Kang Inpil, Joung Kwan Young, Choi Gyeong-Rak, Schulz Mark J, Choi Yeon-Sun, Hwang Sung-Ho, Ko Han Seo
School of Mechanical Engineering, Pukyung National University, Pusan 608-739, Korea.
J Nanosci Nanotechnol. 2007 Nov;7(11):3736-9.
The bulk piezoresistivity of carbon nanotube (CNT) in polymer matrix was discussed to develop a strain sensor for engineering applications. The polymer improves interfacial bonding between the nanotubes and the CNT composite and that enhances the strain transfer, repeatability, and linearity of the sensor. The largest contribution of piezoresistivity of the sensor may come from slippage of overlaying or bundled nanotubes in the matrix, from a macroscopic point of view. Nano interfaces of CNTs in a matrix polymer also contribute to the linear strain response compared to other micro size carbon filler. The strain sensor had a low bandwidth and adequate strain sensitivity. The nanocomposite strain sensor is particularly useful for detecting large strains which can monitor strain and stress on a structure with simple electric circuit for strain monitoring of structures.
为开发一种用于工程应用的应变传感器,对聚合物基体中碳纳米管(CNT)的体压阻效应进行了讨论。聚合物改善了纳米管与CNT复合材料之间的界面结合,从而增强了传感器的应变传递、重复性和线性度。从宏观角度来看,传感器压阻效应的最大贡献可能来自基体中覆盖或成束纳米管的滑移。与其他微米尺寸的碳填料相比,基体聚合物中CNT的纳米界面也有助于线性应变响应。该应变传感器具有低带宽和足够的应变灵敏度。这种纳米复合应变传感器对于检测大应变特别有用,通过简单的电路就能监测结构上的应变和应力,以实现结构的应变监测。