首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Influence of surface roughness created by admixing smaller particles on improving discharge particle flowability of main particles
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Influence of surface roughness created by admixing smaller particles on improving discharge particle flowability of main particles

机译:混合较小颗粒产生的表面粗糙度对主要颗粒的放电粒子流动性产生的表面粗糙度

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Particle flowability can be improved by admixing with particles smaller than the main particles. However, the mechanism by which this technique improves flowability is not yet fully understood. In this study, we focused on vibrating discharge particle flowability as one type of flowability and investigated the influence of the main particle roughness created by the adhesion of the admixed particles on improving the flowability. The diameters of the main and admixed particles (MPs and APs) were 41.4 or 60.8 mu m and 8 or 104 nm, respectively. The main and admixed particles were mixed in various mass ratios, and the discharge particle flow rates of the mixed particles were measured. Scanning electron microscopy images were acquired from two different angles to determine the three-dimensional surface roughness using image analysis software. We then calculated the coating structure parameters from the obtained three-dimensional surface roughness. The observed trends for improving the vibrating discharge particle flowability were found to differ from those reported for compression particle flowability. Furthermore, the main particle roughness conditions that led to the greatest improvement involved the presence of several admixed particle agglomerations between the main particles. (C) 2018 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:通过与小于主颗粒的颗粒混合可以改善颗粒流动性。然而,该技术提高了流动性的机制尚不完全理解。在该研究中,我们专注于振动放电颗粒流动性作为一种流动性,并研究了通过混合颗粒的粘附性产生的主要颗粒粗糙度对提高流动性的影响。主要和混合颗粒(MPS和AP)的直径分别为41.4或60.8μm和8或104nm。将主要和混合的颗粒以各种质量比混合,并测量混合颗粒的放电颗粒流量。从两种不同的角度获取扫描电子显微镜图像以使用图像分析软件确定三维表面粗糙度。然后,我们从获得的三维表面粗糙度计算涂层结构参数。发现了用于改善振动放电颗粒流动性的观察到的趋势与报告的压缩颗粒流动性不同。此外,导致最大改善的主要粒子粗糙度条件涉及主要颗粒之间存在几种混合颗粒附聚物的存在。 (c)2018年日本粉末科技学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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