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Effect of Superplastic Deformation on the Properties of Zirconia Dispersed Alumina Nanocomposite

机译:超塑性变形对氧化锆分散氧化铝纳米复合材料性能的影响

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In this paper constrained extrusion of the zirconia dispersed alumina nanocomposite under superplastic conditions was conducted. The mechanical properties of deformed material were studied and its results were compared with those of the initial materials. The microstructure evolution during superplastic deformation was also analyzed. The results demonstrated that after superplastic extrusion the flexural strength, relative density, Vickers hardness as well as fracture toughness of the material increased noticeably. The flexural strength of the deformed composite even retained at a high value of 310MPa at 800°C. The fracture toughness of the material increased from 6.92 MPa·m{sup}(1/2) to 8.87 MPa·m{sup}(1/2) after deformation. After superplastic extrusion due to grain boundary sliding and the compressive stress state, the internal porosities in as-sintered materials were eliminated. During extrusion with grain coarsening the effect of t-ZrO{sub}2 to m-ZrO{sub}2 transformation toughening increased because more zirconia grains reached the critical dimension. Although grain coarsening may cause the decrease of the fracture toughness in some extent, the phase transformation toughening and strengthening dominated. As a result, the mechanical properties of the deformed material were improved.
机译:在本文中,对氧化锆分散的氧化铝纳米复合材料进行了约束,在超塑性条件下进行了挤出。研究了变形材料的机械性能,并将其结果与初始材料的结果进行了比较。还分析了超塑性变形期间的微观结构演化。结果表明,在超塑性挤出后,弯曲强度,相对密度,维氏硬度以及材料的断裂韧性显着增加。变形复合材料的弯曲强度甚至在800℃下以310MPa的高值保留。在变形后,材料的断裂韧性从6.92MPa·m {sup}(1/2)增加到8.87mPa·m {sup}(1/2)。在由于晶界滑动和压缩应力状态引起的超塑性挤出之后,消除了烧结材料中的内部孔隙率。在挤出晶粒期间,粗糙化T- ZrO {Sub} 2至M-ZrO {Sub} 2的效果增加,因为更多氧化锆谷物达到临界尺寸。虽然晶粒粗化可能在一定程度上导致断裂韧性降低,但相变增韧和强化占主导地位。结果,改善了变形材料的机械性能。

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