首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >QUANTIFYING THE DIRECTIONALITY OF LIQUID CRYSTALLINE POLYMERS IN EXTRUSION PROCESSES USING AN ORDER PARAMETER
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QUANTIFYING THE DIRECTIONALITY OF LIQUID CRYSTALLINE POLYMERS IN EXTRUSION PROCESSES USING AN ORDER PARAMETER

机译:使用订单参数来量化液晶聚合物在挤出工艺中的方向性

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Liquid crystalline polymers (LCPs) are among a high-performance class of materials, which derive unique mechanical, chemical, and electrical characteristics from their long-range molecular order. The evolution of anisotropic orientation in the LCP microstructure during processing, however, can adversely affect the macroscopic polymer behavior. Simulation of this anisotropy is crucial to the design of manufacturing processes producing the desired material properties, and the ability to quantify the polymer directionality is a necessary metric of the model. Using a Monte-Carlo approach introduced by Goldbeck-Wood et al., a practical method for simulating LCP orientation is used to model the polymer flow, and the directionality results are then used to calculate a quantitative molecular degree of order. This metric, known as the order parameter, is an ideal candidate for measuring the LCP orientation, ranging from zero to unity between the isotropic and perfectly aligned states, respectively, as it is sensitive to both the direction of the average molecular orientation, as well as to the distribution of crystals around the average orientation. The effects of varying process parameters in the directionality model on the order parameter are shown. Understanding of these relationships will ultimately drive the design of manufacturing processes for more isotropic materials.
机译:液晶聚合物(LCP)是一种高性能类材料,其来自其远程分子级的独特机械,化学和电气特性。然而,在加工过程中LCP微观结构的各向异性取向的进化可能对宏观聚合物行为产生不利影响。这种各向异性的模拟对于制造所需材料特性的制造方法的设计至关重要,并且量化聚合物方向性的能力是模型的必要度量。使用Goldbeck-Wood等人介绍的Monte-Carlo方法,用于模拟LCP取向的实际方法用于模拟聚合物流动,然后使用方向性结果来计算定量分子量的顺序。这种公制称为订单参数,是用于测量LCP取向的理想候选,分别从零到各向同性和完美对齐状态之间的单位,因为它也敏感平均分子取向的方向,以及至于晶体周围的晶体的分布。显示了在订单参数上的方向模型中变化的过程参数的影响。理解这些关系将最终推动制造工艺的设计,以了解更多各向同性材料。

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