Continuous and Large‐Scale: ELEANOR, the Soft Architected Arm Inspired by the Elephant Trunk

The elephant trunk is a dexterous and versatile manipulator whose performance is still unmatched in robotics. In previous works,modularity was prioritized andrelatively small‐scale continuum robots were built. We take the natural proboscis of the Loxodonta africana species as a model and propose a different design approach which favors structural continuity andnatural frequencythatplausibly emulate those of the natural trunk, while conferring high adaptability to the environment and humans. Instead of targeting prescribed behaviors, we show that a biomimetic design based on the macroscopic properties of the natural system enables elephant‐like movements and grasping. We build by 3D printing an 85 cm long, compliant, tapered, volumetrically tessellated continuum arm, which is combined with tendon‐driven actuation mimicking the longitudinal and oblique muscles of the natural model. We demonstrate whole‐body grasping of objects having different shapes and dimensions and discuss a comparison to the biological trunk highlighting aspects of both biology and robotics.

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Publication Details

Journal
Advanced Intelligent Systems
Published
2026-08-27
DOI
https://doi.org/10.1002/aisy.70532
Primary Topic
Soft Robotics and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Continuous and Large‐Scale: ELEANOR, the Soft Architected Arm Inspired by the Elephant Trunk

Seonggun Joe, Egidio Falotico, Enrico Donato, Michel C. Milinkovitch et al.
Advanced Intelligent Systems
Soft Robotics and Applications
article

Continuous and Large‐Scale: ELEANOR, the Soft Architected Arm Inspired by the Elephant Trunk

Seonggun Joe, Egidio Falotico, Enrico Donato, Michel C. Milinkovitch, Lucia Beccai, Diego Bianchi, Anderson B. Nardin, Giovanna A. Naselli, Ryan Drinkwater
article en

Abstract

The elephant trunk is a dexterous and versatile manipulator whose performance is still unmatched in robotics. In previous works,modularity was prioritized andrelatively small‐scale continuum robots were built. We take the natural proboscis of the Loxodonta africana species as a model and propose a different design approach which favors structural continuity andnatural frequencythatplausibly emulate those of the natural trunk, while conferring high adaptability to the environment and humans. Instead of targeting prescribed behaviors, we show that a biomimetic design based on the macroscopic properties of the natural system enables elephant‐like movements and grasping. We build by 3D printing an 85 cm long, compliant, tapered, volumetrically tessellated continuum arm, which is combined with tendon‐driven actuation mimicking the longitudinal and oblique muscles of the natural model. We demonstrate whole‐body grasping of objects having different shapes and dimensions and discuss a comparison to the biological trunk highlighting aspects of both biology and robotics.

Advanced Intelligent Systems
University of Geneva (CH), Scuola Superiore Sant'Anna (IT), Italian Institute of Technology (IT), Photometrics (United States) (US), Korea University (JP)
European Commission, Istituto Italiano di Tecnologia
Openalex Percentile: Top 19%
Soft Robotics and Applications
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