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Development of Nanocomposite-Based Strain Sensor with Piezoelectric and Piezoresistive Properties

机译:基于压电和压阻性的纳米复合材料的应变传感器的研制

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摘要

Sensors provide an interface between mechanical systems and the physical world. With the move towards Industry 4.0 and cyber-physical systems, demands for cost-effective sensors are rapidly increasing. Conventional sensors used for monitoring manufacturing processes are often bulky and need complex processes. In this study, a novel high-sensitive nanocomposite-based sensor is developed for measuring strain. The developed sensor is comprised of polyvinylidene fluoride (PVDF) as a piezoelectric polymer matrix, and embedded carbon nanotube (CNT) nanoparticles creating a conductive network. Exhibiting both piezoelectric and piezoresistive properties, the developed sensors are capable of strain measurement over a wide frequency band, including static and dynamic measurements. The piezoresistive and piezoelectric properties are fused to improve the overall sensitivity and frequency bandwidth of the sensor. To simulate the sensor, a 3D random walk model and a 2D finite element (FE) model are used to predict the electrical resistivity and the piezoelectric characteristics of the sensor, respectively. The developed models are verified with the experimental results. The developed nanocomposite sensors were employed for strain measurement of a cantilever beam under static load, impulse excitation, free and forced vibrations, collecting both piezoelectric and piezoresistive properties measurements. The obtained signals were fused and compared with those of a reference sensor. The results show that the sensor is capable of strain measurement in the range of 0⁻10 kHz, indicating its effectiveness at measuring both static and high frequency signals which is an important feature of the sensor.
机译:传感器提供机械系统和物理世界之间的界面。随着对工业4.0和网络物理系统的举动,对经济高效的传感器的要求正在迅速增加。用于监测制造过程的传统传感器通常是笨重的,需要复杂的过程。在该研究中,开发了一种用于测量应变的新型高敏感纳米复合材料的传感器。开发的传感器由聚偏二氟乙烯(PVDF)构成为压电聚合物基质,嵌入的碳纳米管(CNT)纳米颗粒产生导电网络。表现出压电和压阻性能,开发的传感器能​​够在宽频带上进行应变测量,包括静态和动态测量。压阻和压电性能融合以改善传感器的整体灵敏度和频率带宽。为了模拟传感器,3D随机步道模型和2D有限元(FE)模型用于预测传感器的电阻率和压电特性。通过实验结果验证开发的模型。开发的纳米复合传感器用于静电负载下悬臂梁的应变测量,脉冲激励,自由和强制振动,收集压电和压阻性能测量。获得的信号融合并与参考传感器的信号进行比较。结果表明,该传感器能够在0±10 kHz的范围内应变测量,表明其在测量静态和高频信号时的有效性,这是传感器的重要特征。

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