Microstructure and strength of microporous MgO refractory aggregates with nano-sized pores

IF 2.2 4区 材料科学 Q2 MATERIALS SCIENCE, CERAMICS Journal of Asian Ceramic Societies Pub Date : 2023-04-03 DOI:10.1080/21870764.2023.2196825
Chongwen Wang, Wen Yan, J. Yan, Zhe Chen, Xiao Wang, Guangqiang Li
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Abstract

ABSTRACT In this work, microporous MgO refractory aggregates with nano-sized pores were prepared by in situ decomposition method using Mg(OH)2 as raw material. The effects of firing temperatures (1600–1700°C) and compacting pressures (100–200 MPa) on the microstructures and properties of microporous MgO refractory aggregates were thoroughly studied. The results showed that the microporous MgO refractory aggregates contained two types of pore structures, which were intra-particle pores with pore sizes of 180.0–230.0 nm formed by in situ decomposition of Mg(OH)2 and inter-particle pores with pore sizes of 1.5–3.0 μm derived from particle packing between Mg(OH)2 pseudomorph particles, respectively. Besides, the firing temperatures had a great influence on the intra-particle pore size and microcrystallite size. And the compacting pressures not only influenced the intra-particle pore size via packing behaviors but also affected the inner firing behaviors of the pseudomorph particles due to the increase in H2O vapor pressure. Overall, at a compacting pressure of 150 MPa and firing temperature of 1650°C, the sample had the best comprehensive performance with a bulk density of 1.92 g/cm3, a compressive strength of 11.9 MPa, an apparent porosity of 45.0%, a relative aggregate tube strength of 25.2% and a median pore size of 262.3 nm.
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纳米微孔MgO耐火材料集料的微观结构和强度
摘要本工作以Mg(OH)2为原料,采用原位分解法制备了具有纳米孔的微孔MgO耐火骨料。深入研究了烧制温度(1600–1700°C)和压实压力(100–200 MPa)对微孔MgO耐火骨料微观结构和性能的影响。结果表明,微孔MgO耐火骨料含有两种类型的孔结构,即粒内孔,孔径为180.0–230.0 通过原位分解Mg(OH)2和孔径为1.5–3.0的颗粒间孔隙形成的nm μm,分别来源于Mg(OH)2假晶颗粒之间的颗粒堆积。此外,焙烧温度对颗粒内孔径和微晶尺寸有很大影响。压实压力不仅通过堆积行为影响颗粒内的孔径,而且由于H2O蒸汽压力的增加影响了假晶颗粒的内部烧结行为。总体而言,在150 MPa的压实压力和1650°C的烧制温度下,样品具有最佳的综合性能,体积密度为1.92 g/cm3,抗压强度11.9MPa,表观孔隙率45.0%,相对集料管强度25.2%,中值孔径262.3 nm。
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来源期刊
Journal of Asian Ceramic Societies
Journal of Asian Ceramic Societies Materials Science-Ceramics and Composites
CiteScore
5.00
自引率
4.30%
发文量
78
审稿时长
10 weeks
期刊介绍: The Journal of Asian Ceramic Societies is an open access journal publishing papers documenting original research and reviews covering all aspects of science and technology of Ceramics, Glasses, Composites, and related materials. These papers include experimental and theoretical aspects emphasizing basic science, processing, microstructure, characteristics, and functionality of ceramic materials. The journal publishes high quality full papers, letters for rapid publication, and in-depth review articles. All papers are subjected to a fair peer-review process.
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