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Fabrication and characterization of nano-Y203 and AI2O3 dispersed W-Ni alloys by mechanical alloying and pressureless conventional sintering

机译:通过机械合金化和无压传统烧结制备和表征纳米Y203和Ai2O3分散的W-Ni合金

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Nano Y2O3 and AI2O3 dispersed W-Ni alloys with nominal composition of W_(89)Ni_(10) (Y2O30)1 (alloy A), W_(89)Ni_(10) (Al2O3)1 (alloy B) were mechanically alloyed for 10 h followed by compaction at 0.5 GPa pressure with 5 min of dwell time and conventional sintering at 1400°C with 2 h soaking time in Ar atmosphere with Ar flow rate of 100 ml/min. The microstructure of milled and sintered alloy was investigated using X-ray Diffraction (XRD), Scanning electron Microscopy (SEM), Energy dispersive spectroscopy (EDS) and Elemental mapping. Minimum crystallite size of 31.9 nm and maximum lattice strain, dislocation density of 0.23%, 9.12(10~_(16)/m~2) respectively was found in alloy A at 10 h of milling. Uneven and coarse particles at 0 h of milling converted to elongated flake shape at 10 h of milling. Bimodal (fine and coarse) particle size distribution is revealed in both the alloys and minimum particle size of 0.69 um is achieved in 10 hmilled alloy A. Evidences of formation of intermetallic phases like Y2WO6, Y6WO_(12) and Y_(10)W2O_(21) in sintered alloy A and Al2(WO4)3, NiAl_(10)O_(16), NiAl2O4 and AIWO4 in sintered alloy B were revealed by XRD pattern and SEM micrograph. Minimum grain size of 1.50 μm was recorded in sintered alloy A. Both faceted and spherical W matrix is evident in both the alloys which suggests occurrence of both solid phase and liquid phase sintering. Maximum % relative sintered density and hardness of 85.29% and 5.13 GPa respectively was found in alloy A. Wear study at 20N force at 25 rpm for 15 min on ball on plate wear tester revealed that minimum wear depth (48.99 um) and wear track width (272 um) was found for alloy A as compared to alloy B.
机译:纳米Y2O3和Ai2O3分散的W-Ni合金,具有标称组成的W_(89)Ni_(10)(Y 2 O 3)1(合金A),W_(89)Ni_(10)(Al 2 O 3)1(Al 2 O 3)1(合金B)被机械合金化10小时,然后在0.5GPa压力下压实5分钟的停留时间和在1400℃的常规烧结,在AR气氛中为2小时,AR流速为100毫升/分钟。研究了使用X射线衍射(XRD),扫描电子显微镜(SEM),能量分散光谱(EDS)和元素映射研究了研磨和烧结合金的微观结构。最小微晶尺寸为31.9nm和最大晶格应变,分别在10小时的合金A中发现0.23%,9.12(10〜(16)/ m〜2)的位错密度。在铣削10小时的铣削中,在铣削的0小时下不均匀和粗颗粒。在10 hmilled合金A中实现了0.69μm的合金和最小粒径的双峰(细小和粗糙)粒度分布在10升的合金A中实现。y2wo6,y6wo_(12)和y_(10)W2O_()形成金属间相的形成的表现21)在烧结合金A和Al 2(WO4)3中,XRD图案和SEM显微照片揭示了烧结合金B中的Nial_(10)O_(16),Nial 2 O 4和AiWO 4。在烧结合金A中记录1.50μm的最小粒度A.两种刻划和球形W基质在两种合金中都明显明显,这表明存在固相和液相烧结。在合金A中发现最大的相对烧结密度和硬度为85.29%和5.13GPa。在板磨损测试仪上,在25 rpm下在25 rpm下的磨损研究15分钟,显示最小磨损深度(48.99μm)和磨损轨道宽度与合金B相比,找到了合金A的(272UM)。

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