Arthropod‐Inspired Miniature Modular Vibration Direct‐Drive Robot With Untethered Locomotion

Miniature vibration direct-drive robots hold immense potential for missions in confined spaces, such as pipeline inspection and environmental detection. However, conventional fixed-configuration designs are restricted to single functionality, failing to adapt to the multifaceted demands of diverse operational tasks. Here, we present an arthropod-inspired untethered miniature modular vibration direct-drive robot, which achieves on-demand reconfiguration through standardized 19 mm × 32.5 mm × 18 mm driving units. Core innovations include tool-less nested locking interfaces for rapid assembly; compliant silicone connectors designed to mitigate vibration-induced wear and provide vibration isolation; chevron-shaped feet optimizing vibration-to-locomotion conversion; and a highly integrated onboard control architecture enabling untethered operation. The robot reconfigures into quadruped, hexapod, octopod, and circular morphologies with stable performance. In the quadruped robot (58.4 g; 46 mm × 75 mm × 38.8 mm), it reaches a maximum linear speed of 580.74 mm/s and rotational speed of 16.64 rad/s. The octopod robot sustains 450 mm/s under a 60 g payload while traversing 2.8 mm obstacles, 30 mm gullies, and confined pipelines. This work breaks fixed-configuration limitations, providing a generalizable paradigm for synergizing modularity and vibration-driven efficiency at the centimeter scale, offering new insights for miniature robots, and a versatile platform for confined-space operations.

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Publication Details

Journal
Advanced Science
Published
2026-09-16
DOI
https://doi.org/10.1002/advs.77834
Primary Topic
Modular Robots and Swarm Intelligence
Type
article
Field-Weighted Citation Impact
0.00

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article

Arthropod‐Inspired Miniature Modular Vibration Direct‐Drive Robot With Untethered Locomotion

Youwei Liu, Shijing Zhang, Dehong Wang, Yingxiang Liu et al.
Advanced Science
Modular Robots and Swarm Intelligence
article

Arthropod‐Inspired Miniature Modular Vibration Direct‐Drive Robot With Untethered Locomotion

Youwei Liu, Shijing Zhang, Dehong Wang, Yingxiang Liu, Ziteng Liu
article en

Abstract

Miniature vibration direct-drive robots hold immense potential for missions in confined spaces, such as pipeline inspection and environmental detection. However, conventional fixed-configuration designs are restricted to single functionality, failing to adapt to the multifaceted demands of diverse operational tasks. Here, we present an arthropod-inspired untethered miniature modular vibration direct-drive robot, which achieves on-demand reconfiguration through standardized 19 mm × 32.5 mm × 18 mm driving units. Core innovations include tool-less nested locking interfaces for rapid assembly; compliant silicone connectors designed to mitigate vibration-induced wear and provide vibration isolation; chevron-shaped feet optimizing vibration-to-locomotion conversion; and a highly integrated onboard control architecture enabling untethered operation. The robot reconfigures into quadruped, hexapod, octopod, and circular morphologies with stable performance. In the quadruped robot (58.4 g; 46 mm × 75 mm × 38.8 mm), it reaches a maximum linear speed of 580.74 mm/s and rotational speed of 16.64 rad/s. The octopod robot sustains 450 mm/s under a 60 g payload while traversing 2.8 mm obstacles, 30 mm gullies, and confined pipelines. This work breaks fixed-configuration limitations, providing a generalizable paradigm for synergizing modularity and vibration-driven efficiency at the centimeter scale, offering new insights for miniature robots, and a versatile platform for confined-space operations.

Advanced Science
Harbin Institute of Technology (CN), State Key Laboratory of Robotics and Systems (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 20%
Modular Robots and Swarm Intelligence
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Arthropod‐Inspired Miniature Modular Vibration Direct‐Drive Robot With Untethered Locomotion — Youwei Liu, Shijing Zhang, et al. · Advanced Science (2026) | TGRS Research Map | TGRS