Simulation of Liquid Crystal Polymer Directionality During Cast Film Extrusion

A. Sullivan, A. Saigal, M. Zimmerman
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Abstract

Liquid crystal polymers (LCP’s) comprise a class of melt-processable materials that derive specialized mechanical, chemical, and electrical properties from long-range molecular ordering. This unique microstructure gives rise to anisotropic bulk behavior that can be problematic for industrial applications, and thus the ability to model the orientation state in the polymer is necessary for the design of isotropic material manufacturing processes. Previous efforts to model LCP directionality have been primarily restricted to structured grids and simple geometries that demonstrate the underlying theory, but fall short of simulating realistic manufacturing geometries. In this investigation, a practical methodology is proposed to simulate the director field in full-scale melt-processing set-ups, specifically cast film extrusion, to predict the bulk material orientation state. The hybrid approach utilizes separate simulations for the polymer flow with commercial computational fluid dynamics (CFD) software, and the material directionality through a user-defined post-processing script. Wide-angle x-ray scattering (WAXS) is used to experimentally validate the simulated directionality during extrusion processing. It is shown that the model is capable of predicting both the direction and degree of orientation in the polymer resulting from processing, and the model produces strong agreement with experimental measurement of the polymer orientation state.
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液晶聚合物在铸膜挤压过程中的方向性模拟
液晶聚合物(LCP’s)是一类可熔融加工的材料,它从远程分子有序中获得特殊的机械、化学和电学性能。这种独特的微观结构导致了各向异性的体积行为,这可能会给工业应用带来问题,因此,对聚合物中的取向状态进行建模的能力对于各向同性材料制造工艺的设计是必要的。以前对LCP方向性建模的努力主要局限于结构网格和简单的几何形状,这些几何形状证明了潜在的理论,但无法模拟现实的制造几何形状。在这项研究中,提出了一种实用的方法来模拟全尺寸熔体加工装置中的定向场,特别是铸造薄膜挤压,以预测大块材料的取向状态。该混合方法利用商业计算流体动力学(CFD)软件对聚合物流动进行单独模拟,并通过用户定义的后处理脚本对材料方向性进行模拟。利用广角x射线散射(WAXS)实验验证了挤压过程中模拟的方向性。结果表明,该模型能较好地预测加工过程中聚合物的取向方向和取向程度,与聚合物取向状态的实验测量结果吻合较好。
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