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Developing Online Inferential Characterization of Nanocomposites for Oriented Nanocomposite Extrusion

机译:开发纳米复合材料的在线推理表征以取向纳米复合材料挤出

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Industrial production of nanocomposites could revolutionize the polymer industry. The NASA Goddard project Oriented Nanocomposite Extrusion (O.N.E.) is developing a process to produce desirable nanocomposites that can easily be scaled up and transferred to industry. This development uses a research-scale twin screw extruder (TSE) based at the University of Maryland. A major need for this process is a method for online characterization of the polymer composition. This project focuses on using pressure measurements, in combination with correlations for inferential, online characterization of the composition. Pressure measured near the entrance of the die is dependent on the temperature, flow velocity, and composition of the nanocomposite being produced. Since temperature and flow velocity can be directly measured, the correlation allows for online calculation of the composition of the polymer composite. A correlation was developed that related pressure to the flow velocity and screw speed. The temperature probe was found to be faulty, so the correlation used screw speed measurements as a substitute for the temperature of the polymer melt. Temperature of the melt is affected by viscous heating due to the rotating screws, enabling screw speed to be used as a possible substitute. During the research, major findings include the faulty temperature probe and a periodic variation in pressure. The periodic variation in pressure was caused by variations in the polymer flow rate that results in thickness variation of the extrudate on the order of 20% (±10%). Recommendations are made for investigations of the temperature probes, the feeder flow rate, and the installation of the pressure probe.
机译:纳米复合材料的工业生产可以彻底改变聚合物工业。美国宇航局戈达德项目取向纳米复合材料挤出(O.N.E.)正在开发一种生产可容易缩放和转移到工业的理想纳米复合材料的方法。该开发采用基于马里兰大学的研究规范双螺杆挤出机(TSE)。对该方法的主要需求是用于在线表征聚合物组合物的方法。该项目侧重于使用压力测量,同时与推论的相关性,在线表征组合物。在模具的入口附近测量的压力取决于所产生的纳米复合材料的温度,流速和组成。由于可以直接测量温度和流速,因此相关性允许在线计算聚合物复合材料的组合物。相关的相关压力与流速和螺杆速度的相关性。发现温度探针有故障,因此相关性使用螺杆速度测量作为聚合物熔体温度的替代品。熔体的温度受旋转螺钉引起的粘性加热的影响,使螺杆速度能够用作可能的替代品。在研究期间,主要发现包括故障的温度探针和压力周期性变化。压力的周期性变化是由聚合物流速的变化引起的,导致挤出物的厚度变化,大约为20%(±10%)。建议采用温度探针,进料器流速和压力探针安装的建议。

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