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Design Example: Resistive Touchscreen01:14

Design Example: Resistive Touchscreen

A device engineer plays a crucial role in designing user interfaces for mobile devices. One such interface is the resistive touchscreen, which fundamentally consists of two metallic layers: a flexible upper layer and a rigid lower layer, separated by a narrow gap. The high resistance between these two layers is a key characteristic of this design.
When a user touches the screen, the two layers make contact at a specific point known as the touchpoint. This contact reduces the resistance between...
Static and Kinetic Frictional Force01:05

Static and Kinetic Frictional Force

One of the simpler characteristics of sliding friction is that it is parallel to the contact surfaces between systems, and is always in a direction that opposes the motion or attempted motion of the systems relative to each other. If two systems are in contact and moving relative to one another, then the friction between them is called kinetic friction. For example, kinetic friction slows a hockey puck sliding on ice.
However, if two systems are in contact and are stationary relative to one...
Characteristics of Dry Friction01:21

Characteristics of Dry Friction

Dry friction occurs when two solid surfaces slide against each other without any lubrication or fluid present. It causes resistance when pushing objects along a surface, like a gardener pushing a wheelbarrow. The force applied to move the cart causes dry friction between the wheel and the ground.
Before the wheelbarrow starts moving, the static frictional force acts tangentially to the contact surface, opposing the force that is about to induce the motion. This frictional force prevents the...
Frictional Force01:07

Frictional Force

When a body is in motion, it encounters resistance because the body interacts with its surroundings. This resistance is known as friction, a common yet complex force whose behavior is still not completely understood. Friction opposes relative motion between systems in contact, but also allows us to move. Friction arises in part due to the roughness of surfaces in contact. For one object to move along a surface, it must rise to where the peaks of the surface can skip along the bottom of the...
Dry Friction01:30

Dry Friction

Dry friction occurs between two solid surfaces in contact as they attempt to move relative to one another. In daily life, dry friction is encountered in various forms, such as when walking on the ground, sliding an object across a table, or rubbing hands together. Despite its ubiquity, the underlying mechanisms behind dry friction are not readily visible.
To illustrate this concept, imagine a wooden crate resting on a rough, non-uniform horizontal surface. When an external force is applied to...
Kinetic Friction01:26

Kinetic Friction

Consider a truck trying to pull a stationary car. As the truck exerts a force on the car, static friction is created at the point of contact between the two surfaces. This frictional force resists the car's movement and keeps it at rest. However, when the applied force by the truck surpasses the limiting static frictional force, an interesting phenomenon occurs. The frictional force at the interface reduces to a lower value, known as the kinetic frictional force. At this point, the car begins...

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Related Experiment Video

Updated: Jun 8, 2026

A Tactile Automated Passive-Finger Stimulator (TAPS)
19:44

A Tactile Automated Passive-Finger Stimulator (TAPS)

Published on: June 3, 2009

Rendering edge enhancement tactile phenomenon by friction variation in dynamic touch.

Mohammad Abdolvahab1

  • 1Department of Computer Science, University of Sciences and Technology of Lille, Cité Scientifique, 59655, Villeneuve d'Ascq, France.

Journal of Biomechanics
|September 14, 2010
PubMed
Summary

This study models how human fingertips perceive virtual edges on variable friction tactile displays. A biomechanical model shows friction changes trigger neural responses, creating an edge enhancement illusion crucial for texture discrimination.

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Applying Incongruent Visual-Tactile Stimuli during Object Transfer with Vibro-Tactile Feedback
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Related Experiment Videos

Last Updated: Jun 8, 2026

A Tactile Automated Passive-Finger Stimulator (TAPS)
19:44

A Tactile Automated Passive-Finger Stimulator (TAPS)

Published on: June 3, 2009

Tactile Semiautomatic Passive-Finger Angle Stimulator (TSPAS)
04:40

Tactile Semiautomatic Passive-Finger Angle Stimulator (TSPAS)

Published on: July 30, 2020

Applying Incongruent Visual-Tactile Stimuli during Object Transfer with Vibro-Tactile Feedback
05:43

Applying Incongruent Visual-Tactile Stimuli during Object Transfer with Vibro-Tactile Feedback

Published on: May 23, 2019

Area of Science:

  • Haptics and Human-Computer Interaction
  • Biomechanical Modeling
  • Neuroscience of Touch

Background:

  • Variable friction tactile displays enable the rendering of virtual textures and gratings.
  • Understanding the neural mechanisms behind perceiving virtual edges is key to improving these displays.
  • Active touch and fingertip biomechanics play a crucial role in tactile perception.

Purpose of the Study:

  • To investigate the neural basis of edge-like feature detection during active exploration of virtual gratings.
  • To model the human fingertip's biomechanical response to variable friction stimuli.
  • To explain the perceptual illusion of virtual edges generated by modified contact forces.

Main Methods:

  • Development of a finite-element biomechanical model of the human fingertip.
  • Simulation of the neural response by computing strain energy density at mechanoreceptor locations.
  • Analysis of the response to local reductions in friction between the fingerpad and the display surface.

Main Results:

  • Predicted neural responses showed an 'edge enhancement' phenomenon, with a sudden burst at friction boundaries.
  • This burst phenomenon was observed to be invariant across varied model parameters.
  • The simulation results correlate the computed strain energy density with neural discharge rates.

Conclusions:

  • The 'edge enhancement' phenomenon in neural response likely accounts for the illusion of virtual edges.
  • The robustness of this phenomenon suggests a fundamental aspect of tactile edge detection.
  • Adjusting the edge enhancement ratio could be a method for tuning variable friction tactile displays.