DocumentCode :
13960
Title :
Controllable Surface Haptics via Particle Jamming and Pneumatics
Author :
Stanley, Andrew A. ; Okamura, Allison M.
Author_Institution :
Dept. of Mech. Eng., Stanford Univ., Stanford, CA, USA
Volume :
8
Issue :
1
fYear :
2015
fDate :
Jan.-March 1 2015
Firstpage :
20
Lastpage :
30
Abstract :
The combination of particle jamming and pneumatics allows the simultaneous control of shape and mechanical properties in a tactile display. A hollow silicone membrane is molded into an array of thin cells, each filled with coffee grounds such that adjusting the vacuum level in any individual cell rapidly switches it between flexible and rigid states. The array clamps over a pressure-regulated air chamber with internal mechanisms designed to pin the nodes between cells at any given height. Various sequences of cell vacuuming, node pinning, and chamber pressurization allow the surface to balloon into a variety of shapes. Experiments were performed to expand existing physical models of jamming at the inter-particle level to define the rheological characteristics of jammed systems from a macroscopic perspective, relevant to force-displacement interactions that would be experienced by human users. Force-displacement data show that a jammed cell in compression fits a Maxwell model and a cell deflected in the center while supported only at the edges fits a Zener model, each with stiffness and damping parameters that increase at higher levels of applied vacuum. This provides framework to tune and control the mechanical properties of a jamming haptic interface.
Keywords :
display devices; haptic interfaces; interactive devices; jamming; rheology; thin film devices; Maxwell model; Zener model; balloon; cell vacuum; damping parameters; force displacement interaction; hollow silicone membrane; human users; interparticle level; jammed systems; jamming haptic interface; macroscopic perspective; node pinning; particle jamming; physical model; pneumatics; pressure regulated air chamber; rheological characteristics; stiffness parameters; tactile display; thin cells array; Arrays; Force; Haptic interfaces; Jamming; Materials; Shape; Solenoids; Haptic; Haptic device design; device design; haptic I/O; particle jamming; particle jamming, tactile display; tactile display;
fLanguage :
English
Journal_Title :
Haptics, IEEE Transactions on
Publisher :
ieee
ISSN :
1939-1412
Type :
jour
DOI :
10.1109/TOH.2015.2391093
Filename :
7006752
Link To Document :
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