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Microstructural refinement in spark plasma sintering 3Y-TZP nanoceramics

机译:火花等离子体烧结3Y-TZP纳米陶瓷的微观结构细化

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A commercial 3Y-TZP nanopowder was consolidated by spark plasma sintering (SPS) techniques. By special die-upset designs, each possible influence from the electric field, uniaxial pressure and heating rate was peeled to identify its contribution. Besides density and grain growth, the evolution of pore structure was consulted to clarify the relationships between microstructural development and densification kinetics. The results showed that neither electric current nor fast heating had no decisive contributions while external force was a necessity for the microstructural refinement. The authors proposed that the essentially underlying mechanism was the intensive particle rearrangement, which involves no grain growth but particle close-packing through grain rotation and sliding. The full advantages of this mechanism can be taken in rapid heating conditions, which combined with the application of higher pressures, make the SPS family of techniques to have advancement in the preparations of nanoceramics over their conventional counterparts characterized by slow heating features. (C) 2016 Elsevier Ltd. All rights reserved.
机译:通过火花等离子体烧结(SPS)技术合并商业3Y-TZP纳米粉末。通过特殊的模具镦锻设计,剥离了电场,单轴压力和加热速率的每个可能的影响,以识别其贡献。除了密度和谷物生长外,咨询了孔隙结构的演变,以阐明微观结构发育和致密化动力学之间的关系。结果表明,电流和快速加热都没有决定性的贡献,而外力是微观结构细化的必要性。作者提出基本上潜在的机制是密集的颗粒重排,这涉及通过晶粒旋转和滑动的颗粒闭合粒子。这种机制的完整优点可以在快速加热条件下采取,与较高压力的应用相结合,使SPS系列技术在其常规对应物中具有慢速加热特征的常规对应物中的纳米陶瓷的制剂。 (c)2016 Elsevier Ltd.保留所有权利。

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