首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Effect of particle size and ratio of B4C reinforcement on properties and morphology of nanocrystalline A12024-B4C composite powders
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Effect of particle size and ratio of B4C reinforcement on properties and morphology of nanocrystalline A12024-B4C composite powders

机译:粒径和B4C增强比对纳米A12024-B4C纳米复合粉体性能和形貌的影响

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摘要

In this study, two new milling models based on the size of reinforcement materials were developed. A12024-B4C nanostructured composite powders containing 0, 5,10 and 20 weight percentage (wt.&) of B4C particles with two different particle sizes (d_(50) = 49 μm and d_(50) = 5 μm) as reinforcement material were produced by mechanical milling. The milling was carried out in a planetary ball mill for 10 h with a rotating speed of 400 rpm and ball to powder ratio of 10:1. The effects of reinforcement particle size and weight percentage on fracture and plastic deformation behavior of composite powders were investigated. The particle size, morphology and microhardness were used as the main criterions. The structural and mechanical evolutions of the mechanically milled powders were investigated using a scanning electron microscopy, a laser particle-size analyzer, an X-ray diffractometry and a microhardness tester. It was found that milling time as well as reinforcement size and reinforcement content were strongly affecting the particle size and microhardness of composite powders. The results showed that the coarse B4C particles accelerated the milling process due to cutting effect, while fine B4C particles accelerated the milling process due to embedding effect.
机译:在这项研究中,基于增强材料的尺寸,开发了两个新的铣削模型。 A12024-B4C纳米结构复合粉体包含0、5、10和20重量百分比(wt。&)的B4C颗粒,其中两种粒径分别为(d_(50)= 49μm和d_(50)= 5μm)作为增强材料。通过机械研磨生产。在行星式球磨机中以400 rpm的转速和10:1的球粉比进行研磨10 h。研究了补强颗粒尺寸和重量百分比对复合粉末断裂和塑性变形行为的影响。粒度,形貌和显微硬度为主要指标。使用扫描电子显微镜,激光粒度分析仪,X射线衍射仪和显微硬度测试仪研究了机械研磨粉末的结构和机械演变。已发现,研磨时间以及增强材料的尺寸和增强材料含量对复合粉末的粒度和显微硬度有很大影响。结果表明,粗B4C颗粒由于切削作用而加速了铣削过程,而细B4C颗粒由于包埋作用而加快了铣削过程。

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