Inchworm-Inspired Soft Robot with Groove-Guided Locomotion

Fuente: arXiv
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Main Authors: Thanabalan, Hari Prakash, Bengtsson, Lars, Lafont, Ugo, Volpe, Giovanni
Format: Preprint
Published: 2025
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author Thanabalan, Hari Prakash
Bengtsson, Lars
Lafont, Ugo
Volpe, Giovanni
author_facet Thanabalan, Hari Prakash
Bengtsson, Lars
Lafont, Ugo
Volpe, Giovanni
contents Soft robots require directional control to navigate complex terrains. However, achieving such control often requires multiple actuators, which increases mechanical complexity, complicates control systems, and raises energy consumption. Here, we introduce an inchworm-inspired soft robot whose locomotion direction is controlled passively by patterned substrates. The robot employs a single rolled dielectric elastomer actuator, while groove patterns on a 3D-printed substrate guide its alignment and trajectory. Through systematic experiments, we demonstrate that varying groove angles enables precise control of locomotion direction without the need for complex actuation strategies. This groove-guided approach reduces energy consumption, simplifies robot design, and expands the applicability of bio-inspired soft robots in fields such as search and rescue, pipe inspection, and planetary exploration.
format Preprint
id arxiv_https___arxiv_org_abs_2512_07813
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Inchworm-Inspired Soft Robot with Groove-Guided Locomotion
Thanabalan, Hari Prakash
Bengtsson, Lars
Lafont, Ugo
Volpe, Giovanni
Robotics
Soft robots require directional control to navigate complex terrains. However, achieving such control often requires multiple actuators, which increases mechanical complexity, complicates control systems, and raises energy consumption. Here, we introduce an inchworm-inspired soft robot whose locomotion direction is controlled passively by patterned substrates. The robot employs a single rolled dielectric elastomer actuator, while groove patterns on a 3D-printed substrate guide its alignment and trajectory. Through systematic experiments, we demonstrate that varying groove angles enables precise control of locomotion direction without the need for complex actuation strategies. This groove-guided approach reduces energy consumption, simplifies robot design, and expands the applicability of bio-inspired soft robots in fields such as search and rescue, pipe inspection, and planetary exploration.
title Inchworm-Inspired Soft Robot with Groove-Guided Locomotion
topic Robotics
url https://arxiv.org/abs/2512.07813