首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Mill, material, and process parameters - A mechanistic model for the set-up of wet-stirred media milling processes
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Mill, material, and process parameters - A mechanistic model for the set-up of wet-stirred media milling processes

机译:轧机,材料和工艺参数 - 用于湿搅拌介质研磨工艺建立的机制模型

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摘要

Stirred media milling is frequently used to generate nanoparticles for industrial applications such as paints, inks, and food or for the life sciences. Each product suspension has different requirements and therefore different material and formulation parameters. The first attempts to set up a new process are experimental in nature, especially the determination of a suitable composition. To adapt a process to the production scale, more experimental work is often needed to determine suitable operation parameters with regard to energy consumption, throughput, and investment cost. The energy consumption is influenced by operation parameters such as the size of the grinding media or the stirrer tip speed, whereas the investment costs are influenced by the mill geometry and size and the type of grinding media used. Therefore, it is challenging to transfer or scale up processes because lab-scale mills are smaller and may have different geometries than production-scale mills. Moreover, it is well known that the lab-scale operation parameters cannot be easily adapted to the production scale. In this study, the stress model developed by Kwade was improved by introducing parameters corresponding to the mill and the material in addition to the process parameters. Using this model, the optimum operating conditions for stirred media milling processes can be determined with a reduced amount of experimental work, even for geometrically unequal mills. (C) 2019 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:搅拌介质研磨经常用于为工业应用产生纳米颗粒,例如油漆,油墨和食物或生命科学。每个产品悬架具有不同的要求,因此具有不同的材料和配方参数。第一次建立新方法的尝试是实验性的,尤其是确定合适的组合物。为了使过程适应生产规模,通常需要更实验的工作来确定能耗,吞吐量和投资成本的合适的操作参数。能量消耗受到诸如研磨介质或搅拌器尖端速度的诸如诸如磨削介质的尺寸的操作参数的影响,而投资成本受轧机几何形状和尺寸和所用研磨介质的类型的影响。因此,转移或缩放过程是挑战,因为实验室级铣刀较小,并且可能具有不同的几何形状而不是生产尺度磨机。此外,众所周知,实验室规模操作参数不能容易地适应生产规模。在这项研究中,除了处理参数之外,通过引入对应于磨机和材料的参数来改善KWADE的应力模型。使用该模型,即使对于几何上不等磨机,也可以用减少的实验工作确定搅拌介质研磨方法的最佳操作条件。 (c)2019年日本粉末技术学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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