在应用。 (c)2016 Elsevier Ltd和Techna Group S.R.L.版权所有。

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