Grip as Needed, Glide on Demand: Ultrasonic Lubrication for Robotic Locomotion

Fuente: arXiv
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Atalla, Mostafa A., van Bemmel, Daan, Cummings, Jack, Breedveld, Paul, Wiertlewski, Michaël, Sakes, Aimée
Format: Preprint
Publié: 2026
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866908918708436992
author Atalla, Mostafa A.
van Bemmel, Daan
Cummings, Jack
Breedveld, Paul
Wiertlewski, Michaël
Sakes, Aimée
author_facet Atalla, Mostafa A.
van Bemmel, Daan
Cummings, Jack
Breedveld, Paul
Wiertlewski, Michaël
Sakes, Aimée
contents Friction is the essential mediator of terrestrial locomotion, yet in robotic systems it is almost always treated as a passive property fixed by surface materials and conditions. Here, we introduce ultrasonic lubrication as a method to actively control friction in robotic locomotion. By exciting resonant structures at ultrasonic frequencies, contact interfaces can dynamically switch between "grip" and "slip" states, enabling locomotion. We developed two friction control modules, a cylindrical design for lumen-like environments and a flat-plate design for external surfaces, and integrated them into bio-inspired systems modeled after inchworm and wasp ovipositor locomotion. Both systems achieved bidirectional locomotion with nearly perfect locomotion efficiencies that exceeded 90%. Friction characterization experiments further demonstrated substantial friction reduction across various surfaces, including rigid, soft, granular, and biological tissue interfaces, under dry and wet conditions, and on surfaces with different levels of roughness, confirming the broad applicability of ultrasonic lubrication to locomotion tasks. These findings establish ultrasonic lubrication as a viable active friction control mechanism for robotic locomotion, with the potential to reduce design complexity and improve efficiency of robotic locomotion systems.
format Preprint
id arxiv_https___arxiv_org_abs_2602_15608
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Grip as Needed, Glide on Demand: Ultrasonic Lubrication for Robotic Locomotion
Atalla, Mostafa A.
van Bemmel, Daan
Cummings, Jack
Breedveld, Paul
Wiertlewski, Michaël
Sakes, Aimée
Robotics
Applied Physics
Friction is the essential mediator of terrestrial locomotion, yet in robotic systems it is almost always treated as a passive property fixed by surface materials and conditions. Here, we introduce ultrasonic lubrication as a method to actively control friction in robotic locomotion. By exciting resonant structures at ultrasonic frequencies, contact interfaces can dynamically switch between "grip" and "slip" states, enabling locomotion. We developed two friction control modules, a cylindrical design for lumen-like environments and a flat-plate design for external surfaces, and integrated them into bio-inspired systems modeled after inchworm and wasp ovipositor locomotion. Both systems achieved bidirectional locomotion with nearly perfect locomotion efficiencies that exceeded 90%. Friction characterization experiments further demonstrated substantial friction reduction across various surfaces, including rigid, soft, granular, and biological tissue interfaces, under dry and wet conditions, and on surfaces with different levels of roughness, confirming the broad applicability of ultrasonic lubrication to locomotion tasks. These findings establish ultrasonic lubrication as a viable active friction control mechanism for robotic locomotion, with the potential to reduce design complexity and improve efficiency of robotic locomotion systems.
title Grip as Needed, Glide on Demand: Ultrasonic Lubrication for Robotic Locomotion
topic Robotics
Applied Physics
url https://arxiv.org/abs/2602.15608