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Micro structural and mechanical characterization of Nb-based in situ composites from Nb-Si-Ti ternary system

机译:Nb-Si-Ti三元体系Nb基原位复合材料的微观结构和力学表征

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This study deals with the Nb-niobium silicide-based composites developed by the hot-pressing of Nb-Si-Ti ternary powder mixtures with a fixed Ti addition (6 at. percent) and Si content ranging from hypereutectic (11 at. percent) to near-eutectic compositions (18 at. percent). The effects of Si content, Ti addition and strain rates on the sample microstructural characterization, flexural strength, fracture toughness, quasi-static compressive deformation and failure processes were investigated. It was revealed that the volume fraction of silicides increased with increasing Si content, and most of the Ti atoms dissolved into the niobium silicides to form (Nb,Ti)_5Si_3 solid solutions instead of binary titanium silicides. The experimental evidence showed that a moderate improvement in the flexural strength, fracture toughness and compressive yield stress of the composites was achieved by the addition of Ti. Higher Si additions produced a much more remarkable enhancement in the compressive yield stress and bulk hardness, whereas both the flexural strength and fracture toughness decreased with increasing Si content owing to the existence of residual porosities in the samples. The composites showed remarkable superiority to the arc-melted Nb-Si alloys and monolithic niobium silicides in fracture toughness (8.3-13.0 MPa m~(1/2) vs. 4.5 MPa m~(1/2)), where the toughening effect was attributed mainly to crack bridging and crack deflection by the remaining ductile Nb phase. Moreover, quasi-static uniaxial compression tests at strain rates between 10~(-5) and 10~(-3) s~(-1) indicated that the deformation behavior and failure processes were significantly affected by Si content and strain rates. The strain-rate-hardening behavior for all the strain rates was observed in the composite materials and the strain-rate sensitivity decreased with increasing Si content. At a lower strain rate, the composite materials with a hypoeutectic Si composition failed with a pseudoplastic response and at an angle of approx 45 deg off the compressive loading direction. However, in the case of higher strain rate and Si content, the brittle failure in the samples occurred through vertical splitting and spalling of fragments.
机译:本研究涉及通过热压 Nb-Si-Ti 三元粉末混合物开发的 Nb-Si-Ti 三元粉末混合物,其 Ti 添加量为 6 %,Si 含量范围从超共晶 (11 at. %)到近共晶成分 (18 at. %)。研究了Si含量、Ti添加量和应变速率对试样微观结构表征、弯曲强度、断裂韧性、准静态压缩变形和破坏过程的影响。结果表明,硅化物的体积分数随着Si含量的增加而增加,大部分Ti原子溶解在硅化铌中,形成(Nb,Ti)_5Si_3固溶体,而不是二元硅化钛。实验证据表明,Ti的添加对复合材料的弯曲强度、断裂韧性和压缩屈服应力都有一定程度的改善,Si添加量越高,压缩屈服应力和体积硬度都有显著提高,而随着Si含量的增加,试样中存在残余孔隙,抗弯强度和断裂韧性均随Si含量的增加而降低。复合材料的断裂韧性明显优于电弧熔融的Nb-Si合金和整体硅化铌(8.3-13.0 MPa m~(1/2) vs. 4.5 MPa m~(1/2)),增韧效果主要归因于剩余延展性Nb相的裂纹桥接和裂纹偏转。此外,在10~(-5)和10~(-3) s~(-1)应变速率下的准静态单轴压缩试验表明,Si含量和应变速率对变形行为和破坏过程有显著影响。在复合材料中观察到所有应变速率的应变速率硬化行为,应变速率敏感性随着Si含量的增加而降低。在较低的应变速率下,具有亚共晶Si成分的复合材料以假塑性响应失效,并且与压缩载荷方向成约45度角。然而,在较高应变率和Si含量的情况下,样品的脆性破坏是通过碎片的垂直分裂和剥落发生的。

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