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首页> 外文期刊>Journal of the European Ceramic Society >Design of alumina-zirconia composites with spatially tailored strength and toughness
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Design of alumina-zirconia composites with spatially tailored strength and toughness

机译:具有空间定制强度和韧性的氧化铝-氧化锆复合材料的设计

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摘要

Composites of Al2O3-5 vol.% t-ZrO2 (ATZ) and Al2O3-30 vol.% m-ZrO2 (AMZ) layers were designed with 3-1 connectivity to explore the effect of spatially-dependent residual stress and layer distribution on mechanical behavior. ATZ composites with 'shallow' and 'deep' regions of AMZ, defined relative to the distance from the surface, were fabricated. Four-point bending tests on indented 3-1 composites showed crack arrest in the first compressive AMZ layer and a fracture strength nearly independent of indent size (i.e. minimum strength); the failure occurring in the region with thicker outer ATZ layers ('deep' region). Region dependent crack growth resistance was measured on SEVNB specimens and compared to theoretical predictions using a fracture mechanics model. Spatially tailored constant strengths were obtained, ranging between 148 MPa and 470 MPa; the maximum value corresponding to a 'shallow' region with a relatively thicker AMZ compressive layer embedded close to the tensile ATZ surface. The 3-1 design concept allows the fabrication of `deep' and 'shallow' embedded regions within a unique composite architecture, thus providing a preferential path for crack propagation, opening new possibilities for design of composite structures with spatially-tailored crack growth resistance. (C) 2014 Elsevier Ltd. All rights reserved.
机译:设计Al2O3-5体积百分比的t-ZrO2(ATZ)和Al2O3-30体积百分比的m-ZrO2(AMZ)层的复合材料,其具有3-1连通性,以探索空间依赖性残余应力和层分布对机械强度的影响行为。制备了具有相对于与表面的距离定义的AMZ的“浅”和“深”区域的ATZ复合材料。对3-1压痕复合材料的四点弯曲试验表明,在第一压缩AMZ层中出现了裂纹停止现象,其断裂强度几乎与压痕尺寸(即最小强度)无关。故障发生在ATZ外部较厚的区域(“较深”区域)。在SEVNB样品上测量了与区域有关的裂纹扩展阻力,并使用断裂力学模型与理论预测值进行了比较。获得了空间定制的恒定强度,范围在148 MPa至470 MPa之间。最大值对应于一个“浅”区域,该区域在AMZ压缩层附近嵌入了相对较厚的AMZ压缩层。 3-1设计概念允许在独特的复合结构中制造“深”和“浅”的嵌入式区域,从而为裂纹扩展提供了一条优先路径,为设计具有空间定制的抗裂纹扩展性的复合结构开辟了新的可能性。 (C)2014 Elsevier Ltd.保留所有权利。

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