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Using apparent density of paper from hardwood kraft pulps to predict sheet properties, based on unsupervised classification and multivariable regression techniques

机译:基于无监督分类和多变量回归技术,使用硬木牛皮纸浆的表观密度预测纸页性能

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摘要

Paper properties determine the product application potential and depend on the raw material, pulping conditions, and pulp refining. The aim of this study was to construct mathematical models that predict quantitative relations between the paper density and various mechanical and optical properties of the paper. A dataset of properties of paper handsheets produced with pulps of Acacia dealbata, Acacia melanoxylon, and Eucalyptus globulus beaten at 500, 2500, and 4500 revolutions was used. Unsupervised classification techniques were combined to assess the need to perform separated prediction models for each species, and multivariable regression techniques were used to establish such prediction models. It was possible to develop models with a high goodness of fit using paper density as the independent variable (or predictor) for all variables except tear index and zero-span tensile strength, both dry and wet.
机译:纸张特性决定了产品的应用潜力,并取决于原料,制浆条件和纸浆精制。这项研究的目的是构建数学模型,以预测纸张密度与纸张各种机械和光学性能之间的定量关系。使用了以500、2500和4500转打浆的相思木,深叶相思木和球状桉木浆制得的手抄纸的性能数据集。结合无监督分类技术来评估对每种物种执行单独的预测模型的需求,并使用多变量回归技术来建立此类预测模型。可以使用纸密度作为所有变量(干裂和湿裂指数和零跨度拉伸强度除外)的自变量(或预测变量)来开发拟合度高的模型。

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