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Fabrication and mechanical properties of Al_2O_3/Ti(C_(0.7)N_(0.3)) nanocomposites

机译:Al_2O_3 / Ti(C_(0.7)N_(0.3))纳米复合材料的制备及力学性能

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摘要

Two kinds of Al_2O_3/Ti(C_(0.7)N_(0.3)) nanocomposites were fabricated with traditional hot pressed sintering and repetitious-hot-pressing technology, one is added with nano-scale SiC, and the other is without SiC. The results showed that the mechanical properties of the former are higher than that of the latter, especially the fracture toughness can reach up to 8.3 MPa m~(1/2). Although the fracture toughness remains high, repetitious-hot-pressing results in the reduction of flexural strength. The improvement of the mechanical properties is interpreted from the different microstructure and fracture mode. The microstructure shows that the addition of nano-scale Ti(C_(0.7)N_(0.3)) and nano-scale SiC lead to the refinement of matrix grain, and the inter/intragranular microstructure can be formed instead of the intergranular microstructure in monolithic alumina. The higher fracture toughness resulted mainly from the transgranular fracture mode.
机译:采用传统的热压烧结和重复热压技术制备了两种Al_2O_3 / Ti(C_(0.7)N_(0.3))纳米复合材料,一种是添加纳米级SiC,另一种是不添加SiC。结果表明,前者的力学性能高于后者,尤其是断裂韧性可达到8.3 MPa m〜(1/2)。尽管断裂韧性仍然很高,但是重复热压导致弯曲强度降低。力学性能的提高可从不同的微观结构和断裂模式来解释。显微组织表明,纳米级Ti(C_(0.7)N_(0.3))和纳米级SiC的加入导致基体晶粒的细化,并且可以形成整体/晶粒间的微观结构,而不是整体的晶粒间的微观结构。氧化铝。较高的断裂韧性主要是由经晶断裂模式引起的。

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