We present a smart robot structure that exploits anisotropic friction to achieve stick-slip locomotion. The robot is made out of three components: a plastic beam, a planar dielectric elastomer actuator and four bristle pads with asymmetric rigid metallic bristles. We show that when the robot is electronically activated at increasing frequency, its structure exploits the resonance condition to reach the maximum locomotion speed. The fundamental frequency of the structure is estimated both analytically and numerically, allowing the range of frequencies in which the top locomotion speed was observed during the experiments to be identified. The locomotion speed of the robot as a function of the actuation frequency is estimated with a frequency ...
Several efforts have been made to develop walking smart soft robots through different strategies suc...
© Springer-Verlag Berlin Heidelberg 2014. The impressive agility of living systems seems to stem fro...
Arch flexure dielectric elastomer finger (DEMES) provides fast-response and high- strength. It is ba...
We present a smart robot structure that exploits anisotropic friction to achieve stick-slip locomoti...
Robots built from soft materials can alter their shape and size in a particular profile. This shape-...
Recent designs of soft robots and nano robots feature locomotion mechanisms thatentail orchestrating...
Soft-bodied animals move by using the anisotropy of friction between their body and the environment....
Entirely soft robots with animal-like behavior and integrated artificial nervous systems will open u...
Conventional robots adopt wheels or robotic limbs for locomotion. Wheels are simple to control but n...
Many recent designs of soft robots and nano-robots feature locomotion mechanisms that cleverly explo...
The present paper investigates the effect of compliance on the locomotion of a biologically-inspired...
Soft materials are being adopted in robotics in order to facilitate biomedical applications and in o...
Rigid robotic systems struggle to solve problems that require drastic shape changes, possess high en...
Several recent designs of soft robots feature locomotion mechanisms that entail orchestrating change...
Soft materials are being adopted in robotics in order to facilitate biomedical applications and in o...
Several efforts have been made to develop walking smart soft robots through different strategies suc...
© Springer-Verlag Berlin Heidelberg 2014. The impressive agility of living systems seems to stem fro...
Arch flexure dielectric elastomer finger (DEMES) provides fast-response and high- strength. It is ba...
We present a smart robot structure that exploits anisotropic friction to achieve stick-slip locomoti...
Robots built from soft materials can alter their shape and size in a particular profile. This shape-...
Recent designs of soft robots and nano robots feature locomotion mechanisms thatentail orchestrating...
Soft-bodied animals move by using the anisotropy of friction between their body and the environment....
Entirely soft robots with animal-like behavior and integrated artificial nervous systems will open u...
Conventional robots adopt wheels or robotic limbs for locomotion. Wheels are simple to control but n...
Many recent designs of soft robots and nano-robots feature locomotion mechanisms that cleverly explo...
The present paper investigates the effect of compliance on the locomotion of a biologically-inspired...
Soft materials are being adopted in robotics in order to facilitate biomedical applications and in o...
Rigid robotic systems struggle to solve problems that require drastic shape changes, possess high en...
Several recent designs of soft robots feature locomotion mechanisms that entail orchestrating change...
Soft materials are being adopted in robotics in order to facilitate biomedical applications and in o...
Several efforts have been made to develop walking smart soft robots through different strategies suc...
© Springer-Verlag Berlin Heidelberg 2014. The impressive agility of living systems seems to stem fro...
Arch flexure dielectric elastomer finger (DEMES) provides fast-response and high- strength. It is ba...