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Piezoresistive Carbon-based Hybrid Sensor for Body-Mounted Biomedical Applications

机译:用于车身型生物医学应用的压阻式碳的混合传感器

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For body-mounted sensor applications, the evolution of soft condensed matter sensor (SCMS) materials offer conformability andit enables mechanical compliance between the body surface and the sensing mechanism. A piezoresistive hybrid sensor and compliant meta-material sub-structure provided a way to engineer sensor physical designs through modification of the mechanical properties of the compliant design. A piezoresistive fiber sensor was produced by combining a thermoplastic elastomer (TPE) matrix with Carbon Black (CB) particles in 1:1 mass ratio. Feedstock was extruded in monofilament fiber form (diameter of 300 microns), resulting in a highly stretchable sensor (strain sensor range up to 100%) with linear resistance signal response. The soft condensed matter sensor was integrated into a hybrid design including a 3D printed metamaterial structure combined with a soft silicone. An auxetic unit cell was chosen (with negative Poisson's Ratio) in the design in order to combine with the soft silicon, which exhibits a high Poisson's Ratio. The hybrid sensor design was subjected to mechanical tensile testing up to 50% strain (with gauge factor calculation for sensor performance), and then utilized for strain-based sensing applications on the body including gesture recognition and vital function monitoring including blood pulse-wave and breath monitoring. A 10 gesture Natural User Interface (NUI) test protocol was utilized to show the effectiveness of a single wrist-mounted sensor to identify discrete gestures including finger and hand motions. These hand motions were chosen specifically for Human Computer Interaction (HCI) applications. The blood pulse-wave signal was monitored with the hand at rest, in a wrist-mounted. In addition different breathing patterns were investigated, including normal breathing and coughing, using a belt and chest-mounted configuration.
机译:对于身体安装的传感器应用,软冷凝物传感器(SCM)材料的演变提供了协调性,并且能够在体表和传感机构之间进行机械顺应性。压阻式混合传感器和柔顺的元材料子结构通过改变兼容设计的机械性能来提供一种方法来工程师体式设计。通过将热塑性弹性体(TPE)基质与1:1质量比的炭黑(CB)颗粒组合,通过将热塑性弹性体(TPE)基质组合来制备压阻纤维传感器。原料以单丝纤维形式(直径为300微米)挤出,导致高度拉伸的传感器(应变传感器范围高达100%),线性电阻信号响应。软化冷凝物传感器集成到混合设计中,包括3D印刷的超材料结构与软硅胶组合。在设计中选择辅助单元电池(具有负泊松比),以便与软硅结合,这表现出高泊松的比率。对混合传感器设计进行机械拉伸测试,高达50%的菌株(具有用于传感器性能的仪表计数计算),然后用于身体上的基于应变的传感应用,包括手势识别和重要功能监测,包括血脉冲波和呼吸监测。利用10个手势自然用户界面(NUI)测试方案来展示单个腕上安装的传感器的有效性,以识别包括手指和手动运动的离散手势。这些手动运动是专门用于人机交互(HCI)应用。用手静置,在手腕上用手监测血脉冲波信号。此外,使用带和胸部安装的构造,研究了不同的呼吸模式,包括正常呼吸和咳嗽。

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