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首页> 外文期刊>Macromolecules >Controlling Processing, Morphology, and Mechanical Performance in Blends of Polylactide and Thermotropic Polyesters
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Controlling Processing, Morphology, and Mechanical Performance in Blends of Polylactide and Thermotropic Polyesters

机译:控制聚物和热致聚酯共混物中的加工,形态和机械性能

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Thermoplastic composites based on thermotropic liquid crystalline polymer (LCP) materials are interesting candidates for reinforced composite application due to their promising mechanical performance and potential for recyclability. In combination with a societal push toward the more sustainable use of materials, these properties warrant new interest in this class of composites. Though numerous studies have been performed in the past, a coherent set of design rules for LCP design for the generation of injection-molded reinforced thermoplastic composites is not yet available, likely due to the complex interplay between LCP and matrix components. In this study, we report on the processing of poly(L-lactide) with two different LCPs, at relatively low processing temperatures. The study focuses on critical parameters for the morphological development and mechanical performance of LCP-reinforced composites. The influence of blend composition and the processing conditions, on the mechanical response of the composites, is investigated using rheology, wide-angle X-ray diffraction, mechanical analysis, and microscopy techniques. The study conclusively demonstrates that both the matrix viscosity and viscosity ratio between the dispersed and matrix phase, determine the deformation and breakup of the dispersed LCP droplets during extrusion. In addition, the thermal dependence of the viscosity ratio appears to be a critical parameter for the composite performance after injection molding. For example, during injection molding, stretching and molecular orientation of the LCP phase into highly oriented fibrils are prevented when the viscosity ratio increases rapidly upon cooling. In contrast, melt drawing proves to be a more effective processing route as the extensional flow field stabilizes elongated droplets, independent of the viscosity ratio. Overall, these findings provide valuable insights in the morphological development of LCP-reinforced blends, highlighting the importance of the development of viscoelastic properties as a function of temperature, and provide guidelines for the design of new LCP polymers and their thermoplastic composites.
机译:基于热致液晶聚合物(LCP)材料的热塑性复合材料是增强复合材料的有趣候选者,由于它们有希望的机械性能和可回收性潜力。结合社会推动朝着更可持续使用的材料,这些属性是对这类复合材料的新兴趣。虽然过去已经进行了许多研究,但由于LCP和矩阵组分之间的复杂相互作用,可能尚未进行许多研究,用于产生注塑增强热塑性复合材料的LCP设计的一组相干设计规则。在本研究中,我们在相对低的处理温度下报告用两种不同的LCP处理聚(L-丙交酯)。该研究侧重于LCP加强复合材料的形态开发和机械性能的关键参数。使用流变学,广角X射线衍射,机械分析和显微镜技术来研究共混物组合物和加工条件对复合材料的机械响应的影响。该研究表明,分散和基质相之间的基质粘度和粘度比,确定了在挤出过程中分散的LCP液滴的变形和分解。另外,粘度比的热依赖性似乎是注塑后复合性能的关键参数。例如,当粘度比在冷却时迅速增加时,防止了在注射成型期间,将LCP相的拉伸和分子取向成高度取向的原纤维。相反,熔体绘图被证明是更有效的处理路线,因为延伸流场稳定细长液滴,与粘度比无关。总体而言,这些发现提供了LCP加强混合物的形态学发展的有价值的见解,突出了粘弹性的重要性作为温度的函数,并提供了新的LCP聚合物和其热塑性复合材料的设计指导。

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