期刊论文详细信息
Micro & nano letters
Densification behaviour and microstructure of spark plasma sintered alumina–mullite nanocomposite
article
Ali Sedaghat Ahangari Hossein Zadeh1  Ehsan Taheri-Nassaj2 
[1] Department of Ceramic, Materials & Energy Research Centre;Department of Materials Engineering, Tarbiat Modares University
关键词: silicon compounds;    nanocomposites;    sintering;    ceramics;    Vickers hardness;    alumina;    grain size;    densification;    fracture toughness;    plasma materials processing;    nanostructured materials;    nanofabrication;    SPS technique;    alumina composite;    submicron-sized grains;    nanocrystalline grains;    densification behaviour;    spark plasma sintering;    consolidation technique;    high heating;    cooling rates;    uniaxial applied pressure;    short processing time;    novel microstructures;    conventional process;    alumina-mullite nanocomposite;    ceramics;    ground-shaped clusters;    Vickers hardness;    fracture toughness;    temperature 1600.0 degC;    size 0.5 mum;    Al2O3-SiO2-Al2O3;   
DOI  :  10.1049/mnl.2018.5757
学科分类:计算机科学(综合)
来源: Wiley
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【 摘 要 】

Spark plasma sintering (SPS) is a consolidation technique that combines high heating and cooling rates with a uniaxial applied pressure which results in short processing time. SPS is successful in producing ceramics with novel microstructures, which are often reported to be made at temperatures lower than ones used in conventional densification techniques. In this work, the densification and microstructure development sequences of the alumina–15 vol% mullite composite during the SPS and the conventional process were compared. Through SPS technique, the fully dense 0.5 µm grain sized alumina composite (99.5% T.D.) was obtained at 1600°C and its microstructure exhibited nanocrystalline in submicron-sized grains. The nanocrystalline grains were arranged in ground-shaped clusters. Vickers hardness and fracture toughness values for spark plasma sintered composite were calculated as 2098 ± 66 kgf/mm 2 and 3.61 ± 0.06 MPa m 1/2 , respectively.

【 授权许可】

CC BY|CC BY-ND|CC BY-NC|CC BY-NC-ND   

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