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首页> 外文期刊>Polymer Degradation and Stability >Morphological structure, impact toughness, thermal property and kinetic analysis on the cold crystallization of poly (lactic acid) bio-composites toughened by precipitated barium sulfate
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Morphological structure, impact toughness, thermal property and kinetic analysis on the cold crystallization of poly (lactic acid) bio-composites toughened by precipitated barium sulfate

机译:沉淀硫酸钡增韧的聚乳酸生物复合材料冷结晶的形态结构,冲击韧性,热性能和动力学分析

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The bio-composites of poly (lactic acid) (PLA) involving a varied mass fraction of precipitated barium sulfate (BaSO4) were prepared via melt-compounding and subsequent injection molding. The morphologies, impact toughness and thermal properties of the composites were investigated carefully, and the toughening mechanism was emphasized by a combination of BaSO4 content and the crystallization ability. Results showed that an adequate amount of BaSO4 could disperse homogeneously in PLA matrix with well-bonded interfaces. The impact toughness was increased significantly by 52.7% due to added inorganic particles as well as the increased actual crystallinity of the composites. The added BaSO4 let the cold crystallization occur earlier (shifting to low temperature) while suppressing the cold crystallinity of. PLA phase. Such inhibition effects derived from the increased inorganic filler were then further explored and confirmed by the kinetic analysis on the cold crystallization under non-isothermal conditions. Indeed, the added BaSO4 increased the crystallization half-time and crystallization parameter of F(T) based on Mo equation. Moreover, the activation energy on cold crystallization was strengthened along with the increasing BaSO4. It seemed that there is little change in the reaction order of PLA/BaSO4 bio-composites, following the unique reaction thermal decomposition, whereas the activation energies were decreased steadily based on Carrasco method. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通过熔融复合和随后的注射成型,制备了包含不同质量分数的沉淀硫酸钡(BaSO4)的聚乳酸(PLA)生物复合材料。仔细研究了复合材料的形貌,冲击韧性和热性能,并结合BaSO4含量和结晶能力强调了增韧机理。结果表明,适量的BaSO4可以在界面良好结合的PLA基体中均匀分散。由于添加了无机颗粒以及提高了复合材料的实际结晶度,因此冲击韧性显着提高了52.7%。添加的BaSO 4使冷结晶更早地发生(转变为低温),同时抑制了其的冷结晶度。解放军阶段。然后进一步研究了这种由增加的无机填料引起的抑制作用,并通过在非等温条件下对冷结晶的动力学分析进行了证实。的确,添加的BaSO4基于Mo方程增加了F(T)的结晶半衰期和结晶参数。此外,随着BaSO4含量的增加,冷结晶的活化能得到增强。独特的反应热分解后,PLA / BaSO4生物复合材料的反应顺序似乎几乎没有变化,而基于卡拉斯科方法,活化能稳定降低。 (C)2018 Elsevier Ltd.保留所有权利。

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