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Fully integrated carbon nanotube composite thin film strain sensors on flexible substrates for structural health monitoring

机译:完全集成的碳纳米管复合薄膜应变传感器在柔性基板上进行结构健康监测

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Multifunctional thin film materials have opened many opportunities for novel sensing strategies for structural health monitoring. While past work has established methods of optimizing multifunctional materials to exhibit sensing properties, comparatively less work has focused on their integration into fully functional sensing systems capable of being deployed in the field. This study focuses on the advancement of a scalable fabrication process for the integration of multifunctional thin films into a fully integrated sensing system. This is achieved through the development of an optimized fabrication process that can create a broad range of sensing systems using multifunctional materials. A layer-by-layer deposited multifunctional composite consisting of single walled carbon nanotubes (SWNT) in a polyvinyl alcohol and polysodium-4-styrene sulfonate matrix are incorporated with a lithography process to produce a fully integrated sensing system deposited on a flexible substrate. To illustrate the process, a strain sensing platform consisting of a patterned SWNT-composite thin film as a strain-sensitive element within an amplified Wheatstone bridge sensing circuit is presented. Strain sensing is selected because it presents many of the design and processing challenges that are core to patterning multifunctional thin film materials into sensing systems. Strain sensors fabricated on a flexible polyimide substrate are experimentally tested under cyclic loading using standard four-point bending coupons and a partial-scale steel frame assembly under lateral loading. The study reveals the material process is highly repeatable to produce fully integrated strain sensors with linearity and sensitivity exceeding 0.99 and 5V/is an element of, respectively. The thin film strain sensors are robust and are capable of high strain measurements beyond 3000 mu is an element of.
机译:多功能薄膜材料对结构健康监测的新颖传感策略开辟了许多机会。虽然过去的工作已经建立了优化多功能材料以表现出感知性能的方法,但相对较少的工作集中在它们集成到能够部署在现场的全功能感测系统中。该研究侧重于推进可伸缩制造过程,用于将多功能薄膜集成到完全集成的传感系统中。这是通过开发优化的制造过程来实现的,该过程可以使用多功能材料产生广泛的传感系统。逐层沉积的多功能复合材料由聚乙烯醇和聚钠-4-苯乙烯磺酸盐基质中的单壁碳纳米管(SWNT)组成,掺入了光刻工艺,以产生沉积在柔性基板上的完全集成的感测系统。为了说明该方法,提出了一种由图案化的SWNT复合薄膜组成的应变传感平台,作为放大的惠斯通桥传感电路内的应变敏感元件。选择应变感测,因为它呈现了许多设计和处理挑战,这些挑战是将多功能薄膜材料进行图案化为传感系统。在柔性聚酰亚胺衬底上制造的应变传感器在循环载荷下使用标准的四点弯曲试样和横向载荷下的部分尺寸钢框架组件进行实验测试。该研究揭示了材料工艺是高度可重复的,以产生完全集成的应变传感器,其线性度和灵敏度超过0.99和5V /是一个元素。薄膜应变传感器具有稳健性,并且能够高出3000亩的高应变测量是。

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