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Mechanical-electrical characterization of carbon-nanotube thin films for structural monitoring applications

机译:用于结构监测应用的碳 - 纳米管薄膜的机械 - 电学特性

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To measure component-level structural responses due to external loading, strain sensors can provide detailed information pertaining to localized structural behavior. Although current metal foil strain sensors are capable of measuring strain deformations, they suffer from disadvantages including long-term performance issues when deployed in the field environment. This paper presents a novel carbon-nanotube polymer composite thin film that can be tailored for specific strain sensing properties. Beginning at the nano-scale, molecular manipulation of single-walled carbon nanotubes (SWNT) is performed to control chemical fabrication parameters as a means of establishing a relationship with macro-scale bulk sensor properties. This novel strain sensor is fabricated using the Layer-by-Layer (LbL) self-assembly process. A rigorous experimental methodology is laid out to subject a variety of thin films to tensile-compressive cyclic loading. In particular, SWNT concentration, polyelectrolyte concentration, and film thickness are varied during the fabrication process to produce a variety of strain sensors. This study correlates fabrication parameters with bulk strain sensor properties; sensor properties including sensitivity (gauge factor), linearity, and hysteresis, are explored.
机译:为了测量由于外部负载引起的组分级结构响应,应变传感器可以提供与局部结构行为有关的详细信息。尽管目前的金属箔菌株传感器能够测量应变变形,但它们遭受缺点,包括在现场环境中部署时的长期性能问题。本文介绍了一种新型碳 - 纳米管聚合物复合薄膜,可用于特定的应变感测性。从纳米级开始,进行单壁碳纳米管(SWNT)的分子操纵以控制化学制造参数作为建立与宏观批量传感器性能的关系的手段。使用层 - 逐层(LBL)自组装过程制造该新型应变传感器。布置严格的实验方法,以使各种薄膜进行拉伸压缩循环载荷。特别地,在制造过程中改变SWNT浓度,聚电解质浓度和膜厚度,以产生各种应变传感器。该研究将制造参数与散装菌株传感器特性相关联;探讨了传感器性能,包括灵敏度(仪表因子),线性度和滞后。

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