Fingerpad contact evolution under electrovibration

Author:

Sirin Omer1,Barrea Allan23ORCID,Lefèvre Philippe23ORCID,Thonnard Jean-Louis23ORCID,Basdogan Cagatay1ORCID

Affiliation:

1. College of Engineering, Robotics and Mechatronics Laboratory, Koc University, 34450 Istanbul, Turkey

2. Institute of Neuroscience (IoNS), Electronics and Applied Mathematics (ICTEAM), Université catholique de Louvain, Louvain-la-Neuve, Belgium

3. Institute of Information and Communication Technologies, Electronics and Applied Mathematics (ICTEAM), Université catholique de Louvain, Louvain-la-Neuve, Belgium

Abstract

Displaying tactile feedback through a touchscreen via electrovibration has many potential applications in mobile devices, consumer electronics, home appliances and automotive industry though our knowledge and understanding of the underlying contact mechanics are very limited. An experimental study was conducted to investigate the contact evolution between the human finger and a touch screen under electrovibration using a robotic set-up and an imaging system. The results show that the effect of electrovibration is only present during full slip but not before slip. Hence, the coefficient of friction increases under electrovibration as expected during full slip, but the apparent contact area is significantly smaller during full slip when compared to that of no electrovibration condition. It is suggested that the main cause of the increase in friction during full slip is due to an increase in the real contact area and the reduction in apparent area is due to stiffening of the finger skin in the tangential direction.

Funder

TUBITAK

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

Reference33 articles.

1. Watanabe T Fukui S. 1995 A method for controlling tactile sensation of surface roughness using ultrasonic vibration. In IEEE Int. Conf. Robotics and Automation Nagoya Japan 21–27 May 1995 pp. 1134–1139. (doi:10.1109/ROBOT.1995.525433)

2. Implementation of tactile feedback by modifying the perceived friction

3. Power Optimization of Ultrasonic Friction-Modulation Tactile Interfaces

4. Partial squeeze film levitation modulates fingertip friction

5. Psychophysical Evaluation of Change in Friction on an Ultrasonically-Actuated Touchscreen

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