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Thermal stability of blends of polyolefins and sisal fiber

机译:聚烯烃和剑麻纤维共混物的热稳定性

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This paper deals with the effect of acetylated and non-acetylated fiber on thermal degradation of blends of PP and polyolefins, specifically: PP/HDPE, PP/HDPE/functionalized EPR and PP/HDPEon-functionalized EPR. To determine activation energy, the thermograms were analyzed through the Horowitz-Metzger (H-M), Coats-Redfern (C-R), and Reich-Stivala (R-S) integral methods. The studies have shown that the starting temperature of the decomposition of the fiber, whether treated or not, is main- tained almost at the same level. Acetylated fiber stability was also found to increase, because activation energy ranged between 119 and 171 kJ/mol, depending on the method used; for non-acetylated fiber it was between 98 and 148 kJ/mol. This could be attributed to the fact that the fiber was fibrilized when it was treated with alkali, which resulted in a rough surface. This phenomenon can be the result of the substitution of OH groups by more voluminous ones, which brings about restrictions in the segmental mobility, thus increasing rigidity in the main cellulose chain. Activation energy of PP and PP/HDPE and PP/HDPE/functionalized and non- functionalized EPR blends ranges between 250 and 180 kJ/mol. When they are mixed with treated and non-treated fiber, a sudden decrease in activation energy is observed and this effect is slightly clearer with the untreated filler. This could be explained because mixing acetylated fiber with polymers results in higher polymer-filler interaction, which favors thermal stability of the compounds. These results let us infer that a satisfactory profit/cost
机译:本文探讨了乙酰化和非乙酰化纤维对PP和聚烯烃共混物热降解的影响,特别是:PP / HDPE,PP / HDPE /功能化EPR和PP / HDPE /非功能化EPR。为了确定活化能,通过Horowitz-Metzger(H-M),Coats-Redfern(C-R)和Reich-Stivala(R-S)积分方法分析了热谱图。研究表明,不管是否经过处理,纤维分解的起始温度都保持在几乎相同的水平。还发现乙酰化纤维的稳定性有所提高,因为活化能在119至171 kJ / mol之间,具体取决于所使用的方法。对于非乙酰化的纤维,其为98至148kJ / mol。这可以归因于以下事实:当用碱处理纤维时,纤维被纤维化,这导致表面粗糙。这种现象可能是由于OH基团被更多的OH基团取代所致,从而限制了片段的迁移率,从而增加了纤维素主链的刚性。 PP和PP / HDPE和PP / HDPE /官能化和非官能化EPR共混物的活化能在250至180 kJ / mol之间。当它们与处理过的和未处理过的纤维混合时,观察到活化能突然降低,并且这种效果对于未处理过的填料会稍微明显一些。可以解释这是因为将乙酰化纤维与聚合物混合会导致更高的聚合物-填料相互作用,从而有利于化合物的热稳定性。这些结果使我们推断出令人满意的利润/成本

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