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Optimization of PLA compounds using novel nucleating agents and plasticizers

机译:利用新型成核剂和增塑剂优化PLA化合物

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Biopolymers such as Polylacticacid (PLA) by politicians and the press are often referred as the materials of the future. However, this overlooks the fact that the material properties of many biopolymers are not yet equal to those of conventional industrial polymers. For this reason, their use is currently limited to the packaging and medical sectors. Unmodified PLA has relatively low heat and impact resistance, which is insufficient for most technical applications. The aim of this work is to improve the characteristics of PLA by optimizing the crystallization properties through the addition of novel nucleating agents (twin-screw compounding). The assessment is carried out using DSC analysis and the resulting calculated thermodynamic parameters. Subsequently chosen compounds are selected for measuring mechanical properties. The methods used for measuring these properties are tensile tests, the Charpy impact test, and the measurement of the heat deflection temperature (HDT). The results show that sorbitol is the most effective nucleating agent for the nucleation of PLA 4032D, with regard to the optimization of the heat resistance and toughness of the material. However the best crystallization rates from the melt can only be achieved by the further addition of polyethylene glycol (PEG) as a plasticizer. The combined influence of sorbitol and PEG in PLA 4032D, can improve the impact properties by more than 500 % to a value of 131.3 kJ/m~2 (reference sample 21.8 kJ/m~2) and the heat resistance by about 20 % to 65.9 °C (reference sample 54.0 °C).
机译:政治家和新闻界的聚乳酸(PLA)等生物聚合物通常被称为未来的材料。然而,这俯视了许多生物聚合物的材料特性尚不等于常规工业聚合物的物质。因此,它们的使用目前仅限于包装和医学领域。未修饰的PLA具有相对较低的热量和抗冲击性,这对于大多数技术应用不足。本作作品的目的是通过添加新的核细胞(双螺杆复合)来改善通过优化结晶性能的PLA的特性。使用DSC分析和所得的计算热力学参数进行评估。随后选择所选择的化合物以测量机械性能。用于测量这些性质的方法是拉伸试验,夏比冲击试验和热偏转温度(HDT)的测量。结果表明,山梨糖醇是PLA 4032D成核的最有效的成核剂,关于材料的耐热性和韧性的优化。然而,来自熔体的最佳结晶速率只能通过进一步加入聚乙二醇(PEG)作为增塑剂来实现。山梨糖醇和PEG在PLA 4032D中的综合影响,可以将冲击性能提高500%以上的131.3kJ / m〜2(参考样品21.8kJ / m〜2),耐热性约20%至65.9°C(参考样品54.0°C)。

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