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Combined Effect of the Morphology and Rate of Addition of Fine Cellulosic Materials Produced from Chemical Pulp on Paper Properties

机译:化学纸浆生产的精细纤维素材料的形态和添加速率对纸张性能的综合影响

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Recently fine cellulosic materials such as microfibrillated celluloses (MFCs) have become an interesting additive in papermaking, improving paper mechanical properties thanks to their intrinsic high mechanical strength along with high potential to interact with cellulosic fibres. In this study, we produced and compared: (ⅰ) a mixture of primary and secondary fines isolated from the pulp by means of a purpose-built laboratory pressure screen and (ⅱ) MFC-like materials obtained by refining and subsequent steps of high-pressure homogenization. Morphological properties were determined using flow cell based and microscopic techniques, showing a wide size distribution of the fibrillated materials produced. The thus obtained materials were applied in handsheet forming in blends of different proportions to evaluate their influence on paper properties. Already at low concentration all tested products lead to a substantial decrease in air permeability and to improved mechanical properties, independent of the type and morphological character of the added fine cellulosic material. At higher addition rates, only highly fibrillated materials allowed a further considerable increase in tensile strength, which could be explained by the creation of a secondary network structure of highly fibrillated materials improving the load-bearing capacity of the whole paper structure.
机译:最近,精细纤维素材料(如微纤化纤维素(MFCs))已成为造纸中令人关注的添加剂,由于其固有的高机械强度以及与纤维素纤维相互作用的高潜力,从而改善了纸张的机械性能。在这项研究中,我们生产并比较了:(ⅰ)通过专用实验室压力筛从纸浆中分离出的一级和二级细粉的混合物,以及(ⅱ)通过精制和后续步骤获得的类似MFC的材料,压力均质化。使用基于流动池的和显微镜技术确定形态学特性,显示出所产生的原纤化材料的尺寸分布较宽。将由此获得的材料以不同比例的混合物应用于手抄纸成形中,以评估其对纸性能的影响。在低浓度下,所有测试产品均导致透气性显着降低,并改善了机械性能,而与所添加的精细纤维素材料的类型和形态特征无关。在较高的添加速率下,只有高度纤维化的材料才允许拉伸强度进一步显着增加,这可以通过创建高度纤维化的材料的二级网络结构来改善整个纸结构的承载能力来解释。

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