首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Delineating Brittle-Phase Embrittlement and Ductile-Phase Toughening in Nb-Based In-Situ Composites
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Delineating Brittle-Phase Embrittlement and Ductile-Phase Toughening in Nb-Based In-Situ Composites

机译:基于Nb的原位复合材料的脆性脆化和韧性相韧化

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摘要

The fracture toughness of Nb-based in-situ composites typically decreases with increasing volume fractions of hard intermetallic phases, despite the presence of a ductile niobium solid-solution phase in the microstructure. For composites with a continuous intermetallic matrix, the fracture toughness can be more than double that of the monolithic intermetallics, but is still low in absolute terms, indicating that the solid-solution phase is not very effective in inducing ductile-phase toughening. The lack of enhancement of the fracture resistance appears to arise from an embrittlement effect instigated by the brittle phases in the microstructure, whose nondeformability results in a high plastic constraint acting on the ductile phase. In this article, an analytical model is developed for treating both brittle-phase embrittlement and ductile-phase toughening in terms of constituent properties and microstructural variables. The model is them used to (1) delineate brittle-phase embrittlement and ductile-phase toughening in Nb-based in-situ composites, and (2) design fracture-resistant in-situ composites based on Nb-Ti-Cr, Nb-Ti-Al, and Nb-Ti-Si systems.
机译:尽管在微观结构中存在延性铌固溶相,但Nb基原位复合材料的断裂韧性通常会随着硬金属间相体积分数的增加而降低。对于具有连续金属间基体的复合材料,断裂韧性可以是整体金属间化合物的断裂韧性的两倍以上,但绝对值仍然较低,这表明固溶相在诱导延性相增韧方面不是非常有效。缺乏抗断裂性的增强似乎是由于微结构中的脆性相引起的脆化作用引起的,其脆性不可变形导致对塑性相起作用的高塑性约束。在本文中,开发了一种用于分析脆性相脆化和延性相增韧的分析模型,其成分特性和微观结构变量均得到了解决。该模型用于(1)描绘Nb基原位复合材料的脆性脆化和韧性相韧化,以及(2)基于Nb-Ti-Cr,Nb-的抗断裂原位复合材料的设计。 Ti-Al和Nb-Ti-Si系统。

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