Castellanos-Ramos Julián, Navas-González Rafael, Fernández Iván, Vidal-Verdú Fernando
Departamento de Electrónica, E.T.S.I. Informática, Universidad de Málaga, Andalucía Tech, Campus de Teatinos, 29071 Málaga, España.
Instituto de Investigación Biomédica de Málaga (IBIMA), 29010 Málaga, España.
Sensors (Basel). 2015 Oct 2;15(10):25433-62. doi: 10.3390/s151025433.
This paper shows realizations of a piezoresistive tactile sensor with a low cost screen-printing technology. A few samples were fabricated for different materials used as insulator between the conductive layers and as top layer or cover. Both can be used to tune the sensitivity of the sensor. However, a large influence is also observed of the roughness at the contact interface on the sensitivity and linearity of the output, as well as on mismatching between the outputs from different taxels. The roughness at the contact interface is behind the transduction principle of the sensor, but it also limits its performance if the wavelength of the roughness is comparable or even longer than the size of the contacts. The paper shows experimental results that confirm this relationship and discusses its consequences in sensor response related to the materials chosen for the insulator and the cover. Moreover, simulations with FEA tools and with simple models are used to support the discussions and conclusions obtained from the experimental data. This provides insights into the sensor behaviour that are shared by other sensors based on the same principle.
本文展示了一种采用低成本丝网印刷技术实现的压阻式触觉传感器。针对用作导电层之间的绝缘体以及顶层或覆盖层的不同材料制作了一些样品。两者均可用于调节传感器的灵敏度。然而,还观察到接触界面处的粗糙度对输出的灵敏度和线性度以及不同像素输出之间的失配有很大影响。接触界面处的粗糙度是传感器传感原理的基础,但如果粗糙度的波长与触点尺寸相当甚至更长,则会限制其性能。本文展示了证实这种关系的实验结果,并讨论了其在与绝缘体和覆盖层所选材料相关的传感器响应中的影响。此外,使用有限元分析工具和简单模型进行的模拟用于支持从实验数据得出的讨论和结论。这为基于相同原理的其他传感器所共有的传感器行为提供了见解。