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IONIC POLYMER METAL COMPOSITE SENSORS WITH ENGINEERED INTERFACES (EIPMCS): COMPRESSION SENSING MODELING AND EXPERIMENTS

机译:具有工程界面(EIPMC)的离子聚合物金属复合传感器:压缩感测建模和实验

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In this paper, we examine the development of tailored 3D-structured (engineered) polymer-metal interfaces to create enhanced ionic polymer-metal composite (eIPMC) sensors towards soft, self-powered, high sensitivity strain sensor applications. First, a physics-based chemoelectromechanical model is developed to predict the sensor behavior of eIPMCs by incorporating structure microfeature effects in the mechanical response of the material. The model incorporates electrode surface properties, such as microscale feature thickness, size and spacing, to help define the mechanical response and transport characteristics of the polymer-electrode interface. Second, two novel approaches are described to create functional samples of eIPMC sensors using fused deposition manufacturing and inkjet printing technologies. Sample elPMC sensors are fabricated for experimental characterization. Finally, experimental results are provided to show superior performance in the sensing capabilities compared to traditional sensors fabricated from sheet-form material. The results also validate important predictive aspects of the proposed minimal model.
机译:在本文中,我们研究了量身定制的3D结构(工程化)聚合物 - 金属界面的开发,以产生朝向软,自动的高灵敏度应变传感器应用的增强的离子聚合物 - 金属复合材料(EIPMC)传感器。首先,开发了一种基于物理学的化学机电模型来预测EIPMC的传感器行为,通过在材料的机械响应中掺入结构微泡效应。该模型包括电极表面性能,例如微观特征厚度,尺寸和间距,以帮助定义聚合物电极界面的机械响应和传输特性。其次,描述了两种新方法,用于使用熔融沉积制造和喷墨印刷技术创建EIPMC传感器的功能样本。样品ELPMC传感器用于实验表征。最后,与由片状材料制造的传统传感器相比,提供了实验结果以表现出传感能力的卓越性能。结果还验证了所提出的最小模型的重要预测方面。

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