用于坚固纺织品触摸界面的刺绣驱动护盾

Roland Aigner;Florian Wolling;Florian Michahelles
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引用次数: 0

摘要

我们提出了一种全纺织电容触摸传感器,它提供了一个额外的电极来实现驱动(或有源)屏蔽,这可以大大提高信噪比(SNR)并防止寄生电容。虽然驱动屏蔽是传统印刷传感器的最新技术,但它们在当代纺织品用户界面(ui)中仍然不常见。在计算机机器刺绣中,使用漆包铜线作为线轴线,传感器和屏蔽电极以单一顺序应用,消除了手动中间或整理步骤,并利用刺绣技术提供的设计灵活性。初步的有限元分析表明,当传感器靠近其他导体(例如佩戴在用户身上)时,通过采用驱动屏蔽,在传感范围和信号质量方面获得了显著改善。通过改变屏蔽电极的模式特性,如模式类型、面积和密度,我们研究了它们对结果信噪比的影响,基于受控实验室实验的表征。我们工作的一个主要发现是,密度的影响似乎很小,而图案布局的调整似乎足以弥补较低的针迹密度,网格布局产生最好的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Embroidered Driven Shields for Robust Textile Touch Interfaces
We present a fully textile capacitive touch sensor that provides an additional electrode for implementing driven (or active) shielding, which can considerably improve signal-to-noise ratio (SNR) and guard from parasitic capacitance. While driven shields are state of the art for traditional printed sensors, they are still uncommon in contemporary textile user interfaces (UIs). Using an enameled copper wire as a bobbin thread in computerized machine embroidery, both sensor and shield electrodes are applied in a single sequence, eliminating manual intermediate or finishing steps and harnessing the design flexibility provided by the embroidery technique. Preliminary finite element analysis indicates significant improvements gained by employing driven shields, in terms of sensing range as well as signal quality, when the sensor is close to other conductors, e.g., when worn on the user’s body. By varying the shield electrode’s pattern properties, such as pattern type, area, and density, we investigate their effects on the resulting SNR, based on characterizations within controlled laboratory experiments. A major finding of our work is that the impact of density seems minor, while adjustments of the pattern layout seem to adequately compensate for a lower stitch density, with a grid layout yielding the best results.
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