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Feasibility study of custom manufacturing methods of ionic polymer-metal composite sensors.

机译:定制离子聚合物-金属复合传感器制造方法的可行性研究。

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摘要

The ability to create an ion exchange membrane with any shape or thickness through custom manufacturing techniques is highly desirable in ionic polymer-metal composite (IPMC) research. This is caused by the poor selection and limited availability of certain thicknesses of commercial ion exchange membranes. The objective of this study is to determine the feasibility of manufacturing custom ion exchange membranes for IPMC sensors. The manufacturing methods used in this study are extrusion, injection molding, and hot pressing. A commercial membrane from Golden Energy Fuel Cells (GEFC) is used as a comparison. After the membranes are fabricated, certain properties of the membranes are tested throughout each processing stage to determine if they are suitable to be developed into IPMCs. The three processing stages are pre-activation, activation (hydrated and dehydrated), and IPMC. It was observed that the stiffness of the membranes increased from pre-activation to activation and decreased from activation to IPMC. A more flexible membrane in an IPMC allows for larger cation displacement within the membrane. The extruded and injection molded membranes showed the most potential with having the lowest stiffness of all the samples; however, they were not able to be made into IPMCs due to repeated membrane failures in the primary plating process. Gas accumulated between the layers that formed in the membranes due to the extrusion and injection molding cooling process during manufacturing. The hot pressed membrane was the only custom manufactured membrane to be fully processed into an IPMC. The hot pressed and GEFC IPMC sensors were operated at 1 Hz, 5 Hz, and 10 Hz frequencies with the GEFC IPMC producing the strongest output voltage signal. While the extruded and injection molded membranes showed potential to become IPMCs with their high water uptake percentage, high ion exchange capacity, and low stiffness, more development is needed within the manufacturing process to make a uniform sample that does not fail during chemical processing.
机译:通过定制制造技术来制造具有任何形状或厚度的离子交换膜的能力在离子聚合物-金属复合材料(IPMC)研究中非常需要。这是由于商业离子交换膜的某些厚度的选择不当和可用性有限所引起的。这项研究的目的是确定为IPMC传感器制造定制离子交换膜的可行性。本研究中使用的制造方法为挤出,注塑和热压。作为比较,使用了Golden Energy燃料电池(GEFC)的商业膜。膜制成后,在每个加工阶段都要测试膜的某些性能,以确定它们是否适合开发为IPMC。这三个处理阶段是预激活,激活(水合和脱水)和IPMC。观察到,膜的刚度从预活化到活化而增加,而从活化到IPMC降低。 IPMC中更柔软的膜允许在膜内更大的阳离子位移。在所有样品中,挤出和注塑的膜显示出最大的潜力,同时具有最低的硬度。但是,由于在初次电镀过程中反复出现膜故障,因此无法将它们制成IPMC。由于制造过程中的挤压和注射成型冷却过程,气体在膜中形成的各层之间积聚。热压膜是唯一可完全加工成IPMC的定制膜。热压和GEFC IPMC传感器以1 Hz,5 Hz和10 Hz的频率运行,而GEFC IPMC产生最强的输出电压信号。尽管挤出膜和注模膜具有高吸水率,高离子交换能力和低刚度的潜力成为IPMC,但在制造过程中还需要进行更多开发,以制造出在化学处理过程中不会失效的均匀样品。

著录项

  • 作者

    Nelson, Shelby E.;

  • 作者单位

    University of Nevada, Las Vegas.;

  • 授予单位 University of Nevada, Las Vegas.;
  • 学科 Mechanical engineering.;Materials science.
  • 学位 M.S.E.
  • 年度 2015
  • 页码 122 p.
  • 总页数 122
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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