Abstract
AbstractSoft and flexible strain piezoresistive sensors are gaining interest in wearable and robotic applications, but resistance relaxation limits the widespread use of the sensors. As soft, flexible, and stretchable sensors, they can easily be retrofitted into any existing robotic hand. To understand the resistance relaxation of stretchable sensors, three different elastomers were used to fabricate soft piezoresistive sensors. The experimental results showed that the sensor has good linearity and scalability while their resistance is strongly influenced by the stretching speed and modulus of the elastomer. Thus, the Kevin Voigt model was adopted to describe the sensor’s change of resistance during the stretching process. The model is sufficient to describe the change of resistance of the carbon black/elastomer filler when the sensors are stretched before the fracturing of the conductive filler. However, when the filler fractures, the model is invalid. The behavior indicates that the elongation of the sensor must not exceed the strain that causes the filler to fracture.
Publisher
Springer Science and Business Media LLC
Subject
Electrical and Electronic Engineering,Instrumentation
Reference43 articles.
1. Kappassov, Z., Corrales, J. A., & Perdereau, V. (2015). Tactile sensing in dexterous robot hands: A review. Robotics and Autonomous Systems, 74, 195–220.
2. Hanna, Y., Mehdi, B., & Kaspar, A. (2011). Tactile sensing for dexterous in-hand manipulation in robotics—A review. Sensors and Actuators. A. Physical, 167(2), 171–187.
3. Shan, L., Joao, B., Ravinder, D., & Hongbin, L. (2017). Robotic tactile perception of object properties: A review. Mechatronics, 48, 54–67.
4. Kirthika, S. K., Chen, P. Y., & Ren, H. L. (2019). A review of printable flexible and stretchable tactile sensors. Research, 2019, 3018568–3018632.
5. Liu, H., Yang, D. P., Fan, S. W., & Cai, H. G. (2016). On the development of intrinsically-actuated, multisensory dexterous robotic hands. Robotech, 3(1), 1–9.
Cited by
10 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献