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Novel approach for integrating electronics into textiles at room temperature using a force-fit interconnection

机译:使用力贴合互连将电子器件整合到纺织品中的新方法

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Integration of electronics into textiles needs two connection steps. On the one hand, the mechanical connection to a textile material and on the other hand, the electrical connection to integrated conductive structures. Both connections have to be reliable. In the last ten years different technologies were used for this task. Almost all of them need a temperature step either for melting or curing. This work presents an alternative method that can be applied at room temperature. It is simple, fast, and cost-efficient. The conducted experiments analyze the force-dependent contact resistance between three different conductors and metal strip lines of different widths. As a result conductive yarns need much higher contact forces to gain low and stable contact resistances. This is due to their particular configuration and thin peripheral conductive layers. Wider strip lines will enhance their contact resistances. Cross-section analyses of loaded yarns together with the measured data allow for these interpretations. A design of a force-fit interconnection as well as a prototype is presented. Two plates are clamped to a piece of fabric with integrated conductive yarn. The developing elastic force is directed to the contact members. A final thermal cycling test between −40 °C and +85 °C for 1000 hours confirms the applicability of force-fit interconnections for smart textiles.
机译:电子设备集成到纺织品中需要两个连接步骤。一方面,与纺织材料的机械连接,另一方面,电连接到集成导电结构。这两个连接都必须可靠。在过去的十年中,使用不同的技术用于此任务。几乎所有这些都需要熔化或固化的温度步骤。该工作提供了一种可以在室温下施加的替代方法。它简单,快速,高效。进行的实验分析了三种不同宽度的三种不同导体和金属条线之间的力依赖性接触电阻。由于导电纱线需要更高的接触力以获得低且稳定的接触电阻。这是由于它们的特定配置和薄外围导电层。更宽的条带线将提高其接触电阻。加载纱线的横截面分析与测量数据一起允许这些解释。提出了一种力配合互连以及原型的设计。两块板夹在一块带有集成导电纱线的织物上。显影弹力涉及接触构件。最终的热循环试验在-40°C和+ 85°C之间,1000小时确认了智能纺织品的力适合互连的适用性。

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