Tactile display of softness on fingertip

被引:0
|
作者
Gabriele Frediani
Federico Carpi
机构
[1] University of Florence,Department of Industrial Engineering
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Multi-sensory human–machine interfaces are currently challenged by the lack of effective, comfortable and affordable actuation technologies for wearable tactile displays of softness in virtual- or augmented-reality environments. They should provide fingertips with tactile feedback mimicking the tactual feeling perceived while touching soft objects, for applications like virtual reality-based training, tele-rehabilitation, tele-manipulation, tele-presence, etc. Displaying a virtual softness on a fingertip requires the application of quasi-static (non-vibratory) forces via a deformable surface, to control both the contact area and the indentation depth of the skin. The state of the art does not offer wearable devices that can combine simple structure, low weight, low size and electrically safe operation. As a result, wearable softness displays are still missing for real-life uses. Here, we present a technology based on fingertip-mounted small deformable chambers, which weight about 3 g and are pneumatically driven by a compact and cost-effective unit. Weighting less than 400 g, the driving unit is easily portable and can be digitally controlled to stimulate up to three fingertips independently. Psychophysical tests proved ability to generate useful perceptions, with a Just Noticeable Difference characterised by a Weber constant of 0.15. The system was made of off-the-shelf materials and components, without any special manufacturing process, and is fully disclosed, providing schematics and lists of components. This was aimed at making it easily and freely usable, so as to turn tactile displays of softness on fingertips into a technology ‘at fingertips’.
引用
收藏
相关论文
共 50 条
  • [1] Tactile display of softness on fingertip
    Frediani, Gabriele
    Carpi, Federico
    SCIENTIFIC REPORTS, 2020, 10 (01)
  • [2] Wearable fingertip tactile display
    Koo, Igmo
    Jung, Kwangmok
    Koo, Jachoon
    Nam, Jea-Do
    Lee, Youngkwan
    Choi, Hyouk Ryeol
    2006 SICE-ICASE INTERNATIONAL JOINT CONFERENCE, VOLS 1-13, 2006, : 4823 - +
  • [3] Electro-Tactile Display Kit for Fingertip
    Kajimoto, Hiroyuki
    2021 IEEE WORLD HAPTICS CONFERENCE (WHC), 2021, : 587 - 587
  • [4] Tactile letter recognition by electrocutaneous display at the fingertip
    Hayashi, Kouki
    Takahata, Minoru
    2005 27TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-7, 2005, : 5287 - 5290
  • [5] A novel tactile softness display for minimally invasive surgery
    Dargahi, Javad
    Arbatani, Siamak
    Sokhanvar, Saeed
    Xie, Wen-Fang
    Ramezanifard, Reza
    MECHATRONICS, 2014, 24 (08) : 1144 - 1156
  • [6] Multi-digit Softness: Development of a Tactile Display to Render Softness Feeling on Multiple Fingers
    Kitazawa, Toshiki
    Kimura, Fuminobu
    Yamamoto, Akio
    HAPTICS: NEUROSCIENCE, DEVICES, MODELING, AND APPLICATIONS, PT II, 2014, 8619 : 215 - 222
  • [7] A Softness Feeling Display with an Active Tensioner Controlling Contact Pressure Distribution on a Fingertip
    Kimura, Fuminobu
    Yamamoto, Akio
    MECHANISMS, MECHANICAL TRANSMISSIONS AND ROBOTICS, 2012, 162 : 463 - 470
  • [8] Development of Wearable Fingertip Tactile Display Driven by Bowden Cables
    Premarathna, Chanaka
    Kulasekera, Asitha
    Chathuranga, Damith
    Lalitharatne, Thilina
    2019 MORATUWA ENGINEERING RESEARCH CONFERENCE (MERCON) / 5TH INTERNATIONAL MULTIDISCIPLINARY ENGINEERING RESEARCH CONFERENCE, 2019, : 621 - 626
  • [9] A Novel Fingertip Tactile Display for Concurrently Displaying Texture and Orientation
    Singh, Harsimran
    Jeong, Sang-Goo
    Zain, Syed
    Ryu, Jee-Hwan
    HAPTIC INTERACTION: PERCEPTION, DEVICES AND ALGORITHMS, 2019, 535 : 216 - 218
  • [10] A Soft Touch: Wearable Tactile Display of Softness Made of Electroactive Elastomers
    Frediani, Gabriele
    Boys, Hugh
    Ghilardi, Michele
    Poslad, Stefan
    Busfield, James J. C.
    Carpi, Federico
    ADVANCED MATERIALS TECHNOLOGIES, 2021, 6 (06):