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Processing melt blended polymer nanocomposites using a novel laboratory mini-mixer. Development of polymer nanocomposites in the melt phase using a novel mini-mixer.

机译:使用新型实验室小型混合机加工熔融共混的聚合物纳米复合材料。使用新型微型混合器开发熔融相聚合物纳米复合材料。

摘要

Research into the processing conditions and parameters of polymeric nanocomposites has always been challenging to scientists and engineers alike. Many have developed tools and procedures to allow materials to be exploited and their properties improved with the addition of nanofillers to achieve the desired end material for various applications. Initial trials are mostly conducted using conventional small scale experiments using specialised equipment within the laboratory that can replicate the larger industrial equipment. This is a logical approach as it could save time and costs as many nanocomposites are relatively expensive to produce. Experiments have previously been done using the likes of the Haake twin screw extruder to manufacture nanocomposites within the laboratory but this research project has used a novel minimixer specifically developed to replicate mixing like large twin screw extrusion machines. The minimixer uses a twin paddle system for high shear mixing in conjunction with a single screw thus theoretically allowing an infinitely long recirculation. It is this ability to mix intensely whilst allowing for as long as desired recirculation which enables the replication in this very small mixer (10-30g capacity) of the mixing conditions in a large twin screw extruder. An added feature of the minimixer is that it can undertake inline data analysis in real time. The main experiments were conducted using a comprehensive DOE approach with several different factors being used including the temperature, screw speed, residence time, clay and compatibiliser loading and two polymer MFI¿s. The materials used included PP, Cloisite 20A, Polybond 3200, PET, Somasif MTE, Polyurethane 80A and Single / Multi-walled Carbon nanotubes.udDetailed experimental results highlighted that rheological analysis of the nanocomposite materials as an initial testing tool were accurate in determining the Elastic and Loss modulus values together with the Creep and Recovery, Viscosity and Phase Angle properties in the molten state. This approach was also used in an additional set of experiments whereby the temperature, speed, residence time and compatibiliser were kept constant but the clay loading was increased in 1% wt. increments. These results showed that the G¿ & G¿¿ values increased with clay loading. Another important finding was the bi-axial stretching step introduced after the processing stage of the nanocomposite materials which highlighted a further improvement in the modulus values using rheological testing. Other tests included using inline monitoring to look into both the viscosity and ultrasound measurements in real time of the molten polymer nanocomposite through a slit die attachment to the minimixer.
机译:对聚合物纳米复合材料的加工条件和参数的研究一直对科学家和工程师都充满挑战。许多人已经开发了工具和程序,可以通过添加纳米填料来利用材料并改善其性能,从而获得各种应用所需的最终材料。初步试验主要是使用实验室内的专用设备进行的常规小规模实验来进行的,这些设备可以复制较大的工业设备。这是一种合乎逻辑的方法,因为它可以节省时间和成本,因为许多纳米复合材料的生产成本相对较高。以前已经使用Haake双螺杆挤出机之类的设备进行了实验,以在实验室内生产纳米复合材料,但该研究项目使用了专门开发的新型微型混合器,可以像大型双螺杆挤出机一样复制混合。小型混合器使用双桨叶系统结合单个螺杆进行高剪切混合,因此在理论上允许无限长的再循环。正是这种强烈混合的能力,同时允许所需的循环时间,这使得能够在这种非常小的混合器(容量为10-30g)中复制大型双螺杆挤出机中的混合条件。 minimixer的一个附加功能是它可以实时进行在线数据分析。主要实验是使用全面的DOE方法进行的,使用了几种不同的因素,包括温度,螺杆速度,停留时间,黏土和增容剂的负载以及两种聚合物MFI。使用的材料包括PP,Cloisite 20A,Polybond 3200,PET,Somasif MTE,聚氨酯80A和单/多壁碳纳米管。 ud详细的实验结果表明,作为初始测试工具的纳米复合材料的流变分析可以准确地确定在熔融状态下的弹性模量和损耗模量值以及蠕变和恢复,粘度和相角特性。该方法还用于另一组实验中,其中温度,速度,停留时间和增容剂保持恒定,但粘土含量以1%wt的比例增加。增量。这些结果表明,G&G值随粘土含量的增加而增加。另一个重要发现是在纳米复合材料的加工阶段之后引入的双轴拉伸步骤,该步骤突出了使用流变学测试对模量值的进一步改善。其他测试包括使用在线监测,通过狭缝模头与微型混合器的连接,实时查看熔融聚合物纳米复合材料的粘度和超声测量值。

著录项

  • 作者

    Khan Atif Hussain;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en
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