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Preparation and characterization of partially vitrified ceramic material

机译:部分玻璃化陶瓷材料的制备与表征

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摘要

In this contribution, we presented a systematical investigation and prepared partially vitrified ceramic foam materials using polymetallic ore tailings (POTs) and other waste as raw materials. More importantly, six different POTs were evaluated in terms of bloating behavior, besides, the effects of sintering temperature and fly ash (FA) content on the structure, physical-mechanical properties and chemical stability were investigated. Our results revealed that among all selected POTs, the BT2 sample exhibits the best bloating ability due to the formation of appropriate liquid content, which is favorable for forming stable pore structure. Increased sintering temperature can accelerate the liquid phase formation and the increase in pore size, resulting in higher porosity and lower bulk density. And the pore structure varies with the addition of FA relatively uniform pore size distribution, high porosity and high compressive strength can be well achieved in this way. Besides, the partial vitrification of ceramic foam materials contributes to an increase in chemical stability while also reducing the risk of environmental pollutions. Here, an excellent performance combination (low bulk density at 0.63 g/cm(3), high porosity at 73.6%, high compressive strength at 9.1 MPa) can be obtained in an optimized condition (15 wt % FA additions, sintering temperature at 1120 degrees C). The finding in this work, we believe, would provide guidance for rational utilization industrial wastes, which based on the synergistic complementarity effect between chemical components.
机译:在这一贡献中,我们通过多金属矿石尾矿(盆)和其他废物作为原料,提供了系统调查和准备部分玻璃化的陶瓷泡沫材料。更重要的是,在膨胀行为方面评估了六种不同的罐,除了烧结温度和飞灰(FA)含量对结构,物理机械性能和化学稳定性的影响。我们的研究结果表明,在所有选定的罐中,BT2样品由于形成适当的液体含量而表现出最佳膨胀能力,这有利于形成稳定的孔结构。增加的烧结温度可以加速液相形成和孔径的增加,导致孔隙率较高和较低的堆积密度。并且孔隙结构随着FA相对均匀的孔径分布而变化,可以通过这种方式良好地实现高孔隙率和高压压强度。此外,陶瓷泡沫材料的部分玻璃化有助于增加化学稳定性,同时降低了环境污染的风险。这里,优异的性能组合(低堆积密度为0.63g / cm(3),高孔隙率为73.6%,在优化条件下,在9.1MPa下的高压强度为9.1MPa)(15wt%加法,烧结温度为1120 C)。我们认为,在这项工作中的认识将为合理利用工业废物提供指导,基于化学成分之间的协同互补效果。

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