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A scattered data approximation tool to map single-walled carbon nanotube dispersion to the processing parameters in polymer nanocomposites

机译:分散的数据近似工具,用于将单壁碳纳米管分散体映射到聚合物纳米复合材料中的加工参数

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摘要

The relationship of nanocomposite dispersion to dispersion techniques and other processing parameters was studied. Examining all permutations of the various factors in the laboratory is a challenging task. In this paper, we propose to map a correlation between inputs and output via a self-adaptive scattered data approximation method. The proposed greedy algorithm, sequential function approximation (SFA), reveals the multidimensional behaviour of the system, provides the sensitivity of each input and presents the combination of inputs that is most suitable for a specific output. In this research, we have collected data from various research institutions and applied it to SFA. The results show that SWNT weight percent, sonication time, SWNT modification and high shear mixing time are key factors that affect the dispersion. This text discusses SFA, the data and the results in detail. This work serves as a proof of concept for functional mapping to be applied to polymer processing.
机译:研究了纳米复合材料分散体与分散技术及其他工艺参数的关系。在实验室中检查各种因素的所有排列是一项艰巨的任务。在本文中,我们建议通过自适应分散数据近似方法映射输入和输出之间的相关性。所提出的贪婪算法,即顺序函数逼近(SFA),揭示了系统的多维行为,提供了每个输入的灵敏度,并给出了最适合特定输出的输入组合。在这项研究中,我们收集了来自各个研究机构的数据,并将其应用于SFA。结果表明,SWNT的重量百分比,超声处理时间,SWNT改性和高剪切混合时间是影响分散的关键因素。本文详细讨论了SFA,数据和结果。这项工作是功能映射应用于聚合物处理的概念证明。

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