首页> 外文会议>Annual technical conference of the Society of Plastics Engineers;ANTEC 2011 >THERMO-MECHANICAL PROPERTIES AND THERMAL DEGRADATION CONTROL OF POLY (LACTIC ACID) AND POLY (LACTIC ACID)/CLAY/WOOD NANOCOMPOSITES
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THERMO-MECHANICAL PROPERTIES AND THERMAL DEGRADATION CONTROL OF POLY (LACTIC ACID) AND POLY (LACTIC ACID)/CLAY/WOOD NANOCOMPOSITES

机译:聚(乳酸)和聚(乳酸)/粘土/木材纳米复合材料的热力学性质和热降解控制

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Poly (lactic acid) (PLA) is an important biopolymer with suitable mechanical properties for construction and packaging applications. However, there are also problems associated with cost, brittleness, distortion temperature, gas permeability and melt viscosity. The mechanical and thermal properties of PLA can be tailored by compounding reinforcing fillers. Wood flour is a renewable material of low density and cost, high resistance to breakage and less abrasion to processing equipment. Nanoclay is a layered structure silicate material of high aspect ratio. PLA nanocomposites based on nanoclay and/or wood flour were prepared by melt extrusion of PLA. The clay particles (Cloisite 20A) exhibited an intercalated structure in the PLA. The tensile and flexural moduli of PLA/clay/wood nanocomposites containing 5 wt% nanoclay and 30 wt% wood flour increase from 3.75 to 7.08 GPa and from 3.83 to 6.01 GPa, respectively, compared to neat PLA. Clay particles improve the thermal decomposition temperature (T_d) of PLA/clay/wood nanocomposites by about 10°C compared to that of PLA/wood composites. Three compatibilizers -maleated polyethylene (MAPE), maleated polypropylene (MAPP) and maleated poly (lactic acid) (MAPLA) were used in PLA/clay/wood nanocomposites. Scanning electron microscopy (SEM) images confirm that MAPLA improves the interfacial adhesion between the PLA matrix and wood flour compared to the MAPE and MAPP compatibilizers. The tensile and flexural strengths of the (MAPLA) nanocomposites decrease with increasing clay loading. However, 2-4 wt% MAPE or MAPP give rise to higher tensile and flexural strengths in the case of PLA/clay/wood nanocomposites with 1 wt% clay. All three compatibilizers decrease the maximum thermal decomposition rate of the nanocomposites. Four (4) wt% MAPLA in PLA/5 wt% clay nanocomposites also increases the steady shear viscosity compared to nanocomposites without MAPLA. Approaches to control PLA thermal degradation during melt extrusion were examined. Residual catalyst deactivation and molecular weight control by chain extenders were believed to be the most effective and feasible methods. Details of these two methods as well as the effect of nanoclay on gas permeability will be discussed.
机译:聚乳酸(PLA)是一种重要的生物聚合物,具有适合建筑和包装应用的机械性能。然而,还存在与成本,脆性,变形温度,气体渗透性和熔体粘度有关的问题。 PLA的机械和热性能可以通过混合增强填料来调整。木粉是一种可再生材料,密度低,成本低,抗断裂性高,对加工设备的磨损小。纳米粘土是高纵横比的层状结构硅酸盐材料。通过熔融挤出PLA制备基于纳米粘土和/或木粉的PLA纳米复合材料。粘土颗粒(Cloisite 20A)在PLA中表现出插层结构。与纯PLA相比,含有5 wt%纳米粘土和30 wt%木粉的PLA /粘土/木材纳米复合材料的拉伸模量和弯曲模量分别从3.75 GPa增加到7.08 GPa和从3.83 GPa增加到6.01 GPa。与PLA /木材复合材料相比,粘土颗粒将PLA /粘土/木材纳米复合材料的热分解温度(T_d)提高了约10°C。 PLA /粘土/木材纳米复合材料中使用了三种增容剂-马来酸聚乙烯(MAPE),马来酸聚丙烯(MAPP)和马来酸聚乳酸(MAPLA)。扫描电子显微镜(SEM)图像证实,与MAPE和MAPP增容剂相比,MAPLA改善了PLA基质与木粉之间的界面粘合力。 (MAPLA)纳米复合材料的拉伸强度和弯曲强度会随着粘土含量的增加而降低。然而,在具有1wt%粘土的PLA /粘土/木材纳米复合材料的情况下,2-4wt%的MAPE或MAPP产生更高的拉伸强度和挠曲强度。所有三种增容剂均降低了纳米复合材料的最大热分解速率。与没有MAPLA的纳米复合材料相比,PLA / 5 wt%粘土纳米复合材料中的四(4)wt%MAPLA也增加了稳态剪切粘度。研究了控制熔融熔体挤出过程中PLA热降解的方法。残余的催化剂失活和通过扩链剂控制分子量被认为是最有效和可行的方法。将讨论这两种方法的详细信息以及纳米粘土对气体渗透性的影响。

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