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Bonding material coated clay for improving paper properties .

机译:用于改善纸张性能的粘结材料涂层粘土。

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The paper industry utilizes fillers either to reduce the cost or to provide desired functional or end-use properties of paper products. However, there are disadvantages associated with higher filler loadings beyond a certain level, which reduces paper strength. The present study focused on improving the physical property of filled papers. Three methods of structuring fillers were designed; precipitation with starch, complexation with starch and fatty acid, and regeneration with cellulose. Because cellulose and starch have hydroxyl groups on the chemical structure, the hydrogen bonding between fillers and wood fibers is assumed to be occurred by structuring fillers.; For starch application, we used two different approaches; salt precipitation and fatty acid complexation. The cooked starch can be precipitated by certain salt solutions such as (NH4)2SO4. Also, the cooked starch can be complexed with fatty acid to produce an insoluble crystalline structure. When starch composites with clay made by both methods were put into the furnish as fillers, dramatic strength improvement was achieved such as 100-200% gains in tensile strength. This is due to the strong bonding between clay fillers and wood fibers, which is determined by Z-directional tensile strength. One of advantages is that using the starch-fatty acid complex has an inherent water repellent property, sizing effect.; For cellulose as a bonding material, N-methylmorpholine-N-oxide was used as a solvent to dissolve the cellulose. The advantage of using this method is that we can use the low grade cellulose. The physical properties of the cellulose coated clay handsheets were significantly improved, but optical properties such as brightness and opacity were inferior to the handsheets filled with starch-clay composites due to relatively large particle size.; In order to model the strength improvement by the composite filler, BDT theory, which is a modified Page's Equation, was used. After calculating the factors such as surface area and specific bond strength, the model matched well with the experimental results. Using this model, the tensile strength improvement could be predicted in terms of the change of bond strength and composite size.
机译:造纸工业利用填料来降低成本或提供纸产品所需的功能或最终使用性能。但是,存在较高的填充物含量超过一定水平的缺点,这降低了纸张强度。本研究的重点是提高填充纸的物理性能。设计了三种构造填料的方法:用淀粉沉淀,用淀粉和脂肪酸络合,用纤维素再生。因为纤维素和淀粉在化学结构上具有羟基,所以假定填料和木纤维之间的氢键是通过结构化填料而发生的。对于淀粉的应用,我们使用了两种不同的方法。盐沉淀和脂肪酸络合。煮熟的淀粉可以通过某些盐溶液(例如(NH4)2SO4)沉淀。而且,煮熟的淀粉可以与脂肪酸复合以产生不溶的晶体结构。当将通过两种方法制得的具有粘土的淀粉复合材料作为填充剂放入配料中时,可获得显着的强度提高,例如拉伸强度提高了100-200%。这是由于粘土填料和木纤维之间的牢固粘合,这取决于Z方向的拉伸强度。优点之一是使用淀粉-脂肪酸复合物具有固有的拒水性能,施胶效果。对于纤维素作为粘结材料,使用N-甲基吗啉-N-氧化物作为溶剂来溶解纤维素。使用此方法的优点是我们可以使用低级纤维素。纤维素涂覆的粘土手抄纸的物理性能得到显着改善,但是由于相对大的粒径,光学性能,例如亮度和不透明性比填充有淀粉-粘土复合材料的手抄纸差。为了对复合填料的强度提高进行建模,使用了BDT理论,即改进的Page's方程。在计算出表面积和比粘结强度等因素后,该模型与实验结果吻合良好。使用该模型,可以根据粘结强度和复合材料尺寸的变化预测拉伸强度的提高。

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