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Processing, structures and compressive properties of porous glass-ceramic composites prepared from secondary by-product materials

机译:由次要副产物材料制备的多孔玻璃陶瓷复合材料的加工,结构和压缩性能

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摘要

Glass cullet and blast furnace slag represent two particularly high volume by-products coming from the metallurgical and glass industries. The conversion of these wastes into porous glass-ceramics has been performed by the powder technique. The influence of temperature, SiC concentration and reaction time on the physical and mechanical property of porous glass-ceramics has been developed in three-dimensional representation. The load-displacement curves of porous glass-ceramics having densities between 0,95 and 1.15 g/cm~3 were smoother, presenting no serrations at the initial stage, than the ones having densities less than 0.95 g/cm~3. The deformation mode for these porous materials was mainly due to layer crushing process. The obtainment of this smooth shape was attributed to the formation of more glassy silica that leads to stronger bonding and pores sealing. The present technology does not require big investment and is suitable for the large scale manufacturing of a wide range of porous glass-ceramics for fire resistant, thermal and structural applications.
机译:玻璃碎玻璃和高炉矿渣是来自冶金和玻璃工业的两种特别大量的副产品。这些废物向粉末状微晶玻璃的转化已通过粉末技术进行。以三维表示法研究了温度,SiC浓度和反应时间对多孔玻璃陶瓷物理力学性能的影响。密度在0.95g / cm〜3之间的多孔玻璃陶瓷的载荷-位移曲线比密度小于0.95g / cm〜3的载荷-位移曲线更平滑,在初始阶段没有锯齿。这些多孔材料的变形模式主要是由于层破碎过程。获得这种光滑的形状归因于形成更多的玻璃状二氧化硅,从而导致更强的结合力和孔洞密封性。本技术不需要大量投资,并且适合于大规模制造用于防火,热和结构应用的各种多孔玻璃陶瓷。

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