首页> 外文会议>EPRI s International Conference on Advances in Materials Technology for Fossil Power Plants;International 123HiMAT Conference on High-Temperature Materials >MICROMECHANICS OF Co-Nb LAVES PHASES: STRENGTH, FRACTURE TOUGHNESS, AND HARDNESS AS FUNCTION OF COMPOSITION AND CRYSTAL STRUCTURE
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MICROMECHANICS OF Co-Nb LAVES PHASES: STRENGTH, FRACTURE TOUGHNESS, AND HARDNESS AS FUNCTION OF COMPOSITION AND CRYSTAL STRUCTURE

机译:Co-NB Laves阶段的微机械:强度,断裂韧性和硬度作为组成和晶体结构的功能

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Laves phases are intermetallic phases well known for their excellent strength at high temperatures but also for their pronounced brittleness at low temperatures. Especially in high-alloyed steels, Laves phases were long time regarded as detrimental phases as they were found to embrittle the material. Perusing the more recent literature, it seems the negative opinion about the Laves phases has changed during the last years. It is reported that, if the precipitation morphology is properly controlled, transition metal-based Laves phases can act as effective strengthening phases in heat-resistant steels without causing embrittlement. For a targeted materials development, the mechanical properties of pure Laves phases should be known. However, the basic knowledge and understanding of the mechanical behavior of Laves phases is very limited. Here we present an overview of experimental results obtained by micromechanical testing of single-crystalline NbCo_2 Laves phase samples with varying crystal structure, orientation, and composition. For this purpose, diffusion layers with concentration gradients covering the complete homogeneity ranges of the hexagonal C14, cubic C15 and hexagonal C36 NbCo_2 Laves phases were grown by the diffusion couple technique. The hardness and Young's modulus of NbCo_2 were probed by nanoindentation scans along the concentration gradient. Single-phase and single crystalline microcantilevers and micropillars of the NbCo_2 Laves phase with different compositions were cut in the diffusion layers by focused ion beam milling. The fracture toughness and the critical resolved shear stress (CRSS) were measured by in-situ microcantilever bending tests and micropillar compression tests, respectively. The hardness, Young's modulus and CRSS are nearly constant within the extended composition range of the cubic C15 Laves phase, but clearly decrease when the composition approaches the boundaries of the homogeneity range where the C15 structure transforms to the off-stoichiometric, hexagonal C36 and C14 structure on the Co-rich and Nb-rich, respectively. In contrast, microcantilever fracture tests do not show this effect but indicate that the fracture toughness is independent of crystal structure and chemical composition of the NbCo_2 Laves phase.
机译:Laves阶段是在高温下众所周知的金属间相,其优异的强度,而且在低温下它们的发音脆性也是如此。特别是在高合金钢钢中,Laves阶段很长时间被认为是因为它们被发现蚕食物质而受损阶段。仔细阅读最近的文献,似乎对救生队阶段的否定意见在过去几年中发生了变化。据报道,如果沉淀形态​​被适当控制,过渡金属基熔化阶段可以用作耐热钢中的有效加强相,而不会引起脆化。对于靶向材料的开发,应已知纯粹疏浚阶段的机械性能。然而,对疏浚阶段的力学行为的基本知识和理解非常有限。在这里,我们展示了通过具有不同晶体结构,取向和组成的单晶NBCO_2 Laves期样品获得的实验结果概述。为此目的,通过扩散耦合技术生长覆盖覆盖六方C14,立方C15和六边形C36 NBCO_2 Laves阶段的完全均匀性范围的浓度梯度的扩散层。通过沿浓度梯度纳米茚满扫描探测NbCO_2的硬度和杨氏模量。通过聚焦离子束铣削在扩散层中切割具有不同组成的NBCO_2 Laves相的单相和单晶微型膜和微小针。通过原位微静电弯曲试验和微钙压缩试验分别测量断裂韧性和临界分离的剪切应力(CRS)。硬度,杨氏模量和CRS在立方C15熔接阶段的扩展组合范围内几乎是恒定的,但是当组合物接近C15结构转化为脱离化学计量的六边形C36和C14的均匀性范围的边界时明显降低分别对共同富含和非NB的结构。相比之下,微静电裂缝试验没有显示出这种效果,而是表明断裂韧性与Nbco_2熔融阶段的晶体结构和化学成分无关。

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